<?xml version="1.0" encoding="UTF-8"?><article xml:lang="en" article-type="review-article"><front><journal-meta><journal-id journal-id-type="pmc-domain-id">1787</journal-id><journal-id journal-id-type="pmc-domain">frontplantsci</journal-id><journal-title-group><journal-title>Frontiers in Plant Science</journal-title><abbrev-journal-title>Front Plant Sci</abbrev-journal-title></journal-title-group><publisher><publisher-name>Frontiers Media SA</publisher-name></publisher></journal-meta><article-meta><article-id pub-id-type="pmcid">PMC8551677</article-id><article-id pub-id-type="pmcaid">8551677</article-id><article-id pub-id-type="pmcaiid">8551677</article-id><article-id pub-id-type="pmid">34721474</article-id><article-id pub-id-type="doi">10.3389/fpls.2021.746908</article-id><title-group><article-title>An Overview of the Medicinally Important Plant Type III PKS Derived Polyketides</article-title></title-group><contrib-group content-type="author"><contrib><name name-style="western"><surname>Bisht</surname><given-names initials="R">Renu</given-names></name><xref ref-type="aff" rid="aff1">1</xref></contrib><contrib><name name-style="western"><surname>Bhattacharyya</surname><given-names initials="A">Aniket</given-names></name><xref ref-type="aff" rid="aff1">1</xref></contrib><contrib><name name-style="western"><surname>Shrivastava</surname><given-names initials="A">Ankita</given-names></name><xref ref-type="aff" rid="aff1">1</xref></contrib><contrib><name name-style="western"><surname>Saxena</surname><given-names initials="P">Priti</given-names></name><xref ref-type="aff" rid="aff1">1</xref><xref rid="c001" ref-type="author-notes">*</xref></contrib></contrib-group><aff id="aff1"><label>1</label>Chemical Biology Group, Faculty of Life Sciences and Biotechnology, South Asian University, New Delhi, India</aff><author-notes><fn id="fn1"><p>Edited by: Wanchai De-Eknamkul, Chulalongkorn University, Thailand</p></fn><fn id="fn2"><p>Reviewed by: Hiroshi Noguchi, Nihon Pharmaceutical University, Japan; Tessa Moses, University of Edinburgh, United Kingdom</p></fn><fn id="c001"><label>✉</label><p>*Correspondence: Priti Saxena <email>psaxena@sau.ac.in</email></p></fn><fn id="fn001"><p>This article was submitted to Plant Metabolism and Chemodiversity, a section of the journal Frontiers in Plant Science</p></fn></author-notes><pub-date><day>14</day><month>10</month><year>2021</year></pub-date><volume>12</volume><fpage>746908</fpage><page-range>746908</page-range><pub-history><event event-type="pmc-release"><date><day>29</day><month>10</month><year>2021</year></date></event></pub-history><permissions><copyright-statement>Copyright © 2021 Bisht, Bhattacharyya, Shrivastava and Saxena.</copyright-statement><license><license-p>This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.</license-p></license></permissions><self-uri xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="fpls-12-746908.pdf" content-type="pmc-pdf"><?cloudpmc-path b4e2/8551677/f7e3df1028d7/fpls-12-746908.pdf?><?cloudpmc-bucket app?><?size 4083999?></self-uri><abstract id="abstract1"><title>Abstract</title><p>Plants produce interesting secondary metabolites that are a valuable source of both medicines for human use, along with significant advantages for the manufacturer species. The active compounds which lead to these instrumental effects are generally secondary metabolites produced during various plant growth phases, which provide the host survival advantages while affecting human health inadvertently. Different chemical classes of secondary metabolites are biosynthesized by the plant type III polyketide synthases (PKSs). They are simple homodimeric proteins with the unique mechanistic potential to produce a broad array of secondary metabolites by utilizing simpler starter and extender units. These PKS derived products are majorly the precursors of some important secondary metabolite pathways leading to products such as flavonoids, stilbenes, benzalacetones, chromones, acridones, xanthones, cannabinoids, aliphatic waxes, alkaloids, anthrones, and pyrones. These secondary metabolites have various pharmaceutical, medicinal and industrial applications which make biosynthesizing type III PKSs an important tool for bioengineering purposes. Because of their structural simplicity and ease of manipulation, these enzymes have garnered interest in recent years due to their application in the generation of unnatural natural polyketides and modified products in the search for newer drugs for a variety of health problems. The following review covers the biosynthesis of a variety of type III PKS-derived secondary metabolites, their biological relevance, the associated enzymes, and recent research.</p><sec id="kwd-group1" sec-type="kwd-group" disp-level="2"><p><bold>Keywords:</bold> type III polyketide synthases, chalcones, alkaloids, chromones, anthrones, xanthones, pyrones, cannabinoids</p></sec></abstract><custom-meta-group><custom-meta><meta-name>status</meta-name><meta-value>released</meta-value></custom-meta><custom-meta><meta-name>display-pdf</meta-name><meta-value>yes</meta-value></custom-meta><custom-meta><meta-name>is-olf</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>is-manuscript</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>is-preprint</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>is-journal-matter</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>is-scanned</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>is-retracted</meta-name><meta-value>no</meta-value></custom-meta></custom-meta-group></article-meta><notes notes-type="article-notes"><sec id="historyarticle-meta1" sec-type="history" disp-level="2"><p>Received 2021 Jul 25; Accepted 2021 Sep 8; Collection date 2021.</p></sec></notes></front><body><sec id="s1" disp-level="1"><title>Introduction</title><p>Plants are essential to life forms on Earth, playing a key role in the well-being of both humans and the entire ecosystem. Besides being primary producers for all food chains, plants biosynthesize secondary metabolites that exhibit a wide range of chemical structures and biochemical properties (Compean and Ynalvez, <xref rid="B28" ref-type="bibr">2014</xref>; Freiesleben and Jäger, <xref rid="B39" ref-type="bibr">2014</xref>; Tiwari and Rana, <xref rid="B117" ref-type="bibr">2015</xref>). Polyketides, fatty acids, terpenoids, phenylpropanoids, alkaloids, and several other specialized amino acids and carbohydrates make up the majority of plant secondary metabolites. Plants use secondary metabolites for physiological, survival, and maintenance purposes, as well as for defending against pathogens, fighting off herbivores, protection against UV exposure, and various other biotic and physical stresses. The pharmacological properties of secondary metabolic compounds are most responsible for plants bearing medicinal and therapeutic properties (Tiwari and Rana, <xref rid="B117" ref-type="bibr">2015</xref>). This review highlights the medicinal, pharmaceutical, and industrial properties of polyketide secondary metabolites, with an emphasis on their ability to assist with biological processes.</p><p>Several chemically distinct classes of secondary metabolites are biosynthesized by the type III polyketide synthases (PKSs). Type III PKSs were first discovered and characterized from plants and are now known to occur in many different life forms. Structurally, type III PKSs are small homodimeric proteins with each monomer containing an independent active site comprising of a <italic>Cys, His, Asn</italic> catalytic triad. Type III PKSs typically utilize a simple chemical strategy of initial priming with a monocarboxyl-coenzymeA (CoA) starter substrate that undergoes repetitive decarboxylative condensations with simple dicarboxyl-CoA extender substrate to generate a poly-β-keto intermediate that can either be cyclized or released as a linear product. Many variations are possible when dealing with these proteins because they have the capacity to accept several different starters and extender substrates and conduct a variety of condensation and elongation reactions. Through these various modes of ring closure, they enable a wide range of product profiles. By post-synthesis modifications, the polyketide core further evolves into distinct bio- functionalities (Abe, <xref rid="B2" ref-type="bibr">2012</xref>).</p><p>Plant type III PKSs accept a wide variety of starter substrates, including intermediates of the phenylpropanoid pathway, CoA/N-acetyl cysteamine (NAC), and activated aliphatic/aromatic mono- and di-carboxylic acids. A tetraketide intermediate is produced with three rounds of condensation of the starter unit with the extender substrate. However, in some cases, this number can rise to eight or more rounds of condensation (Abe et al., <xref rid="B8" ref-type="bibr">2004</xref>). Type III PKSs cyclize the reaction intermediates using three distinct ring-folding chemistries; C<sub>6</sub>-C<sub>1</sub> Claisen condensation exemplified by the chalcone synthases (CHSs), C<sub>2</sub>-C<sub>7</sub> aldol condensation unique to the stilbene synthases (STSs), and C<sub>5</sub>-O-C<sub>1</sub> lactonization that results in derailment products observed in certain cases (<xref rid="F1" ref-type="fig">Figure 1</xref>) (Shimizu et al., <xref rid="B110" ref-type="bibr">2017</xref>).</p><fig id="F1" position="float"><?disp-level 2?><label>Figure 1</label><caption><p>Overview of different cyclization governed by plant type III PKSs. The common extender malonyl-CoA is utilized by several plant type III PKSs. The C6-O-C1 Claisen condensation cyclized polyketides are shown in red color (on the top), C7-O-C2 aldol condensation cyclized polyketides are depicted in blue (left), the C5-O-C1 lactonization type cyclized products are shown in green color (right) and the non-cyclized polyketides are presented in gray (bottom). VPS, valerophenone synthase; PCS, pentaketide chromone synthase; ACS, acridone synthase; CHS, chalcone synthase; QNS, quinolone synthase; BPS, benzaphenone synthase; STCS, stilbene carboxylate Synthase; STS, stilbene synthase; ORS, 2′-oxoalkylresorcinol Synthase; BBS, bibenzyl synthase; OLS, Olivetol synthase; BIS, biphenyl synthase; ALS, aleosone synthase; OKS, Octaketide synthase; QNS, quinolone synthase; DKS, diketide synthase; BAS, benzalacetone synthase; DCS, diketide-CoA synthase; CURS, curcumin synthase; ADS, alkyldiketide-CoA synthase; AQS, alkylquinolone synthase; AbYPKS-type III PKS from <italic>Atropa belladonna</italic>; HsPKS-type III PKS from <italic>Huperzia serrata</italic>; CTAS, p-coumaroyl triacetic acid synthase; 2-PS, pyrone synthase and PKSA and PKSB, anther specific chalcone like synthase and PKSB.</p></caption><alternatives><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="image" xlink:href="fpls-12-746908-g0001.jpg"><?cloudpmc-path blobs/b4e2/8551677/1d1e875f0c3b/fpls-12-746908-g0001.jpg?><?cloudpmc-bucket cdn?><?image-server-status LOAD_COMPLETED?><?original-height 1796?><?original-width 1772?><?scaled-height 718?><?scaled-width 708?></graphic><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="thumb" xlink:href="fpls-12-746908-g0001.gif"><?cloudpmc-path blobs/b4e2/8551677/0ded65849d95/fpls-12-746908-g0001.gif?><?cloudpmc-bucket cdn?></graphic></alternatives></fig><p>These proteins, surprisingly, show differences in starter specificity, extension count, and final product cyclization. The structural studies have identified several key amino acid residues affecting the starter specificity, cavity volume, rounds of chain elongation, and cyclization (<xref rid="F2" ref-type="fig">Figure 2</xref>). This produces variations in the products with slight alterations in biological activity (Abe and Morita, <xref rid="B4" ref-type="bibr">2010</xref>; Morita et al., <xref rid="B89" ref-type="bibr">2019</xref>). Type III PKSs have attracted a lot of attention because of their structural and mechanistic simplicity and their ability to produce a broad array of important secondary metabolites (Dibyendu, <xref rid="B33" ref-type="bibr">2015</xref>). Despite the exhaustive research that was carried out, which led to the discovery of numerous crystal structures of plant Type III PKSs and to the identification of crucial residue positions that determine the structure of the final product, the exact mechanism behind the cyclization preference remains unknown. In this study, we aimed to classify these polyketide metabolites based on the mode of cyclization for their biogenesis while addressing their biological significance together with commenting upon the biosynthetic potential, limitation, and uniqueness of the synthesizing enzymes. In this review, the emphasis is on the biological and pharmaceutical strength of the polyketide-derived secondary metabolites while highlighting the mechanism of the biosynthetic Type III PKSs. Since secondary metabolites sourced from plants are currently the primary compounds used for drug development and are frequently utilized to address numerous health concerns, we believe that our review will provide a welcome boost to the status quo of these fundamental polyketide metabolites.</p><fig id="F2" position="float"><?disp-level 2?><label>Figure 2</label><caption><p>Displaying the active site lining residues of <bold>(A)</bold> prototype chalcone synthase <bold>(B)</bold> CHS (docked with chalcone) and <bold>(C)</bold> 18X mutant of CHS (docked with resveratrol). The key amino residues of CHS are shown in the table along with the models <bold>(D)</bold>.</p></caption><alternatives><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="image" xlink:href="fpls-12-746908-g0002.jpg"><?cloudpmc-path blobs/b4e2/8551677/48ccc7a99d54/fpls-12-746908-g0002.jpg?><?cloudpmc-bucket cdn?><?image-server-status LOAD_COMPLETED?><?original-height 2184?><?original-width 1772?><?scaled-height 873?><?scaled-width 708?></graphic><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="thumb" xlink:href="fpls-12-746908-g0002.gif"><?cloudpmc-path blobs/b4e2/8551677/6c139d8f118b/fpls-12-746908-g0002.gif?><?cloudpmc-bucket cdn?></graphic></alternatives></fig></sec><sec id="s2" disp-level="1"><title>Different Modes of Cyclization of Plant Type III PKSs and Corresponding Polyketides</title><p>Type III PKSs are well-equipped in generating chemo-diversity from a limited pool of precursor molecules, by controlling the number of condensation and directing the cyclization of the common intermediate to generate different classes of the final product. In this review, type III PKS derived secondary metabolites are categorized into four different groups based on the mode of cyclization; (i) C<sub>6</sub>-C<sub>1</sub> Claisen, (ii) C<sub>2</sub>-C<sub>7</sub> aldol, (iii) C<sub>5</sub>-O-C<sub>1</sub> lactonization, and (iv) Non-cyclized in addition to discussing their biological activities. An overview of the different cyclization types, corresponding enzymes, and their products are presented in <xref rid="F1" ref-type="fig">Figure 1</xref>.</p><sec id="sec3" disp-level="2"><title>C<sub>6</sub>-C<sub>1</sub> Claisen Cyclization Derived Type III PKS Products</title><sec id="sec4" disp-level="3"><title>Chalcone Synthase—Chalcones, Aurones, and Flavonoids</title><p>The enzyme CHS is critical to the production of chalcone, a vital compound in the synthesis of flavonoids in plants. The CHS is ubiquitously present in almost all plant species (Rammohan et al., <xref rid="B102" ref-type="bibr">2020</xref>). More than 650 <italic>chs</italic>-like gene sequences have been identified in plants since the first <italic>chs</italic> gene was reported in 1983 (Reimold et al., <xref rid="B103" ref-type="bibr">1983</xref>). CHS catalyzes three iterative decarboxylative condensations of the extender malonyl-CoA with starter -coumaroyl-CoA to yield a linear tetraketide, -coumaroyl triacetyl thioester, which undergoes an intramolecular C<sub>6</sub>-C<sub>1</sub> Claisen condensation based cyclization to produce a chalcone. The chalcone moiety can subsequently give rise to naringenin, a precursor of flavonoids, antimicrobial phytoalexins, and anthocyanins in plants (<xref rid="F3" ref-type="fig">Figure 3A</xref>) (Austin and Noel, <xref rid="B14" ref-type="bibr">2003</xref>). The C<sub>6</sub>-C<sub>1</sub> Claisen cyclization is a common mode of cyclization found in a variety of plant type III PKSs, such as CHS and similar CHS-like PKSs.</p><fig id="F3" position="float"><?disp-level 4?><label>Figure 3</label><caption><p>Examples of Claisen type condensation reactions employed by various type III PKSs to produce a variety of polyketide products. Describes the reaction catalyzed by <bold>(A)</bold> chalcone synthase (CHS) and Aureusidin synthase, <bold>(B)</bold> acridone synthase (ACS), <bold>(C)</bold> benzophenone synthase (BPS), <bold>(D)</bold> valerophenone synthase (VPS), and <bold>(E)</bold> pentaketide chromone synthase (PCS). The dashed arrows represent the proposed pathways. The green-colored nX value represents the number of malonyl-CoA molecules employed in a reaction; DMAPP, dimethylallylpyrophosphate; BCAA, branched-chain amino acid.</p></caption><alternatives><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="image" xlink:href="fpls-12-746908-g0003.jpg"><?cloudpmc-path blobs/b4e2/8551677/ebcf80131334/fpls-12-746908-g0003.jpg?><?cloudpmc-bucket cdn?><?image-server-status LOAD_COMPLETED?><?original-height 2480?><?original-width 1707?><?scaled-height 991?><?scaled-width 682?></graphic><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="thumb" xlink:href="fpls-12-746908-g0003.gif"><?cloudpmc-path blobs/b4e2/8551677/1f540b49b4d3/fpls-12-746908-g0003.gif?><?cloudpmc-bucket cdn?></graphic></alternatives></fig><p>The first crystal structure of CHS2 from alfalfa was solved in 1999, and it revealed insights regarding the basic functioning of the enzyme and highlighted the amino acid residues that are key to selecting starters, thus defining the initiation/elongation cavity of the active site (Ferrer et al., <xref rid="B37" ref-type="bibr">1999</xref>). The key intermediate chalcone possesses numerous bioactivities including antioxidants, antimicrobials, anti-inflammatory drugs, antifungals, cytotoxics, antitumor, and chemopreventives (Dao et al., <xref rid="B30" ref-type="bibr">2011</xref>). Numerous modified chalcones such as hydroxy or/and methoxy-substituted chalcones, methylated, prenylated, geranylated, and other monomeric derivatives, chromeno- and furano-chalcones, dimeric chalcones, and dihydrochalcone have been identified to date with potent biological activities (Rozmer and Perjési, <xref rid="B106" ref-type="bibr">2016</xref>). Aurones [2-benzylidenebenzofuran-3(2H)-ones] which are a new class of naturally occuring flavonoids found in fruits and flower functions as phytoalexins against infections and impart yellow pigmentation to plant parts (Hemmerling and Hahn, <xref rid="B46" ref-type="bibr">2016</xref>). The biosynthesis of aurones is catalyzed by the aurone synthase, a catechol oxidase belonging to the plant phenol oxidase (PPOs) family. Interestingly, PPO is a chalcone-specific enzyme and has specificity toward the chalcone intermediate (Nakayama et al., <xref rid="B91" ref-type="bibr">2001</xref>). Aurones are synthesized similarly from -coumaroyl-CoA and malonyl- CoA <italic>via</italic> tetrahydroxychalcone and trihydroxychalcone using the CHS and chalcone reductase (<xref rid="F3" ref-type="fig">Figure 3A</xref>). Subsequently, trihydroxychalcone is converted to aurones by the action of the aureusidin synthase (Motohashi, <xref rid="B90" ref-type="bibr">2008</xref>). Aurones have been reported to possess insect antifeedant, anticancer, antiparasitic, antileishmanial, and antifungal activities. Also, they can act as tyrosine inhibitors and antioxidants. Aureusidine, a common aurone, is an iodothyronine deiodinase inhibitor, an enzyme that participates in the synthesis and regulation of thyroid hormones. Some synthetic aurones can be used as potential cancer chemotherapeutic agents, due to their binding affinity with the nucleotide-binding domain of P-glycoprotein to inhibit the cyclin-dependent kinases in connection with anti-proliferative activities (Zwergel et al., <xref rid="B133" ref-type="bibr">2012</xref>). <italic>Uvaria hamiltonii</italic> derived aurones which are known tubulin-binding agents have also been evaluated for their anticancer activity (Lawrence et al., <xref rid="B68" ref-type="bibr">2003</xref>).</p><p>The products of CHS-derived pathways have compelling biological and medicinal properties. Among them, flavonoids, are the largest class of phenolic compounds in higher plants and bryophytes (Jiang et al., <xref rid="B53" ref-type="bibr">2006</xref>; Yu et al., <xref rid="B130" ref-type="bibr">2015</xref>) which constitutes around 6000 structurally diverse flavonoids including chalcones, flavones, flavonols, flavandiols, anthocyanins, and proanthocyanidins or condensed tannins and aurones, which are present only in few plant species (Austin and Noel, <xref rid="B14" ref-type="bibr">2003</xref>). These polyketide derivatives display varied biological and physiological activities, such as plant-pollinator attractors (flower pigments), UV protectors, phytoprotectants, and feeding deterrents against insects and mammals (Harborne and Williams, <xref rid="B43" ref-type="bibr">2000</xref>; Dao et al., <xref rid="B30" ref-type="bibr">2011</xref>). Isoflavones, in particular, demonstrate various activities, including potent phytoestrogen, antiangiogenic, antioxidant, and anticancer (<xref rid="F3" ref-type="fig">Figure 3A</xref>) (Kumar and Pandey, <xref rid="B67" ref-type="bibr">2013</xref>; Vitale et al., <xref rid="B121" ref-type="bibr">2013</xref>). Especially, isoflavones such as daidzein, and coumestrol, have potent estrogenic activity. Certain isoflavones have various disease-preventive benefits, including reducing the risk of osteoporosis and preventing postmenopausal conditions and cardiovascular diseases (Khare and Katiyar, <xref rid="B59" ref-type="bibr">2012</xref>). The <italic>in planta</italic> role of flavonoids, includes intracellular and extracellular signaling, male fertility agents, allelochemicals, and defense molecules (Samanta et al., <xref rid="B107" ref-type="bibr">2011</xref>). In addition, they play a critical role in the nodulation, pollen fertility, auxin transport, and coloration of flowers as a visual signal for attracting pollinators (Kootstra, <xref rid="B65" ref-type="bibr">1994</xref>; Mol et al., <xref rid="B86" ref-type="bibr">1998</xref>; Feild et al., <xref rid="B36" ref-type="bibr">2001</xref>; Mierziak et al., <xref rid="B84" ref-type="bibr">2014</xref>). They are also responsible for protecting leaf cells against photo-oxidative damage and increasing nutrient recovery efficiency during senescence. Flavonols contribute to the stress response of plants and are the most ancient and widespread flavonoids to date (Ghasemzadeh and Ghasemzadeh, <xref rid="B42" ref-type="bibr">2011</xref>). Interested readers are directed to the review by Falcone Ferreyra et al. (<xref rid="B35" ref-type="bibr">2012</xref>) which deals extensively with biosynthesis, versatility, and biotechnological significance of flavonoids.</p></sec><sec id="sec5" disp-level="3"><title>Acridone Synthase-Acridone Alkaloids</title><p>Acridone alkaloids were first found in plants in 1948 and were known since the turn of the century (Vasil, <xref rid="B120" ref-type="bibr">2012</xref>). However, the occurrence of acridone alkaloids is restricted to the <italic>Rutaceae</italic>, a medicinal plant family. <italic>Ruta graveolens</italic> produced 14 different acridones that were isolated from the culture suspension along with four other isolated from <italic>Ruta</italic> species and <italic>Boeinninghausenia albiflora</italic> (Baumert et al., <xref rid="B16" ref-type="bibr">1994</xref>). Various monomeric acridones and coumarin-acridone dimers have been isolated from citrus plants. Acridones are anthranilate-derived alkaloids and biosynthesized by polyketide pathways in plants. The acridone synthase (ACS) has been characterized from <italic>R. graveolens</italic>. It catalyzes the reaction similar to CHS, but rather uses <italic>N</italic>-methylanthraniloyl-CoA as a starter substrate and performs the decarboxylated condensation of three malonyl-CoA units followed by the Claisen condensation to produce 1,3-dihydroxy-<italic>N</italic>-methylacridone, a common intermediate which leads directly to the formation of more complex acridones such as rutacridone (<xref rid="F3" ref-type="fig">Figure 3B</xref>) (Lim et al., <xref rid="B72" ref-type="bibr">2016</xref>). Despite, 74% amino acid sequence similarity between <italic>R. graveolens</italic> ACS and CHS, ACS differ in substrate specificity and fail to efficiently utilize -coumaroyl-CoA, the common CHS starter. The difference in the cavity volume which is bigger in ACS accounts for the differences in starter specificity and ability to accommodate larger <italic>N</italic>-methylanthraniloyl-CoA as starter molecules (Springob et al., <xref rid="B112" ref-type="bibr">2000</xref>). A recently characterized Type III PKS, quinolone synthase (QNS), depicts similar substrate specificity as ACS and is involved in the formation of quinolone alkaloids in <italic>Aegle marmelos</italic> (Resmi et al., <xref rid="B104" ref-type="bibr">2013</xref>). Both ACS and QNS share similar substitutions (T132S, S133A, and F265V) in the cavity lining residue sites compared with CHS, which might account for their unique substrate specificity (Lukačin et al., <xref rid="B75" ref-type="bibr">2001</xref>). Other <italic>Citrus microcarpa</italic> derived ACS shows remarkable substrate promiscuity and is employed in the production of 4-hydroxy-<italic>N</italic>-methylquinolone, 1,3-dihydroxy-<italic>N</italic>-methylacridone, and <italic>N</italic>-methylanthranilriacetic acid lactone in addition to producing chalcone, benzophenone, and phloroglucinol scaffolds (Mori et al., <xref rid="B87" ref-type="bibr">2013</xref>). The crystal structure analysis of both ACS and QNS of <italic>Citrus microcarpa</italic> has revealed the presence of a wide active site entrance that explains the promiscuous behavior of these enzymes. These results provided the first structural basis for the generation of anthranilate-derived alkaloids by Type III PKSs. One of the examples of similar acridone synthesizing Type III PKS comes from a non-Rutaceae family plant, <italic>Huperzia serrata</italic> (Chinese club moss) which also exhibits similar promiscuity of the substrate and produces several different chemical scaffolds from the same enzymatic core. PKS1 of <italic>H. serrata</italic> shares 44% sequence identity with other members of the CHS superfamily and groups with the non-CHS Type III PKSs [<xref rid="F4" ref-type="fig">Figure 4</xref> (6)]. PKS1 also contains a large active site that provides access to bigger starter molecules that allows the synthesis of aromatic tetraketides such as chalcones, benzophenone, phloroglucinols, and acridones (Wanibuchi et al., <xref rid="B127" ref-type="bibr">2007</xref>). Functionally, acridone molecules have several important biological activities and the basic acridone skeleton can be further modified by prenylation by the action of dimethylallyldiphosphate (DMAPP), followed by the formation of an additional heterocylic five- or six-membered ring. Due to their planar structure acridones can intercalate DNA and therefore lead to genotoxicity (Michael, <xref rid="B83" ref-type="bibr">2001</xref>). Acronycine and its derivative from <italic>Acronychia baueri</italic> showed potential anticancer activity and the derivative, benzoacronycine has DNA methylation activity and is currently a subject of phase I clinical trials (Nguyen et al., <xref rid="B95" ref-type="bibr">2009</xref>). In a cytotoxic potency analysis of two acridones alkaloids and various other furanacridones, the acridone alkaloid, arborinine, displayed the the best activity with all the three tested human cancer cell lines viz., HeLa, MCF7, and A431 (Rethy et al., <xref rid="B105" ref-type="bibr">2007</xref>). Other activities of acridones are being antimicrobial, antimalarial, antifeedant, and inhibitors of acetylcholinesterase (Yang et al., <xref rid="B128" ref-type="bibr">2013</xref>; Gensicka-Kowalewska et al., <xref rid="B41" ref-type="bibr">2017</xref>).</p><fig id="F4" position="float"><?disp-level 4?><label>Figure 4</label><caption><p>Phylogenetic tree analysis of the representative type III PKSs from each cyclization class; the alignment was generated by CLUSTALW. The examples of each enzyme class are color-coded and the tree was constructed using the Maximum likelihood method by using 1,000 bootstraps.</p></caption><alternatives><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="image" xlink:href="fpls-12-746908-g0004.jpg"><?cloudpmc-path blobs/b4e2/8551677/be763c5ce044/fpls-12-746908-g0004.jpg?><?cloudpmc-bucket cdn?><?image-server-status LOAD_COMPLETED?><?original-height 2480?><?original-width 1753?><?scaled-height 992?><?scaled-width 701?></graphic><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="thumb" xlink:href="fpls-12-746908-g0004.gif"><?cloudpmc-path blobs/b4e2/8551677/9f97f08e2851/fpls-12-746908-g0004.gif?><?cloudpmc-bucket cdn?></graphic></alternatives></fig></sec><sec id="sec6" disp-level="3"><title>Benzophenone Synthase—Benzophenones and Xanthones</title><p>Benzophenone is a class of plant secondary metabolites biosynthesized by the benzophenone synthase (BPS). BPS display a substrate specificity toward smaller starters such as benzoyl-CoA and its derivatives. It catalyzes the decarboxylative condensation of three molecules of malonyl- CoA with benzoyl-CoA to yield a tetraketide intermediate 2, 4, 6-trihydroxybenzophenone (<xref rid="F3" ref-type="fig">Figure 3C</xref>). The BPS together with the biphenyl synthase (BIS) forms a separate clade with non-CHS like PKSs in the phylogenetic tree [<xref rid="F4" ref-type="fig">Figure 4</xref> (10) and (11)]. Despite sharing 60% sequence identity with CHS, BPS differs in starter specificity. The crystal structure studies of BPS from <italic>Hypericum androsaemum</italic> highlighted a mutation in the active site of the enzyme that hinders its ability to utilize larger substrate molecules thereby only accepting small hydrophobic molecules such as benzoyl-CoA (Stewart et al., <xref rid="B113" ref-type="bibr">2017</xref>). Interestingly, CHS triple mutant (L263M/F265Y/S338G) produced an enzyme that preferred benzoyl-CoA over -coumaroyl-CoA as a substrate (Liu et al., <xref rid="B73" ref-type="bibr">2003</xref>). The 2, 4, 6-trihydroxybenzophenone, an intermediate in the BPS reaction gives rise to various chemical products with diverse biological activities. The BPS from the medicinal herb <italic>Centaurium erythraea</italic> utilizes 3-hydroxybenzoyl-CoA as a preferred starter substrate to produce 2, 3′, 4, 6- tetrahydroxybenzophenone, the precursor of xanthones.</p><p>The prenylated xanthones (α-mangostin) and other xanthones have antimicrobial, antituberculosis, antioxidant pro-apoptotic, anti-inflammatory, antidiabetic, and CNS stimulation activities (Pinto et al., <xref rid="B98" ref-type="bibr">2005</xref>; Nualkaew et al., <xref rid="B96" ref-type="bibr">2012</xref>; Negi et al., <xref rid="B93" ref-type="bibr">2013</xref>).</p></sec><sec id="sec7" disp-level="3"><title>Valerophenone Synthase—Valerophenone, Deoxy-Humulone, and Cohumulone</title><p>Valerophenone is butyl phenyl ketone which is an intermediate in the production of α and β-acids in the lupulin gland of the agriculturally important hop plant (<italic>Humus lupus</italic> L.). The α and β-acids are responsible for the bitter taste and aroma of the beer along with its stability. Valerophenone is biosynthesized by valerophenone synthase (VPS), a homolog of CHS that catalyzes a typical CHS-like reaction but differs in starter selectivity since it uses the branched-chain isobutryl-CoA or isovaleryl-CoAs as starter substrates. The decarboxylative condensation of three molecules of malonyl- CoA with these starter molecules yields phlorobutrylophenone or phloroisovalerophenone, respectively, which further gives rise to deoxyhumulone and deoxycohumulone. Deoxyhumulone and deoxycohumulone subsequently oxidize to yield α and β-acids (Okada and ITo, <xref rid="B97" ref-type="bibr">2001</xref>) (<xref rid="F3" ref-type="fig">Figure 3D</xref>). In addition to the flavor of a beer, the hop-derived secondary metabolites polyphenols, essential oils and resins have various pharmacological and biological activities such as estrogenic, antioxidant, anti-inflammatory, antimicrobial, and anti-cancer. Moreover, the α-bitter acids from hop have also been associated with combating lifestyle diseases (Karabín et al., <xref rid="B55" ref-type="bibr">2016</xref>).</p></sec><sec id="sec8" disp-level="3"><title>Pentaketide Chromone Synthase—Chromones</title><p>Pentaketide chromone (5,7-dihydroxy-2-methylchromone) is biosynthesized by a unique type III PKS, known as the pentaketide chromone synthase (PCS) that catalyzes the condensation of five molecules of malonyl-CoA as starter substrates (<xref rid="F3" ref-type="fig">Figure 3E</xref>). The substitution of a single amino acid residue, Met207 with Gly, in PCS (corresponding to the Thr197 residue in the active site of msCHS) produced an enzyme that efficiently generates aromatic octaketides, SEK4 and SEK4b (Wanibuchi et al., <xref rid="B126" ref-type="bibr">2011</xref>). PCS from <italic>Aloe arborescens</italic> display promiscuous substrate specificities; however, the enzyme only produced triketides and teraketides α-pyrones, accepting a large number of starter molecules, from aromatic to aliphatic-CoA esters (Abe et al., <xref rid="B7" ref-type="bibr">2005</xref>). PCS shares 50–60% sequence identity with the CHS superfamily of enzymes. Additionally, it shows 50% identity with ALS2c, from <italic>Rheum palmatum</italic> which catalyzes the formation of a heptaketide, aloesone (2-acetonyl-7-hydroxy-5-methylchromone), by condensing one molecule of acetyl-CoA with six molecules of malonyl-CoA. <italic>A. arborescens</italic> is well-known to be a rich source of chromones and anthraquinones and PCS is involved in the biosynthesis of many of these chromone molecules.</p><p>Chromones are distributed in virtually every known terrestrial plant and more than 4,000 natural derivatives have been isolated and structurally elucidated until now. They are three ringed phenolic compounds and usually contribute to plant defenses and are one of the most extensively studied bioactive compounds. They have outstanding biological activities, including antimicrobial, antiviral, anticancer, anti-inflammatory, and antioxidant. They are essentially divided into three subgroups, namely simple chromones, pyranochromones, and furanochromones. Cytotoxic and antimicrobial compounds are simple chromones, like glucoside biflorin and 2-phenoxychromone, capillarism. Khellin and visnagin (dehydrokhelline) are two phototoxic and vasorelaxant cAMP phosphodiesterase inhibitors derived from <italic>Ammi visnaga</italic> (Apiaceae) seeds (Polya, <xref rid="B99" ref-type="bibr">2003</xref>). It is interesting to note that newer unusual chromones, such as 2-(2-phenylethyl chromone) (PEC), exhibits promising neuroprotective, cytotoxic, antibacterial, and anti-inflammatory activities. PEC differs from other chromones because it possesses a C2-position phenylethyl substituent instead of a quite common phenyl group. This unique structural feature has provided neuroprotective activity within this chromone family that can be useful for the treatment of neurodegenerative disorders. They were obtained only by a few plant species such as <italic>Eremophila georgei</italic> (Myoporaceae), <italic>Bothriochloa ischaemum</italic> (Gramineae) (Wang et al., <xref rid="B124" ref-type="bibr">2001</xref>), <italic>Imperata cylindrica</italic> (Gramineae), <italic>Cucumis melo</italic> L. (Cucurbitaceae), and <italic>Aquilaria spp</italic>. (Thymelaeaceae) (Ibrahim and Mohamed, <xref rid="B50" ref-type="bibr">2015</xref>).</p></sec></sec><sec id="sec9" disp-level="2"><title>C<sub>2</sub>-C<sub>7</sub> Aldol Cyclization Derived Type III PKS Products</title><sec id="sec10" disp-level="3"><title>Stilbene Synthase—Stilbene, Resveratrol, and Pinosylvin</title><p>Stilbene is biosynthesized by the stilbene synthase (STS) which shares 75–90% sequence identity with CHS and is thought to be evolved from gene duplication events. STS has a much-restricted occurrence and has been identified from <italic>Vitaceae</italic> (grapevine), <italic>Gnetaceae, Dipterocarpaceae, Pinaceae</italic> (pine), <italic>Poaceae</italic> (sorghum), <italic>Fabaceae</italic> (peanuts), <italic>Leguminosae</italic>, and <italic>Cyperaceae</italic> families (Austin et al., <xref rid="B13" ref-type="bibr">2004</xref>). Stilbenes are simple polyphenolic compounds formed by similar iterative decarboxylative condensation of three molecules of malonyl-CoA with one molecule of -coumaroyl-CoA but follow a C<sub>2</sub>-C<sub>7</sub> aldol type ring closure of the common tetraketide intermediate which produces a chemically different scaffold than CHS (<xref rid="F5" ref-type="fig">Figure 5A</xref>). Additionally, CHS and STS are both capable of synthesizing products of the other cyclization type (STS produces chalcone and CHS produces stilbene in minor quantities) and display the potential to employ both types of cyclizations, preferring one to the other. The crystal structure of <italic>Pinus sylvestris</italic> STS reveals the basis of stilbene synthesis by showing the presence of cryptic thioesterase activity and an aldol switch. Stilbene and di- and tri-hydroxy stilbenes have accumulated considerable attention in recent times because of their diverse health benefits. In the last 12 years, almost 800 stilbenoids have been isolated from natural sources. The major group includes stilbene, stilbenoids, and stilbene oligomers. Stilbenoids can act as antimicrobial compounds, phytoalexins, and feeding deterrents, providing protection against pathogens and herbivores (Jeandet et al., <xref rid="B52" ref-type="bibr">2010</xref>). In addition to their participation in defense mechanisms in plants, stilbenes, especially resveratrol (3, 5, 4′-trihydroxy-trans-stilbene) and its derivatives exhibit significant pharmacological properties and are thought to be of importance as antioxidants, cardioprotective, antitumor, and neuroprotective agents. Several efforts have been underway to understand the importance of resveratrol and to develop strategies for its over-production in heterologous host systems (Markus and Morris, <xref rid="B80" ref-type="bibr">2008</xref>; Gambini et al., <xref rid="B40" ref-type="bibr">2015</xref>). Different health benefits, including calorie restriction imitation, antioxidant, anti-inflammatory, antidiabetic, and anti-apoptotic properties, have made this an important molecule for drug development and is part of major clinical trials (Gambini et al., <xref rid="B40" ref-type="bibr">2015</xref>; Berman et al., <xref rid="B21" ref-type="bibr">2017</xref>; Thapa et al., <xref rid="B116" ref-type="bibr">2019</xref>). The role of stilbenes as phytoalexins has been a subject of study for many researchers over the last three decades. The pinosylvin 3-<italic>O</italic>-methyl ether compound is the major active component that provides resistance to pines against nematodes and acts as a potent deterrent toward herbivores in several plant species. The antifungal nature of stilbene compounds make them a good candidate for wood decay prevention. In addition, certain constitutive stilbenes can also act as allelochemicals like piceatannol from <italic>Carexspp</italic>. which inhibits plant growth or plant photosynthesis, thus limiting the development of neighboring plants (Fiorentino et al., <xref rid="B38" ref-type="bibr">2008</xref>).</p><fig id="F5" position="float"><?disp-level 4?><label>Figure 5</label><caption><p>Examples of aldol type condensation reactions employed by various type III PKSs to produce a variety of polyketide products. Describes the reaction catalyzed by <bold>(A)</bold> Stilbene synthase (STS), <bold>(B)</bold> Bibenzyl synthase (BBS), <bold>(C)</bold> Biphenyl synthase (BPS), <bold>(D)</bold> Aleosone synthase (ALS), <bold>(E1)</bold> Octaketide synthase (OKS), <bold>(E2)</bold> Anthrone synthesizing CHS-L9 and PcOKS, <bold>(F)</bold> Stilbenecarboxylate Synthase (STCS), <bold>(G)</bold> 2′-Oxoalkylresorcinol Synthase (PpORS), and <bold>(H)</bold> Olivetol synthase (OLS). The dashed arrows represent the proposed pathways. The green-colored nX value represents the number of malonyl-CoA molecules employed in a reaction; O-Met, O-methyltransferase; SAM, S-adenosylmethionine.</p></caption><alternatives><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="image" xlink:href="fpls-12-746908-g0005.jpg"><?cloudpmc-path blobs/b4e2/8551677/78d07b42655d/fpls-12-746908-g0005.jpg?><?cloudpmc-bucket cdn?><?image-server-status LOAD_COMPLETED?><?original-height 2015?><?original-width 1772?><?scaled-height 805?><?scaled-width 708?></graphic><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="thumb" xlink:href="fpls-12-746908-g0005.gif"><?cloudpmc-path blobs/b4e2/8551677/f06a3029942d/fpls-12-746908-g0005.gif?><?cloudpmc-bucket cdn?></graphic></alternatives></fig></sec><sec id="sec11" disp-level="3"><title>Bibenzyl Synthase—Bibenzyls, Batatasin III, and Hircinol</title><p>The bibenzyl synthase (BBS) catalyzes the biosynthesis of 9,10-dihydrophenanthrene by the condensation of <italic>m</italic>-hydroxyphenylpropionyl-CoA with three molecules of malonyl-CoA to produce a 3, 3′5-trihydroxybibenzyl compound. The polyketide product is further mono-methylated by the action of an <italic>S</italic>-adenosyl methionine-dependent <italic>O</italic>-methyltransferase which upon subsequent oxidation transforms the bibenzyl compound into dihydrophenanthrenes, batatasins (<xref rid="F5" ref-type="fig">Figure 5B</xref>). Batatasins are further metabolized to tricyclic phytoalexin 9, 10-dihydrophenanthrene derivatives such as hircinol, a compound known to accumulate in stressed or wounded orchid tissues. The expression of enzymes involved in the formation of dihydrophenanthrene has been observed to be 100-fold increased by the treatment with fungal elicitor <italic>Botrytis cinerea</italic>, suggesting the role of these metabolites as phytoalexins (Preisigmuller et al., <xref rid="B100" ref-type="bibr">1995</xref>). The bibenzyl batatasins III from <italic>Dioscorea</italic> acts as a growth inhibitor for lettuce seed germination, lettuce hypocotyl elongation and wheat coleoptile elongation (Hashimoto and Tajima, <xref rid="B44" ref-type="bibr">1978</xref>). Batatasin III has shown antidiabetic activity by inhibiting the inhibitor of α-glucosidase. Interestingly, there is a wide range of biological activities exhibited by phenanthrene derivatives, such as anti-inflammatory, anti-allergic, antimicrobial, cytotoxic, antifungal, phytotoxic, antifungal, antiplatelet aggregation, spasmolytic, antifibrotic, and inhibitory activities on nitrogen oxide (NO) production (Zhou et al., <xref rid="B132" ref-type="bibr">2016</xref>).</p></sec><sec id="sec12" disp-level="3"><title>Biphenyl Synthase—Biphenyl, Dibenzofurans, and Dicoumarol</title><p>Biphenyl and dibenzofurans are the phytoalexins found in the Rosaceae plant family. The chemical core of these compounds is biosynthesized by the biphenyl synthase, BPS, which shows a preference for the benzoic acid derived starter molecules similar to BPS and performs a three-round of condensation reaction with malonyl-CoA to yield a tetraketide intermediate (<xref rid="F5" ref-type="fig">Figure 5C</xref>) (Liu et al., <xref rid="B74" ref-type="bibr">2007</xref>). The intermediate undergoes intramolecular aldol condensation to produce 3, 5-dihydroxybiphenyl, a precursor molecule for two major classes of plant phytoalexins, e.g., dibenzofuran and biphenyl aucuparin. BIS shares almost 60% amino acid sequence identity with other members of the CHS superfamily of enzymes and group near BPS in an evolutionary tree due to its specific requirements for benzoic acid derivatives [<xref rid="F4" ref-type="fig">Figure 4</xref> (10) and (11)]. The expression of biphenyl and dibenzofurans was found to transiently and rapidly increase in response to the treatment with yeast extract in a cell suspension of <italic>Sorbus aucuparia</italic>. Furthermore, various elicitation studies with different elicitors have shown the expression of one of these phytoalexins, where aucuparin expression was induced by yeast extracts, whereas eriobofuran as the main inducible constituent was accumulated by the fire blight bacterium, <italic>Erwinia amylovora</italic>, and scab causing fungus, <italic>Venturia inaequalis</italic> (Hüttner et al., <xref rid="B49" ref-type="bibr">2010</xref>). The medicinally important 4-hydroxycoumarin derivative, dicoumarol (anticoagulant) is also synthesized by the action of BIS by condensing one molecule of salicoyl-coA with one unit of malonyl-CoA. The crystal structure of BIS from <italic>Malus domestica</italic> has shown insights into the functional diversification of this enzyme, brought by mutations in the active site cavity which limit the preferences of its starter substrates and render it incompetent for the use of larger -coumaroyl-CoA molecules (Beerhues and Liu, <xref rid="B19" ref-type="bibr">2009</xref>; Stewart et al., <xref rid="B113" ref-type="bibr">2017</xref>).</p></sec><sec id="sec13" disp-level="3"><title>Aleosone Synthase—Chromones, Aloesones, and Aloesin</title><p>The aleosone synthase (ALS) is a key enzyme in the biosynthesis of heptaketide chromone aloesone derivatives (<xref rid="F5" ref-type="fig">Figure 5D</xref>) (Abe et al., <xref rid="B8" ref-type="bibr">2004</xref>). ALS shares ~60% sequence identity with CHS and retains catalytic residues and the overall fold. The cavity of ALS is almost equivalent to that of the CHS; however, its cavity is substantially bigger than other pyrones synthesizing enzymes such as 2-PS. On the contrary, the cavity volume of 2- PS is 1/3rd of the CHS due to a steric bulk at the active site residues positions (197 and 338) obstructing the coumaroyl-binding pocket, thus only allowing a smaller starter unit. Although product profiles and elongation reactions differ between ALS and 2-PS, similar cavity residue positions (197, 257, and 338 of CHS) are affected in both ALS and 2-PS. In ALS, Thr197, Gly256, and Ser338, the active site residues lining the initiation/elongation cavity (of CHS), are uniquely replaced with Ala, Leu, and Thr, respectively (<xref rid="F2" ref-type="fig">Figure 2</xref>). Gly256 residue is crucial for determining starter substrate selectivity, while Thr197 controls the polyketide chain length whereas the Ser338 directs the linear polyketide intermediate to extend into the enzyme's pocket (Abe et al., <xref rid="B9" ref-type="bibr">2006</xref>). Despite its structural similarity to CHS, the recombinant ALS was unable to accept natural starters, such as -coumaroyl-CoA or other aromatic CoA esters (cinnamoyl-CoA and benzoyl-CoA), instead effectively utilized acetyl-CoA as a starter and condensed with six molecules of malonyl-CoA to generate an aromatic heptaketide, aloesone <italic>in-vitro</italic> reaction. ALS from rhubarb (<italic>R. palmatum</italic>) and aloe (<italic>A. arborescens</italic>) catalyzes the condensation of acetyl-CoA with six molecules of malonyl-CoA followed by an aldol condensation to generate a heptaketide aromatic pyrone 6-(2-(2,4-dihydroxy-6-methyl phenyl)-2oxoethyl)-4-hydroxy-2-pyronechromone with trace amounts of hexaketide pyrones 6-(2,4-dihydroxy-6-methyl phenyl) 4-hydroxy-2-pyrone and octaketide pyrones SEK4 and SEK4b. Finally, the unstable heptaketide pyrone is subsequently spontaneously isomerized to β-ketoacid chromone, followed by decarboxylation to produce aloesone heptaketides. Aloesone O-glucoside (7-O-β-D-glucopyranoside) from rhubarb and aloesone C-glucoside (8-C-β-D-glucopyranoside) (aloesin) from aloe (<italic>Aloe ferox</italic>, Liliaceae) has anti-inflammatory effects (Radha and Laxmipriya, <xref rid="B101" ref-type="bibr">2015</xref>).</p></sec><sec id="sec14" disp-level="3"><title>Octaketide Synthase—Anthraquinone and Emodin Anthrone</title><p>Anthraquinone is an anthracene derivative in plants and is the precursor of emodin anthrone that could further act as a precursor of hypericin found in the <italic>Hypericum perforatum</italic> L. St John's wort. Hypericin has antidepressant activities and a role in insect-plant protection. The photosensitizer activities of hypericin makes it a potential antitumor and antiviral agent (Karppinen et al., <xref rid="B56" ref-type="bibr">2008</xref>). The two anthraquinone glycosides from <italic>Cassia angustifolia</italic> Vahl, known as Sennoside A and B, have laxative effects as well as having notable anticancer activity in multiple cell lines (Chetri et al., <xref rid="B25" ref-type="bibr">2016</xref>). The anthranoid scaffold of anthraquinone is synthesized by an octaketide synthase (OKS) that utilizes acetyl-CoA as a starter substrate and condenses with seven units of malonyl-CoA to yield a linear octaketide intermediate (<xref rid="F5" ref-type="fig">Figure 5E1</xref>). The incorrect folding of the intermediate could result in shunt products, SEK4 and SEK4b (Abdel-Rahman et al., <xref rid="B1" ref-type="bibr">2013</xref>). Abdel-Rahman et al. (<xref rid="B1" ref-type="bibr">2013</xref>) showed the generation of torosachrysone (tetrahydroanthracene) and emodin anthrone in the <italic>in vitro</italic> reaction using acetyl-CoA and [2<sup>−14</sup>C] malonyl-CoA with yeast extract-treated cell cultures. Kang et al. (<xref rid="B54" ref-type="bibr">2020</xref>), have recently identified a PKS gene, CHS-L9, responsible for the biosynthesis of atrochrysone carboxylic acid and endrocrocin anthrone in the medicinal plant <italic>Senna tora</italic>, by utilizing a genome-based screening coupled with biochemical characterization (<xref rid="F5" ref-type="fig">Figure 5E2</xref>). The study is the first to identify a role of Type III PKS in the synthesis of anthraquinone, however, the study did not report the detection of the final product, emodin, or other fully oxidized products. While it has previously been shown, HpPKS2, from <italic>H. perforatum</italic> holds the potential to synthesize octaketides (SEK4 and SEK4b) <italic>in vitro</italic>, and the expression of this gene is corroborated with the location of hypericin accumulation in the dark glands of leaves and flower buds in <italic>H. perforatum</italic> (Karppinen et al., <xref rid="B56" ref-type="bibr">2008</xref>). The above studies show the participation of Type III PKSs in the biosynthesis of plant anthraquinones and derivatives.</p><p>Anthraquinones derivatives have been identified from a variety of species such as <italic>Rheum, Rumex, Aloe</italic>, and <italic>Cassia</italic> containing medicinal and industrial properties. Most anthraquinones are laxative and emodin has been linked to a variety of biological activities including, anti-inflammatory, antimicrobial, anticancer, antidiabetic, DNA-binding, and vasorelaxant (Chien et al., <xref rid="B26" ref-type="bibr">2015</xref>). For a detailed description of the bioactivities of anthraquinones and derivatives, interested readers can refer to the following articles (Dave and Ledwani, <xref rid="B31" ref-type="bibr">2012</xref>; Chien et al., <xref rid="B26" ref-type="bibr">2015</xref>; Su et al., <xref rid="B114" ref-type="bibr">2020</xref>).</p></sec><sec id="sec15" disp-level="3"><title>Stilbene Carboxylate Synthase-5-Hydroxylunularic Acid</title><p>The stilbene carboxylate synthase (STCS), from <italic>Hydrangea macrophylla</italic>, catalyzes the typical reaction of the stilbene synthase except it retains the terminal carboxyl group to produce a 5-hydroxylunularic acid through condensation of dihydro--coumaroyl-CoA substrate with three molecules of malonyl-CoA (<xref rid="F5" ref-type="fig">Figure 5F</xref>) (Eckermann et al., <xref rid="B34" ref-type="bibr">2003</xref>). Worth noting that with -coumaroyl-CoA as a starter, STCS produces only bisnoryagenin and coumaroyl triacetic acid lactone (CTAL). Despite the mechanistic similarity between STS and STCS, recent structural studies have shown that STCS is closer to CHS. CTAS and STCS from the Hydrangea varieties are now considered to be identical in their function because the enzymes are similar except for five amino acid replacements, CTAS and STCS grouped in a separate clade distinct from STS [<xref rid="F4" ref-type="fig">Figure 4</xref> (24) and (25)]. Functionally, lunularic acid and its analogs have growth-inhibiting activity and inhibit germination in liverwort. Lunularic acid shares remarkable biological and structural similarities to abscisic acid (ABA) which explains its ABA-like activity (Yoshikawa et al., <xref rid="B129" ref-type="bibr">2002</xref>).</p></sec><sec id="sec16" disp-level="3"><title>2′-oxoalkylresorcinol Synthase—Oxoalkylresorcinol, Benzoquinone, and Sorgoleone</title><p>The 2′-oxoalkylresorcinol synthase is involved in the synthesis of 2′-oxoalkylresorcinol in the bryophyte <italic>Physcomitrella patens</italic> and has recently been cloned and characterized to understand the evolution of land plants due to its high possibility to be the most common ancestor of the Type III PKSs of the land plants. The <italic>in planta</italic> function of PpORS is most likely to prevent dehydration in the moss as the recent study has shown defects in cuticular structure and increased dehydration susceptibility, with increased color permeability in case of the <italic>PpORS</italic> mutant (Li et al., <xref rid="B70" ref-type="bibr">2018</xref>). PpORS showed the ability to condense a very-long-chain fatty acyl-CoA with four molecules of malonyl-CoA to catalyze decarboxylative aldol cyclization to yield a pentaketide 2′-oxoalkylresorcinol (<xref rid="F5" ref-type="fig">Figure 5G</xref>). However, PpORS failed to produce alkylresorcinol molecules solely, emphasizing the crucial role of the oxo group in the final product in a cuticle, where the pathway genes are expressed.</p><p>Mutagenesis studies have revealed the importance of Ala286 in determining the starter specificities since the A286F mutant failed to produce pentaketide 2′-oxoalkylresorcinol and only produced triketide alkylpyrones from fatty acyl-CoA substrates with shorter chains (Kim et al., <xref rid="B62" ref-type="bibr">2013</xref>). Alkylresorcinol belongs to a group of phenolic secondary metabolites and has been reported by many different species of higher plants. They play a major role in plants as molecules of defense, allelochemicals, and phytoanticipins (Baerson et al., <xref rid="B15" ref-type="bibr">2010</xref>). These alkylresorcinols and derivatives are mainly confined within seed coats of wheat, rye, barley, and other cereals. The lipid benzoquinone sorgoleone (alkylresorcinol derivative) produced from <italic>Sorghum bicolor</italic> is the classic example of allelochemical with antifungal activities and current reports suggest its polyketide mode of origin. Because of their amphipathic nature, alkylresorcinols and derivatives form thin exudate layers, completely covering root systems, thus providing a continuous defensive boundary. Alkylresorcinol producing two Type III PKSs (designated ARS1 and ARS2) are identified in hair root cells of <italic>S. bicolor</italic>, with a possible role in sorgoleone production (Cook et al., <xref rid="B29" ref-type="bibr">2010</xref>). Similar efforts are being carried out in other cereals such as rice (<italic>Oryza sativa</italic>) to identify alkylresorcinol synthesizing genes involved in the defense mechanisms. Recent studies have demonstrated a growth inhibitory effect of whole-grain derived alkylresorcinols in different cancer cell lines such as colon, breast, lung, CNS, hepatocarcinoma, and ovarian. Alkylresorcinols and derivatives can be interesting candidates for designing therapies for cancer prevention (Kruk et al., <xref rid="B66" ref-type="bibr">2017</xref>).</p></sec><sec id="sec17" disp-level="3"><title>Olivetol Synthase—Olivetol and Cannabinoids</title><p>The olivetol synthase (OLS) is associated with the synthesis of olivetol in <italic>Cannabis sativa</italic> and is expressed in flowers and rapidly expanding leaves which are the source of cannabinoids. OLS catalyzes the decarboxylative condensation of hexanoyl-CoA starter molecule with three molecules of malonyl-CoA followed by an aldol cyclization to generate olivetol with tetra- and tri-ketide pyrones (<xref rid="F5" ref-type="fig">Figure 5H</xref>) (Taura et al., <xref rid="B115" ref-type="bibr">2009</xref>). OLS shares ~65% sequence identity with CHS and retains catalytic residues at the corresponding sites. OLS is functionally similar to plant STS, however, with the restricted starter specificity as it does not incorporate the coumaroyl-CoA starters and prefers C<sub>4</sub>-C<sub>8</sub> aliphatic acyl-CoAs, possibly due to the presence of Ala, Met, Leu residue sites at Thr132, Thr194, and Thr197 in CHS which have defining role in starter specificity (<xref rid="F2" ref-type="fig">Figure 2</xref>). Interestingly, OLS shows a remarkable ability to utilize NAC tethered synthetic starters.</p><p><italic>C. sativa</italic> is the only known producer of cannabinoids. Cannabinoids consists of alkylresorcinol and monoterpene groups and their alkylresorcinol moieties are derived from olivetolic acid (OLA), an intermediate in the olivetol biosynthesis. The catalytic activity and expression profile of OLS highlight the possibility of OLA formation <italic>via</italic> the OLS pathway (Taura et al., <xref rid="B115" ref-type="bibr">2009</xref>). It was worth noting that the same study did not show the direct link between the OLS expression and olivetolic acid formation, thereby the <italic>in planta</italic> function of OLS remains elusive.</p><p>Cannabinoids have a variety of pharmaceutical and health benefits and are in high demand for pharmaceutical and medicinal purposes. The two major components of cannabinoids; Cannabidiol (CBD) and Tetrahydrocannabinol (THC) are linked with health-benefiting activities. Although natural and synthetic cannabinoids and derivatives possess different health and medicinal benefits, their use remain illegal due to the serious risk of drug abuse and related negative effects. Its use has been studied in treating various health conditions like pain, inflammation, multiple sclerosis (MSS), anorexia, stroke, PTSD, neurodegenerative disorders (Parkinson's disease, Huntington's disease, Tourette's syndrome, and Alzheimer's disease), epilepsy, glaucoma, osteoporosis, schizophrenia, cardiovascular disorders, cancer, obesity, and metabolic syndrome-related disorders (Kogan and Mechoulam, <xref rid="B63" ref-type="bibr">2007</xref>).</p><p>The current status of cannabis-derived compounds approved by the FDA permits usage of dronabinol (Synthetic Δ9-THC, Marinol®) and nabilone (a synthetic analog of Δ9-THC, Cesamet®) for counteracting the symptoms of nausea and vomiting associated with chemotherapy and to stimulate appetite in AIDS patients. Two more drugs based on cannabinoids; Nabiximols (Sativex®), a 1:1 ratio of Δ9-THC: CBD indicated in the symptomatic relief of multiple sclerosis and as an adjunctive analgesic treatment in cancer patients and the second is the investigational drug Epidiolex®, a concentrated CBD oil (&gt;98% CBD), which is an anti-seizure medication for Dravet and Lennox-Gastaut syndromes (National Academies of Sciences, <xref rid="B92" ref-type="bibr">2017</xref>).</p></sec></sec><sec id="sec18" disp-level="2"><title>C<sub>5</sub>-O-C<sub>1</sub> Lactonization Derived Type III PKS Products</title><sec id="sec19" disp-level="3"><title>Coumaroyl Triacetic Acid Synthase—Coumaroyl Triacetic Lactone and Hydramacrosides B</title><p>In the CHS catalyzed reaction, the common tetraketide intermediate can undergo cyclization through lactonization type ring closure by the action of the coumaroyl triacetic acid synthase (CTAS) to yield a coumaroyl triacetic lactone (CTAL) (<xref rid="F6" ref-type="fig">Figure 6A</xref>). In nature, lactonization can proceed non-enzymatically yielding triketide and tetraketide pyrones which are often the derailment products of the main Type III PKS reaction. The coumaroyl triacetic acid lactone in <italic>Hydrangea macrophylla var. thunbergii</italic> and dihydroxymethylphenyl methylpyrone compounds are thought to be premature hydrolysis products catalyzed by the CTAS. Therefore, it has been argued that CTAL is a common by-product for all CHS and STSs, but its production was limited to <italic>in vitro</italic> reactions (Akiyama et al., <xref rid="B10" ref-type="bibr">1999a</xref>). HmS from <italic>Hydrangea macrophylla var. hunbergia</italic> produces CTAL as the major product <italic>in vitro</italic> and is responsible for the biosynthesis of hydramacroside B in the mother plant (Akiyama et al., <xref rid="B10" ref-type="bibr">1999a</xref>,<xref rid="B11" ref-type="bibr">b</xref>). Hydramacrosides B have shown to exert an inhibitory effect on the histamine release from the rat mast cells induced by the antigen-antibody reaction (Matsuda et al., <xref rid="B81" ref-type="bibr">1999</xref>).</p><fig id="F6" position="float"><?disp-level 4?><label>Figure 6</label><caption><p>Examples of lactonization type reaction employed by various type III PKSs to produce a variety of polyketide products. Describes the reaction catalyzed by <bold>(A)</bold> Coumaroyl triacetic acid synthase (CTAS), <bold>(B)</bold> Pyrone synthase (2-PS), and <bold>(C)</bold> PKSA (lap6) and PKSB (lap5); PKS, polyketide reductase; PpASCL, anther specific chalcone like synthase.</p></caption><alternatives><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="image" xlink:href="fpls-12-746908-g0006.jpg"><?cloudpmc-path blobs/b4e2/8551677/79a31483be41/fpls-12-746908-g0006.jpg?><?cloudpmc-bucket cdn?><?image-server-status LOAD_COMPLETED?><?original-height 1648?><?original-width 1772?><?scaled-height 658?><?scaled-width 708?></graphic><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="thumb" xlink:href="fpls-12-746908-g0006.gif"><?cloudpmc-path blobs/b4e2/8551677/9d18031a58e5/fpls-12-746908-g0006.gif?><?cloudpmc-bucket cdn?></graphic></alternatives></fig></sec><sec id="sec20" disp-level="3"><title>Pyrone Synthase—Pyrones, Gerberin, and Parasorboside</title><p>2-PS catalyzes the synthesis of a triacetic acid lactone (TAL) from the condensation of an acetyl-CoA with two molecules of malonyl-CoA <italic>via</italic> a triketide intermediate using lactonization based cyclization (<xref rid="F6" ref-type="fig">Figure 6B</xref>). Pyrones in plants are only made by a few species, such as the <italic>Gerbera hybrida</italic> (Asteraceae) which is known to produce gerberin and parasorbosides, with a role in insect and pathogen resistance. In addition, bis-noryangonin (triketide pyrone) produced by the lactonization reaction of -coumaroyltriacetyl thioester in kava (<italic>Piper methysticum</italic>) is an effective anti-anxiety compound (Dewick, <xref rid="B32" ref-type="bibr">2002</xref>). The basic reaction scheme followed by a 2-PS is to condense a starter acetyl-CoA with two molecules of elongator malonyl-CoA to produce a triketide intermediate. The pyrone synthase (PS) catalyzes the production and subsequent cyclization of a common triketide into a 6-methyl-4-hydroxyl-2-pyrone (Helariutta et al., <xref rid="B45" ref-type="bibr">1995</xref>). One exception to this rule is that long-chain fatty acyl CoA esters such as palmitoleoyl (C<sub>16</sub>)–CoA can act as starter substrate for malonyl-CoA chain extension which results in the formation of alkyl polyphenols such as urushiol and ginkgolic acid (anacardic acid), the allergic substances of lacquer tree (<italic>Rhus verniciflua</italic>, Anacardiaceae) and ginkgo tree (<italic>Ginkgo biloba</italic>, Ginkgoaceae), respectively (Dewick, <xref rid="B32" ref-type="bibr">2002</xref>). The <italic>in planta</italic> functions of these anacardic acids are identified to be as physical trap and anti-pests agents. The second class of pyrones is dibenzo-α-pyrones which are an important group of heptaketide coumarin derivatives, with a fused tricyclic nucleus, that are known as dibenzo-α-pyranones, 6H-benzo[c]chromen-6-ones, and 6H-dibenzo [b, d] pyran-6-ones. They are synthesized by various microorganisms and also produced by metabolization of plant-derived ellagitannins and ellagic acid by the intestinal bacteria. They are usually isolated from various species of plants, fungi, microorganisms, and animals. Most of these dibenzo-α-pyrones have an extensive range of biological activities, including toxicity to humans and animals, cytotoxicity, phytotoxicity, antioxidant, anti-allergic, antimicrobial, and anti- acetylcholinesterase activities. In addition, the dibenzo-α-pyrones are key intermediates in the synthesis of cannabinoids and other pharmaceutically important compounds such as progesterone, androgen, glucocorticoid receptor agonists as well as endothelial proliferation inhibitors and antidyslipidemic agents (Mao et al., <xref rid="B79" ref-type="bibr">2014</xref>).</p></sec><sec id="sec21" disp-level="3"><title>PKSA (Lap6) and PKSB (Lap5)-Alkylpyrones and Sporopollenin</title><p>Th polyketide synthase A (PKSA) (anther specific chalcone-like synthase) and PKSB from <italic>Arabidopsis thaliana</italic> are recently found to be involved in the synthesis of alkylpyrones and hydroxyalkylpyrones by utilizing the starter molecules synthesized by acyl-CoA synthetase5 (ACOS5). The expression of both type III PKSs and ACOS5 have been closely regulated and the role of ACOS5 in the formation of sporopollenin has already been established. PKSA and PKSB are specifically and transiently expressed in tapetal cells during microspore development in <italic>Arabidopsis</italic> anthers. Sporopollenin is the main constituent of the pollen exine and is chemically the most robust structure known from the pollen cell wall. Recently, the importance of PKSA and PKSB has been established in the generation of hydroxylated α-pyrones, possible precursors for sporopollenin formation. Mutants compromised in the expression of these PKS genes displayed pollen exine layer defects and the double mutants were completely exine deficient and sterile (Kim et al., <xref rid="B61" ref-type="bibr">2010</xref>). PKSA and PKSB catalyze the decarboxylative condensation of malonyl-CoA with medium-chain to long-chain, and hydroxylated fatty acyl-CoA to yield tetraketide α-pyrones which are required for sporopollenin formation during the pollen grain development (<xref rid="F6" ref-type="fig">Figure 6C</xref>) (Kim et al., <xref rid="B61" ref-type="bibr">2010</xref>). PpASCL, an anther-specific chalcone-like synthase in moss <italic>Physcomitrella patens</italic> is an ortholog of PKSA, that is involved in the generation of alkyl and hydroxyalkyl α-pyrones by utilizing saturated acyl-CoAs (C<sub>6</sub>-C<sub>20</sub>), unsaturated acyl-CoAs (C16:1 or C18:1), or hydroxyl fatty acyl-CoAs. These hydroxylated pyrones provide the building blocks for the synthesis of sporopollenin in the moss spore cell wall (Colpitts et al., <xref rid="B27" ref-type="bibr">2011</xref>). Notably, both PKSA and PpASCL can utilize -coumaroyl-CoA to yield bisnoryangonin. The ability of these enzymes to accommodate large starter substrates is due to the presence of a smaller Gly205 in PKSA and Gly225 in PpASCL, at the place of a bulkier Thr197 residue in alfalfa CHS (<xref rid="F2" ref-type="fig">Figure 2</xref>). This change expands the entrance of the acyl-binding tunnel of these enzymes (Colpitts et al., <xref rid="B27" ref-type="bibr">2011</xref>).</p></sec></sec><sec id="sec22" disp-level="2"><title>Non-cyclized Based Type III PKS Derived Products</title><sec id="sec23" disp-level="3"><title>Benzalacetone Synthases—Benzalacetone, Quinolone Alkaloids, and Phenylbutanoids</title><p>The benzalacetone synthase (BAS) has a high (~70%) sequence identity with CHS, but still catalyzes a different reaction from the typical CHS type mechanism. It catalyzes a one-step decarboxylative condensation of -coumaroyl-CoA with a single molecule of malonyl-CoA to produce a diketide benzalacetone that upon reduction produces 4-hydroxy-phenylbutanone (pHPB) (<xref rid="F7" ref-type="fig">Figure 7A</xref>) (Abe et al., <xref rid="B5" ref-type="bibr">2003</xref>). The BAS fold is identical to that of the CHS, with comparable cavity volumes, but the gatekeeper Phe215 corresponding to the CHS residue position is mutated in BAS, allowing for early termination at the diketide stage, which upon subsequent decarboxylation by the benzalacetone reductase forms a benzalacetone (Borejsza-Wysocki and Hrazdina, <xref rid="B22" ref-type="bibr">1996</xref>; Abe et al., <xref rid="B5" ref-type="bibr">2003</xref>). The Leu208 in BAS (at the gatekeeper Phe215 position) might be a driver for the biosynthesis of benzalacetone in <italic>Rheum Palmatum</italic>. This substitution may hinder the subsequent chain extension of the diketide intermediate. In addition, the enzyme utilizes an alternate coumaroyl-binding pocket to accommodate the starter-CoA as the original entrance of the CHS is obstructed sterically in BAS by Leu125, Leu208, and Ser331. The conventional coumaroyl-binding pocket of CHS is restored in the I207L/L208F mutant of BAS, thus allowing the mutant to catalyze CHS-like reactions. The comparison of crystal structures of wild-type BAS and I207L/L208F mutant has revealed insights regarding the novel catalytic mechanism employed by BAS which proceeds <italic>via</italic> thioester bond cleavage of the enzyme-bound diketide intermediate and the final decarboxylation reaction to produce benzalacetone (Abe et al., <xref rid="B6" ref-type="bibr">2001</xref>; Morita et al., <xref rid="B88" ref-type="bibr">2010</xref>). BAS has been cloned and characterized from <italic>R. palmatum</italic> and <italic>Rubus idaeus</italic>; however, the BAS from <italic>R. idaeus</italic> is bifunctional and capable of synthesizing both benzalacetone and naringenin chalcones. BAS from <italic>R. palmatum</italic> can utilize malonyl or methylmalonyl-CoA and additionally accepts bulkier starter units such as <italic>N</italic>-methylanthraniloyl-CoA (or anthraniloyl-CoA) to produce 4-hydroxy-2(1H)-quinolones, precursors of quinolone alkaloids occurring in abundance in plants from the Rutaceae family but not found in rhubarb. Phenylbutanoids, a biologically important class of natural products from the Zingiberaceae family, receive the C<sub>6</sub>-C<sub>4</sub> moiety by the BAS catalyzed pathway. Phenylbutanoids possess various pharmacological activities including anti-inflammatory, antioxidant, and hypolipidemic (Sinha et al., <xref rid="B111" ref-type="bibr">2005</xref>). One of the important anti-inflammatory phenylbutanoids synthesized by BAS is glucoside lindleyin in the medicinal plant rhubarb (<italic>Rheum palmatum</italic>) (<xref rid="F7" ref-type="fig">Figure 7A</xref>) (Mander and Liu, <xref rid="B78" ref-type="bibr">2010</xref>). Benzalacetone, also known as raspberry ketone, is the characteristic aroma compound of raspberries. The toxicity of the pHPB to phytopathogenic fungi and rapid induction of the pathway enzymes suggest the possibility of this being employed in plant defense response. Raspberry ketone has various industrial applications such as in flavoring, aroma, fragrances, dietary supplements to aid weight loss, and male-specific lures used in agriculture (Vargas et al., <xref rid="B119" ref-type="bibr">2010</xref>; Lee, <xref rid="B69" ref-type="bibr">2016</xref>).</p><fig id="F7" position="float"><?disp-level 4?><label>Figure 7</label><caption><p>Examples of non-cyclization based -type III PKSs to produce a variety of polyketide products. Describes the reaction catalyzed by <bold>(A)</bold> Benzalacetone synthases (BAS), <bold>(B)</bold> β-Diketone Synthase (DKS), <bold>(C)</bold> Diketide- CoA synthase (DCS) and Curcumin synthase (CURS1), <bold>(D)</bold> Quinolone synthase (QNS), <bold>(E)</bold> Alkyldiketide-CoA synthase (ADS) and alkylquinolone synthase (AQS), <bold>(F)</bold> polyketide like synthase (YPKS), and <bold>(G)</bold> Polyketide synthase (HsPKS); CYP82M3, cytochrome oxidase.</p></caption><alternatives><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="image" xlink:href="fpls-12-746908-g0007.jpg"><?cloudpmc-path blobs/b4e2/8551677/a3bdf399a04f/fpls-12-746908-g0007.jpg?><?cloudpmc-bucket cdn?><?image-server-status LOAD_COMPLETED?><?original-height 1932?><?original-width 1772?><?scaled-height 772?><?scaled-width 708?></graphic><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="thumb" xlink:href="fpls-12-746908-g0007.gif"><?cloudpmc-path blobs/b4e2/8551677/808f1bdbe11e/fpls-12-746908-g0007.gif?><?cloudpmc-bucket cdn?></graphic></alternatives></fig></sec><sec id="sec24" disp-level="3"><title>β-Diketone Synthase—β-Diketone and Wax Polyketides</title><p>The <italic>cer c</italic>, β-diketone synthase (DKS) belonging to the <italic>Cer-cqu</italic> gene cluster identified in barley is involved in the synthesis of β-diketones forming long, thin crystalline tubes and are components of the epicuticular wax layer present on the aerial surfaces of the plant (von Wettstein-Knowles, <xref rid="B122" ref-type="bibr">2017</xref>). The cluster comprises <italic>cer c</italic> (DKS), <italic>cer u</italic> (P450 hydroxylase), and <italic>cer q</italic> (lipase/carboxyl transferase) genes tightly linked for participating in the biosynthetic pathway of β-diketones, hydroxy-β-diketones, and esterified alkan-2-ols. The β-diketones component of the epicuticular wax is found in Eucalyptus, Acacua, Dianthus, Festuca, Buxus, Rhododendron, and Hosta lancufolia. The β-diketones are comprised of primarily 29, 31, and 33 carbon skeletons. DKS was shown to utilize shorter fatty acyl-CoAs (C<sub>12</sub>-C<sub>16</sub>) but not C<sub>18</sub>
<italic>in vitro</italic> reaction and the 3-oxo-C<sub>16</sub>-CoA was identified to be the most preferred starter for this enzyme while 3-oxo-C<sub>18</sub>-CoA was the precursor of choice <italic>in vivo</italic> (Mikkelsen, <xref rid="B85" ref-type="bibr">1984</xref>). DKS performs two rounds of extension of the 3-oxo-C<sub>16</sub>-CoA starter to yield a tetraketide intermediate in barley, which is typical of the other type III PKSs. The intermediate could further be elongated by an FAE (fatty acyl elongase) complex to reveal a β-diketone carbon skeleton. However, it is currently not clear whether FAE produces the six elongations or DKS itself to produce the final products (Schneider et al., <xref rid="B109" ref-type="bibr">2016</xref>) (<xref rid="F7" ref-type="fig">Figure 7B</xref>).</p><p>These epicuticular waxes in plants provide a water barrier, protect shoots from desiccation and serve as the first line of defense against pathogens and herbivores, in addition to reflecting harmful UV radiation. The role of the type III PKS system in the synthesis of epicuticular waxes further expands the chemical potential of these enzyme systems. This study further enhances our understanding of the <italic>in planta</italic> significance of type III PKSs that could be exploited for commercial purposes.</p></sec><sec id="sec25" disp-level="3"><title>Diketide-CoA Synthase and Curcumin Synthase—Curcumin, Demethoxycurcumin, Bisdemethoxycurcumin</title><p>The diketide-CoA synthase (DCS) in conjunction with curcumin synthase 1 (CURS1) participates in the biosynthesis of curcuminoids found within the dried rhizome of the perennial herb <italic>Curcuma longa Linn</italic> (Turmeric). Chemically curcuminoids or curcumin are polyphenols that are abundantly present in the spice turmeric (Haldi). They are a mixture of curcumin, demethoxycurcumin, and bisdemethoxycurcumin. The proposed C6–C7–C6 curcuminoid scaffold is synthesized by employing a three-step reaction from the phenylpropanoids in which the first malonyl-CoA condenses with feruloyl-CoA, to produce a feruloyldiketide-CoA by the action of DCS, subsequently the diketide gets converted into a β-keto acid through the hydrolysis followed by the second condensation with another molecule of feruloyl-CoA to produce curcumin by the action of CURS1 (<xref rid="F7" ref-type="fig">Figure 7C</xref>) (Katsuyama et al., <xref rid="B57" ref-type="bibr">2009</xref>) (Abe and Morita, <xref rid="B4" ref-type="bibr">2010</xref>). Both DCS and CURS1 can use other starters such as coumaroyl-CoA and malonyl-CoA; however, feruloyl-CoA is preferred, the enzymes share 63% sequence identity [<xref rid="F4" ref-type="fig">Figure 4</xref> (7) and (8)]. Type III PKSs, CURS2, and CURS3 have also been cloned and characterized from <italic>Curcuma Longa Linn</italic> which shows starter specificity for feruloyl-CoA as well as coumaroyl-CoA. The presence of three different type III PKSs in turmeric might be responsible for the formation of a different mixture of curcuminoids. The structural analysis of CURS1 revealed the presence of an unusual hydrophobic pocket in the CoA binding tunnel, which was created because of the different orientations of the gatekeeper Phe265 alongside the substitution of active Ser338 site with Gln338 that suggests the requirement of the hydrophobic cavity in allowing hydrophobic interaction between CURS1 and β-keto acid (Katsuyama et al., <xref rid="B58" ref-type="bibr">2011</xref>). A new curcumin synthase (ZoCURS) has recently been identified from ginger (<italic>Zingiber officinale</italic>) This curcumin synthase has a different starter preference and accepts 3-(4-hydroxyphenyl) propionyl-CoA to produce tetrahydrobisdemethoxycurcumin and similar products (Zhang et al., <xref rid="B131" ref-type="bibr">2016</xref>).</p><p>Curcuminoids have various pharmacological activities that make them an interesting topic for research. Curcumin (dipheruloylquinone) is the most explored of the so-called curcuminoids, a family of chemopreventives. Recently, different health properties of curcuminoids have become very interesting, including strong antioxidant properties, inhibitory effects on COX-2, LOX and NFB, anti-cancer, anti-angiogenic, neuro-protective, wound healing, antidiabetic activities, and role in epigenetic regulation mechanisms (Maheshwari et al., <xref rid="B77" ref-type="bibr">2006</xref>; Bengmark et al., <xref rid="B20" ref-type="bibr">2009</xref>; Amalraj et al., <xref rid="B12" ref-type="bibr">2017</xref>).</p></sec><sec id="sec26" disp-level="3"><title>Quinolone Synthase—Quinolone Alkaloids</title><p>Quinolone alkaloids are anthranilic acid-derived alkaloids present mainly in the Rutaceae plant family. The quinolone synthase (QNS) involved in the synthesis of quinolone alkaloid is cloned from <italic>Aegle marmelos</italic> (bael). It catalyzes the condensation of starter <italic>N</italic>-methylanthraniloyl-CoA with three molecules of malonyl-CoA which spontaneously cyclize to 4-hydroxy-2(1H)-quinolone (major product, 89%) and acridone scaffold (minor product, 11%) (<xref rid="F7" ref-type="fig">Figure 7D</xref>) (Resmi et al., <xref rid="B104" ref-type="bibr">2013</xref>). QNS is interesting in the context that it shows promiscuous starter specificity and can utilize both smaller acyl-CoAs and bulkier <italic>N</italic>-methylanthraniloyl-CoA substrates <italic>in vitro</italic> reaction, an enzymatic potential shown by the ACS and an F215S mutant of msCHS. Mutagenesis studies of a double mutant, named MSD1 (S132T and A133S) showed a change in the active site cavity that imparts it a unique ability to utilize bulkier starter molecules and completely transformed QNS to CHS (Resmi et al., <xref rid="B104" ref-type="bibr">2013</xref>). These naturally occurring quinolones have potent medicinal properties and also give impetus to the design of synthetic quinolones as antimalarials drug targets (Bawa et al., <xref rid="B17" ref-type="bibr">2010</xref>). Among various properties of quinolone alkaloids, the most prominent ones are antimalarial (quinine, chloroquine, mefloquine, and amodiaquine), motor inhibitory (Skimmianine) (Cheng, <xref rid="B24" ref-type="bibr">1986</xref>), anti-platelet aggregation (Chen et al., <xref rid="B23" ref-type="bibr">2000</xref>), and cytotoxicity against HeLa cell line (Jansen et al., <xref rid="B51" ref-type="bibr">2006</xref>).</p></sec><sec id="sec27" disp-level="3"><title>Alkylquinolone Synthase—Evocarpine and 2-Alkyquilonone Alkaloids</title><p>Some Type III PKSs catalyze the condensation reactions with CoA thioesters to produce polyketide moieties with R<sub>1</sub>-C-R<sub>2</sub> scaffolds (Abe, <xref rid="B3" ref-type="bibr">2020</xref>). Two functionally distinct Type III PKSs, namely, alkyldiketide-CoA synthase (ADS) and alkylquinolone synthase (AQS), participate in the biosynthesis of evocarpine, a 2-alkylquinolone alkaloid produced in <italic>Evodia rutaecarpa</italic> (Matsui et al., <xref rid="B82" ref-type="bibr">2017</xref>; Abe, <xref rid="B3" ref-type="bibr">2020</xref>). The enzymes share a 61% sequence identity and ADS initiates the reaction by performing a decarboxylative condensation of fatty acyl-CoA (C8-C12) with a malonyl-CoA extender to generate an alkyldiketide-CoA. Consecutively, AQS catalyzes the combination of the starter <italic>N</italic>-methylanthraniloyl-CoA with the diketide acid (formed by a non-enzymatic hydrolysis of alkyldiketide-CoA intermediate) through C-C and the C-N bond formations to generate 2 AQ scaffolds (<xref rid="F7" ref-type="fig">Figure 7E</xref>) (Matsui et al., <xref rid="B82" ref-type="bibr">2017</xref>). The biosynthesis of 2 AQ in <italic>E. rutaecarpa</italic> resembles the curcumin biosynthesis in turmeric described above. The X-ray crystal structure analysis and site-directed mutagenesis studies of ADS and AQS reveal a unique geometry of the active site and a new binding CoA tunnel architecture governing ADS and AQS substrate and product specificities. 2-AQ displays a broad range of pharmaceutical and biological properties such as antibacterial, cytotoxic, anticholinesterase and quorum sensing activities (Wang et al., <xref rid="B125" ref-type="bibr">2013</xref>).</p></sec><sec id="sec28" disp-level="3"><title>Tropane Alkaloid Synthase-Tropane Alkaloids</title><p>Tropane alkaloids (TA) are pharmaceutically significant plant secondary metabolites with a characteristic 8-azabicyclo [3.2.1] octane core bicyclic structure and are abundantly present in Solanaceae and Erythroxylaceae; examples include hyoscyamine and scopolamine, and cocaine and calystegines (Huang et al., <xref rid="B47" ref-type="bibr">2019</xref>, <xref rid="B48" ref-type="bibr">2021</xref>; Kohnen-Johannsen and Kayser, <xref rid="B64" ref-type="bibr">2019</xref>). AbYPKS is the atypical Type III PKS from <italic>Atropa belladonna</italic> involved in the tropinone biosynthesis, the first intermediate in tropane alkaloid biosynthesis. AbYPKS catalyzes decarboxylative condensation of an unconjugated <italic>N</italic>-methyl-Δ<sup>1</sup>-pyrrolinium cation starter with two molecules of malonyl-CoA extender to generate a 4-(1-methyl-2-pyrrolidinyl)-3-oxobutanoic acid. Additionally, <italic>A</italic>bCYP82M3 acts upon the 4-(1-methyl-2-pyrrolidinyl)-3-oxobutanoic acid to produce tropinone (<xref rid="F7" ref-type="fig">Figure 7F</xref>) (Bedewitz et al., <xref rid="B18" ref-type="bibr">2018</xref>). Furthermore, the <italic>in vitro</italic> assay of AbYPKS with substrates <italic>N</italic>-methyl-Δ<sup>1</sup>-pyrrolinium cation and malonyl-CoA resulted in the production of pyrrolidine alkaloids; hygrine and cusohygrine. Recently, two atypical Types III PKS, named EcPYKS1 and EcPYKS2 have been identified in <italic>Erythroxylum coca</italic> that is involved in the biogenesis of coca alkaloid. The current data suggests these enzymes utilize malonyl-CoA as a sole substrate to produce 3-oxoglutaric acid and belong to a unique non-CHS class of Type III PKSs. The structural analysis of AbYPKS and EcPYKS1 revealed differences in the residues (Arg134Thr and Ser340Gly in EcPYKS1) responsible for the stabilization of the intermediate (Kim, <xref rid="B60" ref-type="bibr">2020</xref>; Lichman, <xref rid="B71" ref-type="bibr">2021</xref>). These recent studies highlight the role of atypical Type III PKSs in catalyzing the second ring closure of the bicyclic ring leading to the production of tropane alkaloids.</p><p>Scopolamine has a variety of medicinal properties, it is marketed to treat nausea, vomiting, motion sickness, and spasms due to its anticholinergic effect (Ullrich et al., <xref rid="B118" ref-type="bibr">2017</xref>). Cocaine, on the other hand, is an illicit psychoactive drug and is the only naturally occurring local anesthetic (Sayhan et al., <xref rid="B108" ref-type="bibr">2017</xref>).</p></sec><sec id="sec29" disp-level="3"><title>Lycopodium Alkaloids</title><p>Lycopodium alkaloids (LA) are classified as nitrogen-containing heterocyclic metabolites with diverse and stereochemically complex structures that have garnered attention due to their potent biological activities (Lichman, <xref rid="B71" ref-type="bibr">2021</xref>). Some LA, such as huperzine A (HupA), acts as an inhibitor of acetylcholinesterase thereby are promising candidates for the treatment of Alzheimer's and myasthenia gravis disease in addition to harboring cytotoxic and neuroprotective activities (Ma and Gang, <xref rid="B76" ref-type="bibr">2004</xref>; Wang et al., <xref rid="B123" ref-type="bibr">2020</xref>). Classically, LAs have been categorized into four major groups (lycopodine, lycodine, fawcettimine, and phlegmarine) and since the discovery of the first LAs, lycopodine, around 400 LAs have been identified from the <italic>Lycopodiaceae</italic> and <italic>Huperziaceae</italic> families. Interested readers can consult review of Ma and Gang (<xref rid="B76" ref-type="bibr">2004</xref>) about these compounds for a detailed description.</p><p>The biosynthesis mechanism of LA remained poorly understood in plants until now. In a recent report by Wang et al. (<xref rid="B123" ref-type="bibr">2020</xref>), on the biosynthesis of pelletierine, two new 3-oxoglutaric acid synthesizers Type III PKSs, HsPKS4, and PcPKS1 of <italic>Huperzia serrata</italic>, and <italic>Phlegmariurus cryptomerianus</italic>, respectively, have been proposed to be involved in LA biosynthesis. HsPKS4 and PcPKS1 carry out the biosynthesis of pelletierine by providing 3-oxoglutaric acid which further undergoes a Mannich-like condensation with the Δ<sup>1</sup>-piperdeine starter substrate derived from lysine (<xref rid="F7" ref-type="fig">Figure 7G</xref>). Interestingly, another latest finding has identified a metabolic regulon responsible for the synthesis of HupA in the club moss <italic>Phlegmariusus tetrastichus</italic>. The study demonstrated a developmentally controlled transcriptional coregulation of six enzymes including a Type III PKS and three Fe (II)/2-oxoglutarate-dependent dioxygenase (2-OGD) involved in the biogenesis of HupA (Nett et al., <xref rid="B94" ref-type="bibr">2021</xref>). This study is the first to highlight the pathway leading to the synthesis of Lys-derived alkaloids through a tightly coordinated expression of secondary metabolic genes for the biosynthesis of medicinally important LAs.</p></sec></sec></sec><sec id="s3" disp-level="1"><title>Concluding Remarks</title><p>Type III PKSs remains one of the most comprehensively studied enzyme systems and different in-depth reviews on the specificity, mechanical, potential, and structure-functional analysis of these simpler enzymes in synthesizing complex chemical scaffolds have been previously reported. Unarguably the said chemical diversity stems from a superfamily of enzymes that share a higher percentage (60%–75%) of their amino acid sequences. However, the enzyme family is equipped to create the chemodiversity through subtle changes in the active site cavity to accommodate a variety of starter substrates and to facilitate a variety of modes of cyclization and rounds of extension of the growing polyketide intermediate. This is the first review to discuss the different biological, medicinal and pharmaceutical properties of secondary plant metabolites derived from Type III PKS together with commenting upon their <italic>in planta</italic> functions. We also discussed briefly several mutagenesis studies that examine the starter specificities, the number of elongations, and mode of cyclization that affect the biochemistry and product profile of these enzyme systems. The review attempts to direct attention of readers to the remarkable promiscuity of the Type III PKS enzyme family in generating biologically active metabolites and lead drug molecules. Moreover, these enzyme systems hold enormous potential for bioengineering purposes to design unnatural natural polyketides with improved yield and activities.</p></sec><sec id="s4" disp-level="1"><title>Author Contributions</title><p>PS and RB: conceptualization and visualization. RB, AB, and AS: literature search. RB, AB, and PS: writing and editing. All the authors proofread the manuscript.</p></sec><sec id="s5" disp-level="1"><title>Funding</title><p>PS would like to acknowledge South Asian University Start-up grant, Innovative Young Biotechnologist Award (IYBA), Department of Biotechnology (DBT), Core Research Grant (CRG) (CRG/2018/002229), Science and Engineering Research Board (SERB), Department of Science and Technology (DST), and Government of India for financial support.</p></sec><sec id="conf1" disp-level="1"><title>Conflict of Interest</title><p>The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.</p></sec><sec id="s6" disp-level="1"><title>Publisher's Note</title><p>All claims expressed in this article are solely those of the authors and do not necessarily represent those of their affiliated organizations, or those of the publisher, the editors and the reviewers. Any product that may be evaluated in this article, or claim that may be made by its manufacturer, is not guaranteed or endorsed by the publisher.</p></sec><sec id="ack1" sec-type="ack" disp-level="1"><title>Acknowledgments</title><p>The authors acknowledge Dr. Amreesh Parvez, Jiangsu University, China for his assistance with the figures and careful proofreading of the manuscript.</p></sec><sec id="ref-list1" sec-type="ref-list" disp-level="1"><title>References</title><sec id="ref-list1_sec2" disp-level="2"><ref-list><ref id="B1"><mixed-citation><named-content content-type="citation-string">Abdel-Rahman I. A., Beuerle T., Ernst L., Abdel-Baky A. M., Desoky E. E.-D. K., Ahmed A. S., et al. (2013). <italic>In vitro</italic> formation of the anthranoid scaffold by cell-free extracts from yeast-extract-treated Cassia bicapsularis cell cultures. Phytochemistry
88, 15–24. 10.1016/j.phytochem.2013.01.001</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.phytochem.2013.01.001"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="23395285"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Phytochemistry&amp;title=In vitro formation of the anthranoid scaffold by cell-free extracts from yeast-extract-treated Cassia bicapsularis cell cultures&amp;author=I. A. Abdel-Rahman&amp;author=T. Beuerle&amp;author=L. Ernst&amp;author=A. M. Abdel-Baky&amp;author=E. E.-D. K. Desoky&amp;volume=88&amp;publication_year=2013&amp;pages=15-24&amp;pmid=23395285&amp;doi=10.1016/j.phytochem.2013.01.001&amp;"/></mixed-citation></ref><ref id="B2"><mixed-citation><named-content content-type="citation-string">Abe I. (2012). Novel applications of plant polyketide synthases. Curr. Opin. Chem. Biol.
16, 179–185. 10.1016/j.cbpa.2011.12.016</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.cbpa.2011.12.016"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="22245533"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Curr. Opin. Chem. Biol.&amp;title=Novel applications of plant polyketide synthases&amp;author=I. Abe&amp;volume=16&amp;publication_year=2012&amp;pages=179-185&amp;pmid=22245533&amp;doi=10.1016/j.cbpa.2011.12.016&amp;"/></mixed-citation></ref><ref id="B3"><mixed-citation><named-content content-type="citation-string">Abe I. (2020). Biosynthesis of medicinally important plant metabolites by unusual type III polyketide synthases. J. Nat. Med.
74, 639–646. 10.1007/s11418-020-01414-9</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/s11418-020-01414-9"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC7456412"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="32500363"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Nat. Med.&amp;title=Biosynthesis of medicinally important plant metabolites by unusual type III polyketide synthases&amp;author=I. Abe&amp;volume=74&amp;publication_year=2020&amp;pages=639-646&amp;pmid=32500363&amp;doi=10.1007/s11418-020-01414-9&amp;"/></mixed-citation></ref><ref id="B4"><mixed-citation><named-content content-type="citation-string">Abe I., Morita H. (2010). Structure and function of the chalcone synthase superfamily of plant type III polyketide synthases. Nat. Prod. Rep.
27, 809–838. 10.1039/b909988n</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1039/b909988n"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="20358127"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Nat. Prod. Rep.&amp;title=Structure and function of the chalcone synthase superfamily of plant type III polyketide synthases&amp;author=I. Abe&amp;author=H. Morita&amp;volume=27&amp;publication_year=2010&amp;pages=809-838&amp;pmid=20358127&amp;doi=10.1039/b909988n&amp;"/></mixed-citation></ref><ref id="B5"><mixed-citation><named-content content-type="citation-string">Abe I., Sano Y., Takahashi Y., Noguchi H. (2003). Site-directed mutagenesis of benzalacetone synthase the role of PHE215 in plant type iii polyketide synthases. J. Biol. Chem.
278, 25218–25226. 10.1074/jbc.M303276200</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1074/jbc.M303276200"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="12724310"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Biol. Chem.&amp;title=Site-directed mutagenesis of benzalacetone synthase the role of PHE215 in plant type iii polyketide synthases&amp;author=I. Abe&amp;author=Y. Sano&amp;author=Y. Takahashi&amp;author=H. Noguchi&amp;volume=278&amp;publication_year=2003&amp;pages=25218-25226&amp;pmid=12724310&amp;doi=10.1074/jbc.M303276200&amp;"/></mixed-citation></ref><ref id="B6"><mixed-citation><named-content content-type="citation-string">Abe I., Takahashi Y., Morita H., Noguchi H. (2001). Benzalacetone synthase. FEBS J.
268, 3354–3359. 10.1046/j.1432-1327.2001.02255.x</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1046/j.1432-1327.2001.02255.x"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="11389739"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=FEBS J.&amp;title=Benzalacetone synthase&amp;author=I. Abe&amp;author=Y. Takahashi&amp;author=H. Morita&amp;author=H. Noguchi&amp;volume=268&amp;publication_year=2001&amp;pages=3354-3359&amp;pmid=11389739&amp;doi=10.1046/j.1432-1327.2001.02255.x&amp;"/></mixed-citation></ref><ref id="B7"><mixed-citation><named-content content-type="citation-string">Abe I., Utsumi Y., Oguro S., Morita H., Sano Y., Noguchi H. (2005). A plant type III polyketide synthase that produces pentaketide chromone. J. Am. Chem. Soc.
127, 1362–1363. 10.1021/ja0431206</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1021/ja0431206"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="15686354"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Am. Chem. Soc.&amp;title=A plant type III polyketide synthase that produces pentaketide chromone&amp;author=I. Abe&amp;author=Y. Utsumi&amp;author=S. Oguro&amp;author=H. Morita&amp;author=Y. Sano&amp;volume=127&amp;publication_year=2005&amp;pages=1362-1363&amp;pmid=15686354&amp;doi=10.1021/ja0431206&amp;"/></mixed-citation></ref><ref id="B8"><mixed-citation><named-content content-type="citation-string">Abe I., Utsumi Y., Oguro S., Noguchi H. (2004). The first plant type III polyketide synthase that catalyzes formation of aromatic heptaketide. FEBS Lett.
562, 171–176. 10.1016/S0014-5793(04)00230-3</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/S0014-5793(04)00230-3"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="15044020"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=FEBS Lett.&amp;title=The first plant type III polyketide synthase that catalyzes formation of aromatic heptaketide&amp;author=I. Abe&amp;author=Y. Utsumi&amp;author=S. Oguro&amp;author=H. Noguchi&amp;volume=562&amp;publication_year=2004&amp;pages=171-176&amp;pmid=15044020&amp;doi=10.1016/S0014-5793(04)00230-3&amp;"/></mixed-citation></ref><ref id="B9"><mixed-citation><named-content content-type="citation-string">Abe I., Watanabe T., Lou W., Noguchi H. (2006). Active site residues governing substrate selectivity and polyketide chain length in aloesone synthase. FEBS J.
273, 208–218. 10.1111/j.1742-4658.2005.05059.x</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1111/j.1742-4658.2005.05059.x"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="16367761"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=FEBS J.&amp;title=Active site residues governing substrate selectivity and polyketide chain length in aloesone synthase&amp;author=I. Abe&amp;author=T. Watanabe&amp;author=W. Lou&amp;author=H. Noguchi&amp;volume=273&amp;publication_year=2006&amp;pages=208-218&amp;pmid=16367761&amp;doi=10.1111/j.1742-4658.2005.05059.x&amp;"/></mixed-citation></ref><ref id="B10"><mixed-citation><named-content content-type="citation-string">Akiyama T., Shibuya M., Liu H. M., Ebizuka Y. (1999a). p-Coumaroyltriacetic acid synthase, a new homologue of chalcone synthase, from <italic>Hydrangea macrophylla</italic> var. thunbergii. FEBS J.
263, 834–839.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1046/j.1432-1327.1999.00562.x"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="10469148"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=thunbergii. FEBS J.&amp;title=p-Coumaroyltriacetic acid synthase, a new homologue of chalcone synthase, from Hydrangea macrophylla var&amp;author=T. Akiyama&amp;author=M. Shibuya&amp;author=H. M. Liu&amp;author=Y. Ebizuka&amp;volume=263&amp;publication_year=1999a&amp;pages=834-839&amp;pmid=10469148&amp;doi=10.1046/j.1432-1327.1999.00562.x&amp;"/></mixed-citation></ref><ref id="B11"><mixed-citation><named-content content-type="citation-string">Akiyama T., Shibuya M., Liu H. M., Ebizuka Y. (1999b). p-Coumaroyltriacetic acid synthase, a new homologue of chalcone synthase, from <italic>Hydrangea macrophylla</italic> var. thunbergii. Euro. J. Biochem.
263, 834–839. 10.1046/j.1432-1327.1999.00562.x</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1046/j.1432-1327.1999.00562.x"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="10469148"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=thunbergii. Euro. J. Biochem.&amp;title=p-Coumaroyltriacetic acid synthase, a new homologue of chalcone synthase, from Hydrangea macrophylla var&amp;author=T. Akiyama&amp;author=M. Shibuya&amp;author=H. M. Liu&amp;author=Y. Ebizuka&amp;volume=263&amp;publication_year=1999b&amp;pages=834-839&amp;pmid=10469148&amp;doi=10.1046/j.1432-1327.1999.00562.x&amp;"/></mixed-citation></ref><ref id="B12"><mixed-citation><named-content content-type="citation-string">Amalraj A., Pius A., Gopi S., Gopi S. (2017). Biological activities of curcuminoids, other biomolecules from turmeric and their derivatives–a review. J. Traditional Complementary Med.
7, 205–233. 10.1016/j.jtcme.2016.05.005</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.jtcme.2016.05.005"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC5388087"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="28417091"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Traditional Complementary Med.&amp;title=Biological activities of curcuminoids, other biomolecules from turmeric and their derivatives–a review&amp;author=A. Amalraj&amp;author=A. Pius&amp;author=S. Gopi&amp;author=S. Gopi&amp;volume=7&amp;publication_year=2017&amp;pages=205-233&amp;pmid=28417091&amp;doi=10.1016/j.jtcme.2016.05.005&amp;"/></mixed-citation></ref><ref id="B13"><mixed-citation><named-content content-type="citation-string">Austin M. B., Bowman M. E., Ferrer J.-L., Schröder J., Noel J. P. (2004). An aldol switch discovered in stilbene synthases mediates cyclization specificity of type III polyketide synthases. Chem. Biol.
11, 1179–1194. 10.1016/j.chembiol.2004.05.024</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.chembiol.2004.05.024"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="15380179"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Chem. Biol.&amp;title=An aldol switch discovered in stilbene synthases mediates cyclization specificity of type III polyketide synthases&amp;author=M. B. Austin&amp;author=M. E. Bowman&amp;author=J.-L. Ferrer&amp;author=J. Schröder&amp;author=J. P. Noel&amp;volume=11&amp;publication_year=2004&amp;pages=1179-1194&amp;pmid=15380179&amp;doi=10.1016/j.chembiol.2004.05.024&amp;"/></mixed-citation></ref><ref id="B14"><mixed-citation><named-content content-type="citation-string">Austin M. B., Noel J. P. (2003). The chalcone synthase superfamily of type III polyketide synthases. Nat. Prod. Rep.
20, 79–110. 10.1039/b100917f</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1039/b100917f"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="12636085"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Nat. Prod. Rep.&amp;title=The chalcone synthase superfamily of type III polyketide synthases&amp;author=M. B. Austin&amp;author=J. P. Noel&amp;volume=20&amp;publication_year=2003&amp;pages=79-110&amp;pmid=12636085&amp;doi=10.1039/b100917f&amp;"/></mixed-citation></ref><ref id="B15"><mixed-citation><named-content content-type="citation-string">Baerson S. R., Schröder J., Cook D., Rimando A. M., Pan Z., Dayan F. E., et al. (2010). Alkylresorcinol biosynthesis in plants: new insights from an ancient enzyme family?
Plant Signal. Behav.
5, 1286–1289. 10.4161/psb.5.10.13062</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.4161/psb.5.10.13062"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC3115369"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="20861691"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant Signal. Behav.&amp;title=Alkylresorcinol biosynthesis in plants: new insights from an ancient enzyme family?&amp;author=S. R. Baerson&amp;author=J. Schröder&amp;author=D. Cook&amp;author=A. M. Rimando&amp;author=Z. Pan&amp;volume=5&amp;publication_year=2010&amp;pages=1286-1289&amp;pmid=20861691&amp;doi=10.4161/psb.5.10.13062&amp;"/></mixed-citation></ref><ref id="B16"><mixed-citation><named-content content-type="citation-string">Baumert A., Maier W., Gröger D., Deutzmann R. (1994). Purification and properties of acridone synthase from cell suspension cultures of <italic>Ruta gvaveolens</italic> L. Zeitschrift Naturforschung C
49, 26–32. 10.1515/znc-1994-1-205</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1515/znc-1994-1-205"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="8148006"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Zeitschrift Naturforschung C&amp;title=Purification and properties of acridone synthase from cell suspension cultures of Ruta gvaveolens L&amp;author=A. Baumert&amp;author=W. Maier&amp;author=D. Gröger&amp;author=R. Deutzmann&amp;volume=49&amp;publication_year=1994&amp;pages=26-32&amp;pmid=8148006&amp;doi=10.1515/znc-1994-1-205&amp;"/></mixed-citation></ref><ref id="B17"><mixed-citation><named-content content-type="citation-string">Bawa S., Kumar S., Drabu S., Kumar R. (2010). Structural modifications of quinoline-based antimalarial agents: recent developments. J. Pharmacy Bioallied Sci.
2:64. 10.4103/0975-7406.67002</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.4103/0975-7406.67002"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC3147106"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="21814435"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Pharmacy Bioallied Sci.&amp;title=Structural modifications of quinoline-based antimalarial agents: recent developments&amp;author=S. Bawa&amp;author=S. Kumar&amp;author=S. Drabu&amp;author=R. Kumar&amp;volume=2&amp;publication_year=2010&amp;pages=64&amp;pmid=21814435&amp;doi=10.4103/0975-7406.67002&amp;"/></mixed-citation></ref><ref id="B18"><mixed-citation><named-content content-type="citation-string">Bedewitz M. A., Jones A. D., D'Auria J. C., Barry C. S. (2018). Tropinone synthesis via an atypical polyketide synthase and P450-mediated cyclization. Nat. Commun.
9, 1–13. 10.1038/s41467-018-07671-3</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1038/s41467-018-07671-3"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC6290073"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="30538251"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Nat. Commun.&amp;title=Tropinone synthesis via an atypical polyketide synthase and P450-mediated cyclization&amp;author=M. A. Bedewitz&amp;author=A. D. Jones&amp;author=J. C. D'Auria&amp;author=C. S. Barry&amp;volume=9&amp;publication_year=2018&amp;pages=1-13&amp;pmid=30538251&amp;doi=10.1038/s41467-018-07671-3&amp;"/></mixed-citation></ref><ref id="B19"><mixed-citation><named-content content-type="citation-string">Beerhues L., Liu B. (2009). Biosynthesis of biphenyls and benzophenones–evolution of benzoic acid-specific type III polyketide synthases in plants. Phytochemistry
70, 1719–1727. 10.1016/j.phytochem.2009.06.017</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.phytochem.2009.06.017"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="19699497"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Phytochemistry&amp;title=Biosynthesis of biphenyls and benzophenones–evolution of benzoic acid-specific type III polyketide synthases in plants&amp;author=L. Beerhues&amp;author=B. Liu&amp;volume=70&amp;publication_year=2009&amp;pages=1719-1727&amp;pmid=19699497&amp;doi=10.1016/j.phytochem.2009.06.017&amp;"/></mixed-citation></ref><ref id="B20"><mixed-citation><named-content content-type="citation-string">Bengmark S., Mesa M. D., Gil A. (2009). Plant-derived health: the effects of turmeric and curcuminoids. Nutr. Hosp. 24, 273–281.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="19721899"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Nutr. Hosp&amp;title=Plant-derived health: the effects of turmeric and curcuminoids&amp;author=S. Bengmark&amp;author=M. D. Mesa&amp;author=A. Gil&amp;volume=24&amp;publication_year=2009&amp;pages=273-281&amp;pmid=19721899&amp;"/></mixed-citation></ref><ref id="B21"><mixed-citation><named-content content-type="citation-string">Berman A. Y., Motechin R. A., Wiesenfeld M. Y., Holz M. K. (2017). The therapeutic potential of resveratrol: a review of clinical trials. NPJ Precision Oncol.
1:35. 10.1038/s41698-017-0038-6</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1038/s41698-017-0038-6"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC5630227"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="28989978"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=NPJ Precision Oncol.&amp;title=The therapeutic potential of resveratrol: a review of clinical trials&amp;author=A. Y. Berman&amp;author=R. A. Motechin&amp;author=M. Y. Wiesenfeld&amp;author=M. K. Holz&amp;volume=1&amp;publication_year=2017&amp;pages=35&amp;pmid=28989978&amp;doi=10.1038/s41698-017-0038-6&amp;"/></mixed-citation></ref><ref id="B22"><mixed-citation><named-content content-type="citation-string">Borejsza-Wysocki W., Hrazdina G. (1996). Aromatic polyketide synthases (purification, characterization, and antibody development to benzalacetone synthase from raspberry fruits). Plant Physiol.
110, 791–799. 10.1104/pp.110.3.791</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1104/pp.110.3.791"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC157778"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="12226219"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant Physiol.&amp;title=Aromatic polyketide synthases (purification, characterization, and antibody development to benzalacetone synthase from raspberry fruits)&amp;author=W. Borejsza-Wysocki&amp;author=G. Hrazdina&amp;volume=110&amp;publication_year=1996&amp;pages=791-799&amp;pmid=12226219&amp;doi=10.1104/pp.110.3.791&amp;"/></mixed-citation></ref><ref id="B23"><mixed-citation><named-content content-type="citation-string">Chen K.-S., Chang Y.-L., Teng C.-M., Chen C.-F., Wu Y.-C. (2000). Furoquinolines with antiplatelet aggregation activity from leaves of Melicope confusa. Planta Med.
66, 80–81. 10.1055/s-0029-1243116</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1055/s-0029-1243116"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="10705744"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Planta Med.&amp;title=Furoquinolines with antiplatelet aggregation activity from leaves of Melicope confusa&amp;author=K.-S. Chen&amp;author=Y.-L. Chang&amp;author=C.-M. Teng&amp;author=C.-F. Chen&amp;author=Y.-C. Wu&amp;volume=66&amp;publication_year=2000&amp;pages=80-81&amp;pmid=10705744&amp;doi=10.1055/s-0029-1243116&amp;"/></mixed-citation></ref><ref id="B24"><mixed-citation><named-content content-type="citation-string">Cheng J. (1986). Effect of skimmianine on animal behavior. Arch. Int. Pharmacodyn. Ther.
281, 35–43.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="3753096"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Arch. Int. Pharmacodyn. Ther.&amp;title=Effect of skimmianine on animal behavior&amp;author=J. Cheng&amp;volume=281&amp;publication_year=1986&amp;pages=35-43&amp;pmid=3753096&amp;"/></mixed-citation></ref><ref id="B25"><mixed-citation><named-content content-type="citation-string">Chetri S. K., Kapoor H., Agrawal V. (2016). Marked enhancement of sennoside bioactive compounds through precursor feeding in Cassia angustifolia Vahl and cloning of isochorismate synthase gene involved in its biosynthesis. Plant Cell, Tissue and Organ Culture (PCTOC)
124, 431–446. 10.1007/s11240-015-0905-1</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/s11240-015-0905-1"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant Cell, Tissue and Organ Culture (PCTOC)&amp;title=Marked enhancement of sennoside bioactive compounds through precursor feeding in Cassia angustifolia Vahl and cloning of isochorismate synthase gene involved in its biosynthesis&amp;author=S. K. Chetri&amp;author=H. Kapoor&amp;author=V. Agrawal&amp;volume=124&amp;publication_year=2016&amp;pages=431-446&amp;doi=10.1007/s11240-015-0905-1&amp;"/></mixed-citation></ref><ref id="B26"><mixed-citation><named-content content-type="citation-string">Chien S.-C., Wu Y.-C., Chen Z.-W., Yang W.-C. (2015). Naturally occurring anthraquinones: chemistry and therapeutic potential in autoimmune diabetes. Evid. Based Complement. Alternative Med. 2015, 1–15. 10.1155/2015/357357</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1155/2015/357357"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC4381678"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="25866536"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Evid. Based Complement. Alternative Med&amp;title=Naturally occurring anthraquinones: chemistry and therapeutic potential in autoimmune diabetes&amp;author=S.-C. Chien&amp;author=Y.-C. Wu&amp;author=Z.-W. Chen&amp;author=W.-C. Yang&amp;volume=2015&amp;publication_year=2015&amp;pages=1-15&amp;pmid=25866536&amp;doi=10.1155/2015/357357&amp;"/></mixed-citation></ref><ref id="B27"><mixed-citation><named-content content-type="citation-string">Colpitts C. C., Kim S. S., Posehn S. E., Jepson C., Kim S. Y., Wiedemann G., et al. (2011). PpASCL, a moss ortholog of anther-specific chalcone synthase-like enzymes, is a hydroxyalkylpyrone synthase involved in an evolutionarily conserved sporopollenin biosynthesis pathway. New Phytol.
192, 855–868. 10.1111/j.1469-8137.2011.03858.x</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1111/j.1469-8137.2011.03858.x"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="21883237"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=New Phytol.&amp;title=PpASCL, a moss ortholog of anther-specific chalcone synthase-like enzymes, is a hydroxyalkylpyrone synthase involved in an evolutionarily conserved sporopollenin biosynthesis pathway&amp;author=C. C. Colpitts&amp;author=S. S. Kim&amp;author=S. E. Posehn&amp;author=C. Jepson&amp;author=S. Y. Kim&amp;volume=192&amp;publication_year=2011&amp;pages=855-868&amp;pmid=21883237&amp;doi=10.1111/j.1469-8137.2011.03858.x&amp;"/></mixed-citation></ref><ref id="B28"><mixed-citation><named-content content-type="citation-string">Compean K., Ynalvez R. (2014). Antimicrobial activity of plant secondary metabolites: a review. Res. J. Med. Plant
8, 204–213. 10.3923/rjmp.2014.204.213</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.3923/rjmp.2014.204.213"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Res. J. Med. Plant&amp;title=Antimicrobial activity of plant secondary metabolites: a review&amp;author=K. Compean&amp;author=R. Ynalvez&amp;volume=8&amp;publication_year=2014&amp;pages=204-213&amp;doi=10.3923/rjmp.2014.204.213&amp;"/></mixed-citation></ref><ref id="B29"><mixed-citation><named-content content-type="citation-string">Cook D., Rimando A. M., Clemente T. E., Schröder J., Dayan F. E., Nanayakkara N. D., et al. (2010). Alkylresorcinol synthases expressed in Sorghum bicolor root hairs play an essential role in the biosynthesis of the allelopathic benzoquinone sorgoleone. Plant Cell
22, 867–887. 10.1105/tpc.109.072397</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1105/tpc.109.072397"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC2861460"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="20348430"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant Cell&amp;title=Alkylresorcinol synthases expressed in Sorghum bicolor root hairs play an essential role in the biosynthesis of the allelopathic benzoquinone sorgoleone&amp;author=D. Cook&amp;author=A. M. Rimando&amp;author=T. E. Clemente&amp;author=J. Schröder&amp;author=F. E. Dayan&amp;volume=22&amp;publication_year=2010&amp;pages=867-887&amp;pmid=20348430&amp;doi=10.1105/tpc.109.072397&amp;"/></mixed-citation></ref><ref id="B30"><mixed-citation><named-content content-type="citation-string">Dao T., Linthorst H., Verpoorte R. (2011). Chalcone synthase and its functions in plant resistance. Phytochem. Rev.
10:397. 10.1007/s11101-011-9211-7</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/s11101-011-9211-7"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC3148432"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="21909286"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Phytochem. Rev.&amp;title=Chalcone synthase and its functions in plant resistance&amp;author=T. Dao&amp;author=H. Linthorst&amp;author=R. Verpoorte&amp;volume=10&amp;publication_year=2011&amp;pages=397&amp;pmid=21909286&amp;doi=10.1007/s11101-011-9211-7&amp;"/></mixed-citation></ref><ref id="B31"><mixed-citation><named-content content-type="citation-string">Dave H., Ledwani L. (2012). A review on anthraquinones isolated from Cassia species and their applications. Indian J. Nat. Prod. Resour. 3, 291–319. Available online at: <ext-link xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="https://ttu-ir.tdl.org/handle/2346/85851" ext-link-type="uri">https://ttu-ir.tdl.org/handle/2346/85851</ext-link></named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Indian J. Nat. Prod. Resour&amp;title=A review on anthraquinones isolated from Cassia species and their applications&amp;author=H. Dave&amp;author=L. Ledwani&amp;volume=3&amp;publication_year=2012&amp;pages=291-319&amp;"/></mixed-citation></ref><ref id="B32"><mixed-citation><named-content content-type="citation-string">Dewick P. M. (2002). Medicinal Natural Products: A Biosynthetic Approach. West Sussex: John Wiley &amp; Sons.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="title=Medicinal Natural Products: A Biosynthetic Approach&amp;author=P. M. Dewick&amp;publication_year=2002&amp;"/></mixed-citation></ref><ref id="B33"><mixed-citation><named-content content-type="citation-string">Dibyendu D. M. (2015). A brief review on plant type III polyketide synthases, an important group of enzyme of secondary metabolism. Rese. J. Recent Sci. </named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="title=Rese. J. Recent Sci.&amp;author=D. M. Dibyendu&amp;publication_year=2015&amp;"/></mixed-citation></ref><ref id="B34"><mixed-citation><named-content content-type="citation-string">Eckermann C., Schröder G., Eckermann S., Strack D., Schmidt J., Schneider B., et al. (2003). Stilbenecarboxylate biosynthesis: a new function in the family of chalcone synthase-related proteins. Phytochemistry
62, 271–286. 10.1016/S0031-9422(02)00554-X</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/S0031-9422(02)00554-X"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="12620338"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Phytochemistry&amp;title=Stilbenecarboxylate biosynthesis: a new function in the family of chalcone synthase-related proteins&amp;author=C. Eckermann&amp;author=G. Schröder&amp;author=S. Eckermann&amp;author=D. Strack&amp;author=J. Schmidt&amp;volume=62&amp;publication_year=2003&amp;pages=271-286&amp;pmid=12620338&amp;doi=10.1016/S0031-9422(02)00554-X&amp;"/></mixed-citation></ref><ref id="B35"><mixed-citation><named-content content-type="citation-string">Falcone Ferreyra M. L., Rius S., Casati P. (2012). Flavonoids: biosynthesis, biological functions, and biotechnological applications. Front. Plant Sci.
3:222. 10.3389/fpls.2012.00222</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.3389/fpls.2012.00222"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC3460232"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="23060891"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Front. Plant Sci.&amp;title=Flavonoids: biosynthesis, biological functions, and biotechnological applications&amp;author=M. L. Falcone Ferreyra&amp;author=S. Rius&amp;author=P. Casati&amp;volume=3&amp;publication_year=2012&amp;pages=222&amp;pmid=23060891&amp;doi=10.3389/fpls.2012.00222&amp;"/></mixed-citation></ref><ref id="B36"><mixed-citation><named-content content-type="citation-string">Feild T. S., Lee D. W., Holbrook N. M. (2001). Why leaves turn red in autumn. The role of anthocyanins in senescing leaves of red-osier dogwood. Plant Physiol.
127, 566–574. 10.1104/pp.010063</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1104/pp.010063"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC125091"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="11598230"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant Physiol.&amp;title=Why leaves turn red in autumn. The role of anthocyanins in senescing leaves of red-osier dogwood&amp;author=T. S. Feild&amp;author=D. W. Lee&amp;author=N. M. Holbrook&amp;volume=127&amp;publication_year=2001&amp;pages=566-574&amp;pmid=11598230&amp;doi=10.1104/pp.010063&amp;"/></mixed-citation></ref><ref id="B37"><mixed-citation><named-content content-type="citation-string">Ferrer J.-L., Jez J. M., Bowman M. E., Dixon R. A., Noel J. P. (1999). Structure of chalcone synthase and the molecular basis of plant polyketide biosynthesis. Nat. Struct. Mol. Biol.
6:775.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1038/11553"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="10426957"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Nat. Struct. Mol. Biol.&amp;title=Structure of chalcone synthase and the molecular basis of plant polyketide biosynthesis&amp;author=J.-L. Ferrer&amp;author=J. M. Jez&amp;author=M. E. Bowman&amp;author=R. A. Dixon&amp;author=J. P. Noel&amp;volume=6&amp;publication_year=1999&amp;pages=775&amp;pmid=10426957&amp;doi=10.1038/11553&amp;"/></mixed-citation></ref><ref id="B38"><mixed-citation><named-content content-type="citation-string">Fiorentino A., D'Abrosca B., Pacifico S., Izzo A., Letizia M., Esposito A., et al. (2008). Potential allelopatic effects of stilbenoids and flavonoids from leaves of Carex distachya Desf. Biochem. Syst. Ecol.
36, 691–698. 10.1016/j.bse.2008.07.002</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.bse.2008.07.002"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Biochem. Syst. Ecol.&amp;title=Potential allelopatic effects of stilbenoids and flavonoids from leaves of Carex distachya Desf&amp;author=A. Fiorentino&amp;author=B. D'Abrosca&amp;author=S. Pacifico&amp;author=A. Izzo&amp;author=M. Letizia&amp;volume=36&amp;publication_year=2008&amp;pages=691-698&amp;doi=10.1016/j.bse.2008.07.002&amp;"/></mixed-citation></ref><ref id="B39"><mixed-citation><named-content content-type="citation-string">Freiesleben S., Jäger A. (2014). Correlation between plant secondary metabolites and their antifungal mechanisms—a review. Med. Aromatic Plants
3.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Med. Aromatic Plants&amp;title=Correlation between plant secondary metabolites and their antifungal mechanisms—a review&amp;author=S. Freiesleben&amp;author=A. Jäger&amp;volume=3&amp;publication_year=2014&amp;"/></mixed-citation></ref><ref id="B40"><mixed-citation><named-content content-type="citation-string">Gambini J., Inglés M., Olaso G., Lopez-Grueso R., Bonet-Costa V., Gimeno-Mallench L., et al. (2015). Properties of resveratrol: <italic>in vitro</italic> and <italic>in vivo</italic> studies about metabolism, bioavailability, and biological effects in animal models and humans. Oxid. Med. Cell. Longev. 2015, 1–15. 10.1155/2015/837042</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1155/2015/837042"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC4499410"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="26221416"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Oxid. Med. Cell. Longev&amp;title=Properties of resveratrol: in vitro and in vivo studies about metabolism, bioavailability, and biological effects in animal models and humans&amp;author=J. Gambini&amp;author=M. Inglés&amp;author=G. Olaso&amp;author=R. Lopez-Grueso&amp;author=V. Bonet-Costa&amp;volume=2015&amp;publication_year=2015&amp;pages=1-15&amp;pmid=26221416&amp;doi=10.1155/2015/837042&amp;"/></mixed-citation></ref><ref id="B41"><mixed-citation><named-content content-type="citation-string">Gensicka-Kowalewska M., Cholewiński G., Dzierzbicka K. (2017). Recent developments in the synthesis and biological activity of acridine/acridone analogues. RSC Adv.
7, 15776–15804. 10.1039/C7RA01026E</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1039/C7RA01026E"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=RSC Adv.&amp;title=Recent developments in the synthesis and biological activity of acridine/acridone analogues&amp;author=M. Gensicka-Kowalewska&amp;author=G. Cholewiński&amp;author=K. Dzierzbicka&amp;volume=7&amp;publication_year=2017&amp;pages=15776-15804&amp;doi=10.1039/C7RA01026E&amp;"/></mixed-citation></ref><ref id="B42"><mixed-citation><named-content content-type="citation-string">Ghasemzadeh A., Ghasemzadeh N. (2011). Flavonoids and phenolic acids: role and biochemical activity in plants and human. J. Med. plants Res.
5, 6697–6703. 10.5897/JMPR11.1404</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.5897/JMPR11.1404"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Med. plants Res.&amp;title=Flavonoids and phenolic acids: role and biochemical activity in plants and human&amp;author=A. Ghasemzadeh&amp;author=N. Ghasemzadeh&amp;volume=5&amp;publication_year=2011&amp;pages=6697-6703&amp;doi=10.5897/JMPR11.1404&amp;"/></mixed-citation></ref><ref id="B43"><mixed-citation><named-content content-type="citation-string">Harborne J. B., Williams C. A. (2000). Advances in flavonoid research since 1992. Phytochemistry
55, 481–504. 10.1016/S0031-9422(00)00235-1</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/S0031-9422(00)00235-1"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="11130659"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Phytochemistry&amp;title=Advances in flavonoid research since 1992&amp;author=J. B. Harborne&amp;author=C. A. Williams&amp;volume=55&amp;publication_year=2000&amp;pages=481-504&amp;pmid=11130659&amp;doi=10.1016/S0031-9422(00)00235-1&amp;"/></mixed-citation></ref><ref id="B44"><mixed-citation><named-content content-type="citation-string">Hashimoto T., Tajima M. (1978). Structures and synthesis of the growth inhibitors batatasins IV and V, and their physiological activities. Phytochemistry
17, 1179–1184. 10.1016/S0031-9422(00)94310-3</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/S0031-9422(00)94310-3"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Phytochemistry&amp;title=Structures and synthesis of the growth inhibitors batatasins IV and V, and their physiological activities&amp;author=T. Hashimoto&amp;author=M. Tajima&amp;volume=17&amp;publication_year=1978&amp;pages=1179-1184&amp;doi=10.1016/S0031-9422(00)94310-3&amp;"/></mixed-citation></ref><ref id="B45"><mixed-citation><named-content content-type="citation-string">Helariutta Y., Elomaa P., Kotilainen M., Griesbach R. J., Schröder J., Teeri T. H. (1995). Chalcone synthase-like genes active during corolla development are differentially expressed and encode enzymes with different catalytic properties in Gerbera hybrida (Asteraceae). Plant Mol. Biol.
28, 47–60. 10.1007/BF00042037</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/BF00042037"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="7787187"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant Mol. Biol.&amp;title=Chalcone synthase-like genes active during corolla development are differentially expressed and encode enzymes with different catalytic properties in Gerbera hybrida (Asteraceae)&amp;author=Y. Helariutta&amp;author=P. Elomaa&amp;author=M. Kotilainen&amp;author=R. J. Griesbach&amp;author=J. Schröder&amp;volume=28&amp;publication_year=1995&amp;pages=47-60&amp;pmid=7787187&amp;doi=10.1007/BF00042037&amp;"/></mixed-citation></ref><ref id="B46"><mixed-citation><named-content content-type="citation-string">Hemmerling F., Hahn F. (2016). Biosynthesis of oxygen and nitrogen-containing heterocycles in polyketides. Beilstein J. Org. Chem.
12, 1512–1550. 10.3762/bjoc.12.148</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.3762/bjoc.12.148"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC4979870"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="27559404"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Beilstein J. Org. Chem.&amp;title=Biosynthesis of oxygen and nitrogen-containing heterocycles in polyketides&amp;author=F. Hemmerling&amp;author=F. Hahn&amp;volume=12&amp;publication_year=2016&amp;pages=1512-1550&amp;pmid=27559404&amp;doi=10.3762/bjoc.12.148&amp;"/></mixed-citation></ref><ref id="B47"><mixed-citation><named-content content-type="citation-string">Huang J.-P., Fang C., Ma X., Wang L., Yang J., Luo J., et al. (2019). Tropane alkaloids biosynthesis involves an unusual type III polyketide synthase and non-enzymatic condensation. Nat. Commun.
10, 1–8. 10.1038/s41467-019-11987-z</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1038/s41467-019-11987-z"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC6731253"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="31492848"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Nat. Commun.&amp;title=Tropane alkaloids biosynthesis involves an unusual type III polyketide synthase and non-enzymatic condensation&amp;author=J.-P. Huang&amp;author=C. Fang&amp;author=X. Ma&amp;author=L. Wang&amp;author=J. Yang&amp;volume=10&amp;publication_year=2019&amp;pages=1-8&amp;pmid=31492848&amp;doi=10.1038/s41467-019-11987-z&amp;"/></mixed-citation></ref><ref id="B48"><mixed-citation><named-content content-type="citation-string">Huang J.-P., Wang Y.-J., Tian T., Wang L., Yan Y., Huang S.-X. (2021). Tropane alkaloid biosynthesis: a centennial review. Nat. Product Rep. 10.1039/D0NP00076K</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1039/D0NP00076K"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="33533391"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Nat. Product Rep&amp;title=Tropane alkaloid biosynthesis: a centennial review&amp;author=J.-P. Huang&amp;author=Y.-J. Wang&amp;author=T. Tian&amp;author=L. Wang&amp;author=Y. Yan&amp;publication_year=2021&amp;pmid=33533391&amp;doi=10.1039/D0NP00076K&amp;"/></mixed-citation></ref><ref id="B49"><mixed-citation><named-content content-type="citation-string">Hüttner C., Beuerle T., Scharnhop H., Ernst L., Beerhues L. (2010). Differential effect of elicitors on biphenyl and dibenzofuran formation in <italic>Sorbus aucuparia</italic> cell cultures. J. Agric. Food Chem.
58, 11977–11984. 10.1021/jf1026857</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1021/jf1026857"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="20961041"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Agric. Food Chem.&amp;title=Differential effect of elicitors on biphenyl and dibenzofuran formation in Sorbus aucuparia cell cultures&amp;author=C. Hüttner&amp;author=T. Beuerle&amp;author=H. Scharnhop&amp;author=L. Ernst&amp;author=L. Beerhues&amp;volume=58&amp;publication_year=2010&amp;pages=11977-11984&amp;pmid=20961041&amp;doi=10.1021/jf1026857&amp;"/></mixed-citation></ref><ref id="B50"><mixed-citation><named-content content-type="citation-string">Ibrahim S. R., Mohamed G. A. (2015). Natural occurring 2-(2-phenylethyl) chromones, structure elucidation and biological activities. Nat. Prod. Res.
29, 1489–1520. 10.1080/14786419.2014.991323</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1080/14786419.2014.991323"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="25529202"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Nat. Prod. Res.&amp;title=Natural occurring 2-(2-phenylethyl) chromones, structure elucidation and biological activities&amp;author=S. R. Ibrahim&amp;author=G. A. Mohamed&amp;volume=29&amp;publication_year=2015&amp;pages=1489-1520&amp;pmid=25529202&amp;doi=10.1080/14786419.2014.991323&amp;"/></mixed-citation></ref><ref id="B51"><mixed-citation><named-content content-type="citation-string">Jansen O., Akhmedjanova V., Angenot L., Balansard G., Chariot A., Ollivier E., et al. (2006). Screening of 14 alkaloids isolated from Haplophyllum A. Juss. for their cytotoxic properties. J. Ethnopharmacol.
105, 241–245. 10.1016/j.jep.2005.11.001</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.jep.2005.11.001"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="16330172"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Ethnopharmacol.&amp;title=Screening of 14 alkaloids isolated from Haplophyllum A. Juss. for their cytotoxic properties&amp;author=O. Jansen&amp;author=V. Akhmedjanova&amp;author=L. Angenot&amp;author=G. Balansard&amp;author=A. Chariot&amp;volume=105&amp;publication_year=2006&amp;pages=241-245&amp;pmid=16330172&amp;doi=10.1016/j.jep.2005.11.001&amp;"/></mixed-citation></ref><ref id="B52"><mixed-citation><named-content content-type="citation-string">Jeandet P., Delaunois B., Conreux A., Donnez D., Nuzzo V., Cordelier S., et al. (2010). Biosynthesis, metabolism, molecular engineering, and biological functions of stilbene phytoalexins in plants. Biofactors
36, 331–341. 10.1002/biof.108</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1002/biof.108"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="20726013"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Biofactors&amp;title=Biosynthesis, metabolism, molecular engineering, and biological functions of stilbene phytoalexins in plants&amp;author=P. Jeandet&amp;author=B. Delaunois&amp;author=A. Conreux&amp;author=D. Donnez&amp;author=V. Nuzzo&amp;volume=36&amp;publication_year=2010&amp;pages=331-341&amp;pmid=20726013&amp;doi=10.1002/biof.108&amp;"/></mixed-citation></ref><ref id="B53"><mixed-citation><named-content content-type="citation-string">Jiang C., Schommer C. K., Kim S. Y., Suh D.-Y. (2006). Cloning and characterization of chalcone synthase from the moss, Physcomitrella patens. Phytochemistry
67, 2531–2540. 10.1016/j.phytochem.2006.09.030</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.phytochem.2006.09.030"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="17083952"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Phytochemistry&amp;title=Cloning and characterization of chalcone synthase from the moss, Physcomitrella patens&amp;author=C. Jiang&amp;author=C. K. Schommer&amp;author=S. Y. Kim&amp;author=D.-Y. Suh&amp;volume=67&amp;publication_year=2006&amp;pages=2531-2540&amp;pmid=17083952&amp;doi=10.1016/j.phytochem.2006.09.030&amp;"/></mixed-citation></ref><ref id="B54"><mixed-citation><named-content content-type="citation-string">Kang S.-H., Pandey R. P., Lee C.-M., Sim J.-S., Jeong J.-T., Choi B.-S., et al. (2020). Genome-enabled discovery of anthraquinone biosynthesis in <italic>Senna tora</italic>. Nat. Commun.
11, 1–11. 10.1038/s41467-020-19681-1</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1038/s41467-020-19681-1"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC7674472"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="33208749"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Nat. Commun.&amp;title=Genome-enabled discovery of anthraquinone biosynthesis in Senna tora&amp;author=S.-H. Kang&amp;author=R. P. Pandey&amp;author=C.-M. Lee&amp;author=J.-S. Sim&amp;author=J.-T. Jeong&amp;volume=11&amp;publication_year=2020&amp;pages=1-11&amp;pmid=33208749&amp;doi=10.1038/s41467-020-19681-1&amp;"/></mixed-citation></ref><ref id="B55"><mixed-citation><named-content content-type="citation-string">Karabín M., Hudcová T., Jelínek L., Dostálek P. (2016). Biologically active compounds from hops and prospects for their use. Comprehens. Rev. Food Sci. Food Safety
15, 542–567. 10.1111/1541-4337.12201</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1111/1541-4337.12201"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="33401815"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Comprehens. Rev. Food Sci. Food Safety&amp;title=Biologically active compounds from hops and prospects for their use&amp;author=M. Karabín&amp;author=T. Hudcová&amp;author=L. Jelínek&amp;author=P. Dostálek&amp;volume=15&amp;publication_year=2016&amp;pages=542-567&amp;pmid=33401815&amp;doi=10.1111/1541-4337.12201&amp;"/></mixed-citation></ref><ref id="B56"><mixed-citation><named-content content-type="citation-string">Karppinen K., Hokkanen J., Mattila S., Neubauer P., Hohtola A. (2008). Octaketide-producing type III polyketide synthase from <italic>Hypericum perforatum</italic> is expressed in dark glands accumulating hypericins. FEBS J.
275, 4329–4342. 10.1111/j.1742-4658.2008.06576.x</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1111/j.1742-4658.2008.06576.x"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="18647343"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=FEBS J.&amp;title=Octaketide-producing type III polyketide synthase from Hypericum perforatum is expressed in dark glands accumulating hypericins&amp;author=K. Karppinen&amp;author=J. Hokkanen&amp;author=S. Mattila&amp;author=P. Neubauer&amp;author=A. Hohtola&amp;volume=275&amp;publication_year=2008&amp;pages=4329-4342&amp;pmid=18647343&amp;doi=10.1111/j.1742-4658.2008.06576.x&amp;"/></mixed-citation></ref><ref id="B57"><mixed-citation><named-content content-type="citation-string">Katsuyama Y., Kita T., Funa N., Horinouchi S. (2009). Curcuminoid biosynthesis by two type III polyketide synthases in the herb <italic>Curcuma longa</italic>. J. Biol. Chem.
284, 11160–11170. 10.1074/jbc.M900070200</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1074/jbc.M900070200"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC2670121"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="19258320"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Biol. Chem.&amp;title=Curcuminoid biosynthesis by two type III polyketide synthases in the herb Curcuma longa&amp;author=Y. Katsuyama&amp;author=T. Kita&amp;author=N. Funa&amp;author=S. Horinouchi&amp;volume=284&amp;publication_year=2009&amp;pages=11160-11170&amp;pmid=19258320&amp;doi=10.1074/jbc.M900070200&amp;"/></mixed-citation></ref><ref id="B58"><mixed-citation><named-content content-type="citation-string">Katsuyama Y., Miyazono K.-I., Tanokura M., Ohnishi Y., Horinouchi S. (2011). Structural and biochemical elucidation of mechanism for decarboxylative condensation of β-keto acid by curcumin synthase. J. Biol. Chem.
286, 6659–6668. 10.1074/jbc.M110.196279</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1074/jbc.M110.196279"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC3057783"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="21148316"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Biol. Chem.&amp;title=Structural and biochemical elucidation of mechanism for decarboxylative condensation of β-keto acid by curcumin synthase&amp;author=Y. Katsuyama&amp;author=K.-I. Miyazono&amp;author=M. Tanokura&amp;author=Y. Ohnishi&amp;author=S. Horinouchi&amp;volume=286&amp;publication_year=2011&amp;pages=6659-6668&amp;pmid=21148316&amp;doi=10.1074/jbc.M110.196279&amp;"/></mixed-citation></ref><ref id="B59"><mixed-citation><named-content content-type="citation-string">Khare C. P., Katiyar C. K. (2012). The Modern Ayurveda: Milestones Beyond the Classical Age.
Boca Raton, FL: CRC Press.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="title=The Modern Ayurveda: Milestones Beyond the Classical Age.&amp;author=C. P. Khare&amp;author=C. K. Katiyar&amp;publication_year=2012&amp;"/></mixed-citation></ref><ref id="B60"><mixed-citation><named-content content-type="citation-string">Kim N. (2020). Tropane alkaloid biosynthesis in Erythroxylum coca involves an atypical type III polyketide synthase.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Tropane alkaloid biosynthesis in Erythroxylum coca involves an atypical type III polyketide synthase&amp;author=N. Kim&amp;publication_year=2020&amp;"/></mixed-citation></ref><ref id="B61"><mixed-citation><named-content content-type="citation-string">Kim S. S., Grienenberger E., Lallemand B., Colpitts C. C., Kim S. Y., de Azevedo Souza C., et al. (2010). LAP6/POLYKETIDE SYNTHASE A and LAP5/POLYKETIDE SYNTHASE B encode hydroxyalkyl α-pyrone synthases required for pollen development and sporopollenin biosynthesis in Arabidopsis thaliana. Plant Cell
22, 4045–4066. 10.1105/tpc.110.080028</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1105/tpc.110.080028"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC3027170"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="21193570"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant Cell&amp;title=LAP6/POLYKETIDE SYNTHASE A and LAP5/POLYKETIDE SYNTHASE B encode hydroxyalkyl α-pyrone synthases required for pollen development and sporopollenin biosynthesis in Arabidopsis thaliana&amp;author=S. S. Kim&amp;author=E. Grienenberger&amp;author=B. Lallemand&amp;author=C. C. Colpitts&amp;author=S. Y. Kim&amp;volume=22&amp;publication_year=2010&amp;pages=4045-4066&amp;pmid=21193570&amp;doi=10.1105/tpc.110.080028&amp;"/></mixed-citation></ref><ref id="B62"><mixed-citation><named-content content-type="citation-string">Kim S. Y., Colpitts C. C., Wiedemann G., Jepson C., Rahimi M., Rothwell J. R., et al. (2013). Physcomitrella PpORS, basal to plant type III polyketide synthases in phylogenetic trees, is a very long chain 2′-oxoalkylresorcinol synthase. J. Biol. Chem.
288, 2767–2777. 10.1074/jbc.M112.430686</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1074/jbc.M112.430686"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC3554942"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="23223578"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Biol. Chem.&amp;title=Physcomitrella PpORS, basal to plant type III polyketide synthases in phylogenetic trees, is a very long chain 2′-oxoalkylresorcinol synthase&amp;author=S. Y. Kim&amp;author=C. C. Colpitts&amp;author=G. Wiedemann&amp;author=C. Jepson&amp;author=M. Rahimi&amp;volume=288&amp;publication_year=2013&amp;pages=2767-2777&amp;pmid=23223578&amp;doi=10.1074/jbc.M112.430686&amp;"/></mixed-citation></ref><ref id="B63"><mixed-citation><named-content content-type="citation-string">Kogan N. M., Mechoulam R. (2007). Cannabinoids in health and disease. Dialogues Clin. Neurosci.
9, 413. 10.31887/DCNS.2007.9.4/nkogan</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.31887/DCNS.2007.9.4/nkogan"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC3202504"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="18286801"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Dialogues Clin. Neurosci.&amp;title=Cannabinoids in health and disease&amp;author=N. M. Kogan&amp;author=R. Mechoulam&amp;volume=9&amp;publication_year=2007&amp;pages=413&amp;pmid=18286801&amp;doi=10.31887/DCNS.2007.9.4/nkogan&amp;"/></mixed-citation></ref><ref id="B64"><mixed-citation><named-content content-type="citation-string">Kohnen-Johannsen K. L., Kayser O. (2019). Tropane alkaloids: chemistry, pharmacology, biosynthesis and production. Molecules
24:796. 10.3390/molecules24040796</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.3390/molecules24040796"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC6412926"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="30813289"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Molecules&amp;title=Tropane alkaloids: chemistry, pharmacology, biosynthesis and production&amp;author=K. L. Kohnen-Johannsen&amp;author=O. Kayser&amp;volume=24&amp;publication_year=2019&amp;pages=796&amp;pmid=30813289&amp;doi=10.3390/molecules24040796&amp;"/></mixed-citation></ref><ref id="B65"><mixed-citation><named-content content-type="citation-string">Kootstra A. (1994). Protection from UV-B-induced DNA damage by flavonoids. Plant Mol. Biol.
26, 771–774. 10.1007/BF00013762</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/BF00013762"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="7948931"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant Mol. Biol.&amp;title=Protection from UV-B-induced DNA damage by flavonoids&amp;author=A. Kootstra&amp;volume=26&amp;publication_year=1994&amp;pages=771-774&amp;pmid=7948931&amp;doi=10.1007/BF00013762&amp;"/></mixed-citation></ref><ref id="B66"><mixed-citation><named-content content-type="citation-string">Kruk J., Aboul-Enein B., Bernstein J., Marchlewicz M. (2017). Dietary alkylresorcinols and cancer prevention: a systematic review. Euro. Food Res. Technol.
243, 1693–1710. 10.1007/s00217-017-2890-6</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/s00217-017-2890-6"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Euro. Food Res. Technol.&amp;title=Dietary alkylresorcinols and cancer prevention: a systematic review&amp;author=J. Kruk&amp;author=B. Aboul-Enein&amp;author=J. Bernstein&amp;author=M. Marchlewicz&amp;volume=243&amp;publication_year=2017&amp;pages=1693-1710&amp;doi=10.1007/s00217-017-2890-6&amp;"/></mixed-citation></ref><ref id="B67"><mixed-citation><named-content content-type="citation-string">Kumar S., Pandey A. K. (2013). Chemistry and biological activities of flavonoids: an overview. Sci. World J. 2013, 1–16. 10.1155/2013/162750</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1155/2013/162750"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC3891543"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="24470791"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Sci. World J&amp;title=Chemistry and biological activities of flavonoids: an overview&amp;author=S. Kumar&amp;author=A. K. Pandey&amp;volume=2013&amp;publication_year=2013&amp;pages=1-16&amp;pmid=24470791&amp;doi=10.1155/2013/162750&amp;"/></mixed-citation></ref><ref id="B68"><mixed-citation><named-content content-type="citation-string">Lawrence N. J., Rennison D., McGown A. T., Hadfield J. A. (2003). The total synthesis of an aurone isolated from <italic>Uvaria hamiltonii</italic>: aurones and flavones as anticancer agents. Bioorg. Med. Chem. Lett.
13, 3759–3763. 10.1016/j.bmcl.2003.07.003</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.bmcl.2003.07.003"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="14552774"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Bioorg. Med. Chem. Lett.&amp;title=The total synthesis of an aurone isolated from Uvaria hamiltonii: aurones and flavones as anticancer agents&amp;author=N. J. Lawrence&amp;author=D. Rennison&amp;author=A. T. McGown&amp;author=J. A. Hadfield&amp;volume=13&amp;publication_year=2003&amp;pages=3759-3763&amp;pmid=14552774&amp;doi=10.1016/j.bmcl.2003.07.003&amp;"/></mixed-citation></ref><ref id="B69"><mixed-citation><named-content content-type="citation-string">Lee J. (2016). Further research on the biological activities and the safety of raspberry ketone is needed. NFS J.
2, 15–18. 10.1016/j.nfs.2015.12.001</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.nfs.2015.12.001"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=NFS J.&amp;title=Further research on the biological activities and the safety of raspberry ketone is needed&amp;author=J. Lee&amp;volume=2&amp;publication_year=2016&amp;pages=15-18&amp;doi=10.1016/j.nfs.2015.12.001&amp;"/></mixed-citation></ref><ref id="B70"><mixed-citation><named-content content-type="citation-string">Li L., Aslam M., Rabbi F., Vanderwel M. C., Ashton N. W., Suh D.-Y. (2018). PpORS, an ancient type III polyketide synthase, is required for integrity of leaf cuticle and resistance to dehydration in the moss, Physcomitrella patens. Planta
247, 527–541. 10.1007/s00425-017-2806-5</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/s00425-017-2806-5"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="29119267"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Planta&amp;title=PpORS, an ancient type III polyketide synthase, is required for integrity of leaf cuticle and resistance to dehydration in the moss, Physcomitrella patens&amp;author=L. Li&amp;author=M. Aslam&amp;author=F. Rabbi&amp;author=M. C. Vanderwel&amp;author=N. W. Ashton&amp;volume=247&amp;publication_year=2018&amp;pages=527-541&amp;pmid=29119267&amp;doi=10.1007/s00425-017-2806-5&amp;"/></mixed-citation></ref><ref id="B71"><mixed-citation><named-content content-type="citation-string">Lichman B. R. (2021). The scaffold-forming steps of plant alkaloid biosynthesis. Nat. Prod. Rep.
38, 103–129. 10.1039/D0NP00031K</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1039/D0NP00031K"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="32745157"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Nat. Prod. Rep.&amp;title=The scaffold-forming steps of plant alkaloid biosynthesis&amp;author=B. R. Lichman&amp;volume=38&amp;publication_year=2021&amp;pages=103-129&amp;pmid=32745157&amp;doi=10.1039/D0NP00031K&amp;"/></mixed-citation></ref><ref id="B72"><mixed-citation><named-content content-type="citation-string">Lim Y. P., Go M. K., Yew W. S. (2016). Exploiting the biosynthetic potential of type III polyketide synthases. Molecules
21:806. 10.3390/molecules21060806</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.3390/molecules21060806"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC6274091"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="27338328"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Molecules&amp;title=Exploiting the biosynthetic potential of type III polyketide synthases&amp;author=Y. P. Lim&amp;author=M. K. Go&amp;author=W. S. Yew&amp;volume=21&amp;publication_year=2016&amp;pages=806&amp;pmid=27338328&amp;doi=10.3390/molecules21060806&amp;"/></mixed-citation></ref><ref id="B73"><mixed-citation><named-content content-type="citation-string">Liu B., Falkenstein-Paul H., Schmidt W., Beerhues L. (2003). Benzophenone synthase and chalcone synthase from <italic>Hypericum androsaemum</italic> cell cultures: cDNA cloning, functional expression, and site-directed mutagenesis of two polyketide synthases. Plant J.
34, 847–855. 10.1046/j.1365-313X.2003.01771.x</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1046/j.1365-313X.2003.01771.x"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="12795704"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant J.&amp;title=Benzophenone synthase and chalcone synthase from Hypericum androsaemum cell cultures: cDNA cloning, functional expression, and site-directed mutagenesis of two polyketide synthases&amp;author=B. Liu&amp;author=H. Falkenstein-Paul&amp;author=W. Schmidt&amp;author=L. Beerhues&amp;volume=34&amp;publication_year=2003&amp;pages=847-855&amp;pmid=12795704&amp;doi=10.1046/j.1365-313X.2003.01771.x&amp;"/></mixed-citation></ref><ref id="B74"><mixed-citation><named-content content-type="citation-string">Liu B., Raeth T., Beuerle T., Beerhues L. (2007). Biphenyl synthase, a novel type III polyketide synthase. Planta
225, 1495–1503. 10.1007/s00425-006-0435-5</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/s00425-006-0435-5"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="17109150"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Planta&amp;title=Biphenyl synthase, a novel type III polyketide synthase&amp;author=B. Liu&amp;author=T. Raeth&amp;author=T. Beuerle&amp;author=L. Beerhues&amp;volume=225&amp;publication_year=2007&amp;pages=1495-1503&amp;pmid=17109150&amp;doi=10.1007/s00425-006-0435-5&amp;"/></mixed-citation></ref><ref id="B75"><mixed-citation><named-content content-type="citation-string">Lukačin R., Schreiner S., Matern U. (2001). Transformation of acridone synthase to chalcone synthase. FEBS Lett.
508, 413–417. 10.1016/S0014-5793(01)03061-7</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/S0014-5793(01)03061-7"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="11728463"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=FEBS Lett.&amp;title=Transformation of acridone synthase to chalcone synthase&amp;author=R. Lukačin&amp;author=S. Schreiner&amp;author=U. Matern&amp;volume=508&amp;publication_year=2001&amp;pages=413-417&amp;pmid=11728463&amp;doi=10.1016/S0014-5793(01)03061-7&amp;"/></mixed-citation></ref><ref id="B76"><mixed-citation><named-content content-type="citation-string">Ma X., Gang D. R. (2004). The lycopodium alkaloids. Nat. Prod. Rep.
21, 752–772. 10.1039/b409720n</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1039/b409720n"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="15565253"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Nat. Prod. Rep.&amp;title=The lycopodium alkaloids&amp;author=X. Ma&amp;author=D. R. Gang&amp;volume=21&amp;publication_year=2004&amp;pages=752-772&amp;pmid=15565253&amp;doi=10.1039/b409720n&amp;"/></mixed-citation></ref><ref id="B77"><mixed-citation><named-content content-type="citation-string">Maheshwari R. K., Singh A. K., Gaddipati J., Srimal R. C. (2006). Multiple biological activities of curcumin: a short review. Life Sci.
78, 2081–2087. 10.1016/j.lfs.2005.12.007</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.lfs.2005.12.007"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="16413584"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Life Sci.&amp;title=Multiple biological activities of curcumin: a short review&amp;author=R. K. Maheshwari&amp;author=A. K. Singh&amp;author=J. Gaddipati&amp;author=R. C. Srimal&amp;volume=78&amp;publication_year=2006&amp;pages=2081-2087&amp;pmid=16413584&amp;doi=10.1016/j.lfs.2005.12.007&amp;"/></mixed-citation></ref><ref id="B78"><mixed-citation><named-content content-type="citation-string">Mander L., Liu H.-W. (2010). Comprehensive Natural Products II: Chemistry and Biology. Oxford: Elsevier.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="title=Comprehensive Natural Products II: Chemistry and Biology&amp;author=L. Mander&amp;author=H.-W. Liu&amp;publication_year=2010&amp;"/></mixed-citation></ref><ref id="B79"><mixed-citation><named-content content-type="citation-string">Mao Z., Sun W., Fu L., Luo H., Lai D., Zhou L. (2014). Natural dibenzo-α-pyrones and their bioactivities. Molecules
19, 5088–5108. 10.3390/molecules19045088</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.3390/molecules19045088"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC6271090"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="24759070"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Molecules&amp;title=Natural dibenzo-α-pyrones and their bioactivities&amp;author=Z. Mao&amp;author=W. Sun&amp;author=L. Fu&amp;author=H. Luo&amp;author=D. Lai&amp;volume=19&amp;publication_year=2014&amp;pages=5088-5108&amp;pmid=24759070&amp;doi=10.3390/molecules19045088&amp;"/></mixed-citation></ref><ref id="B80"><mixed-citation><named-content content-type="citation-string">Markus M. A., Morris B. J. (2008). Resveratrol in prevention and treatment of common clinical conditions of aging. Clin. Interv. Aging
3:331.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC2546476"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="18686754"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Clin. Interv. Aging&amp;title=Resveratrol in prevention and treatment of common clinical conditions of aging&amp;author=M. A. Markus&amp;author=B. J. Morris&amp;volume=3&amp;publication_year=2008&amp;pages=331&amp;pmid=18686754&amp;"/></mixed-citation></ref><ref id="B81"><mixed-citation><named-content content-type="citation-string">Matsuda H., Shimoda H., Uemura T., Ueda T., Yamahara J., Yoshikawa M. (1999). Chemical Constituents from the Leaves of <italic>Hydrangea macrophylla</italic> var. <italic>thunbergii</italic>.(III). Absolute stereostructures of hydramacrosides A and B, secoiridoid glucoside complexes with inhibitory activity on histamine release. Chem. Pharmaceutical Bull.
47, 1753–1758. 10.1248/cpb.47.1753</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1248/cpb.47.1753"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="10748718"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Chem. Pharmaceutical Bull.&amp;title=Chemical Constituents from the Leaves of Hydrangea macrophylla var. thunbergii.(III). Absolute stereostructures of hydramacrosides A and B, secoiridoid glucoside complexes with inhibitory activity on histamine release&amp;author=H. Matsuda&amp;author=H. Shimoda&amp;author=T. Uemura&amp;author=T. Ueda&amp;author=J. Yamahara&amp;volume=47&amp;publication_year=1999&amp;pages=1753-1758&amp;pmid=10748718&amp;doi=10.1248/cpb.47.1753&amp;"/></mixed-citation></ref><ref id="B82"><mixed-citation><named-content content-type="citation-string">Matsui T., Kodama T., Mori T., Tadakoshi T., Noguchi H., Abe I., et al. (2017). 2-Alkylquinolone alkaloid biosynthesis in the medicinal plant <italic>Evodia rutaecarpa</italic> involves collaboration of two novel type III polyketide synthases. J. Biol. Chem.
292, 9117–9135. 10.1074/jbc.M117.778977</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1074/jbc.M117.778977"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC5454096"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="28411241"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Biol. Chem.&amp;title=2-Alkylquinolone alkaloid biosynthesis in the medicinal plant Evodia rutaecarpa involves collaboration of two novel type III polyketide synthases&amp;author=T. Matsui&amp;author=T. Kodama&amp;author=T. Mori&amp;author=T. Tadakoshi&amp;author=H. Noguchi&amp;volume=292&amp;publication_year=2017&amp;pages=9117-9135&amp;pmid=28411241&amp;doi=10.1074/jbc.M117.778977&amp;"/></mixed-citation></ref><ref id="B83"><mixed-citation><named-content content-type="citation-string">Michael J. P. (2001). Quinoline, quinazoline and acridone alkaloids. Nat. Prod. Rep.
18, 543–559. 10.1039/b005387m</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1039/b005387m"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="11699885"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Nat. Prod. Rep.&amp;title=Quinoline, quinazoline and acridone alkaloids&amp;author=J. P. Michael&amp;volume=18&amp;publication_year=2001&amp;pages=543-559&amp;pmid=11699885&amp;doi=10.1039/b005387m&amp;"/></mixed-citation></ref><ref id="B84"><mixed-citation><named-content content-type="citation-string">Mierziak J., Kostyn K., Kulma A. (2014). Flavonoids as important molecules of plant interactions with the environment. Molecules
19, 16240–16265. 10.3390/molecules191016240</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.3390/molecules191016240"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC6270724"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="25310150"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Molecules&amp;title=Flavonoids as important molecules of plant interactions with the environment&amp;author=J. Mierziak&amp;author=K. Kostyn&amp;author=A. Kulma&amp;volume=19&amp;publication_year=2014&amp;pages=16240-16265&amp;pmid=25310150&amp;doi=10.3390/molecules191016240&amp;"/></mixed-citation></ref><ref id="B85"><mixed-citation><named-content content-type="citation-string">Mikkelsen J. D. (1984). Biosynthesis of esterified alkan-2-ols and β-diketones in barley spike epicuticular wax: synthesis of radioactive intermediates. Carlsberg Res. Commun.
49:391. 10.1007/BF02907782</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/BF02907782"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Carlsberg Res. Commun.&amp;title=Biosynthesis of esterified alkan-2-ols and β-diketones in barley spike epicuticular wax: synthesis of radioactive intermediates&amp;author=J. D. Mikkelsen&amp;volume=49&amp;publication_year=1984&amp;pages=391&amp;doi=10.1007/BF02907782&amp;"/></mixed-citation></ref><ref id="B86"><mixed-citation><named-content content-type="citation-string">Mol J., Grotewold E., Koes R. (1998). How genes paint flowers and seeds. Trends Plant Sci.
3, 212–217. 10.1016/S1360-1385(98)01242-4</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/S1360-1385(98)01242-4"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Trends Plant Sci.&amp;title=How genes paint flowers and seeds&amp;author=J. Mol&amp;author=E. Grotewold&amp;author=R. Koes&amp;volume=3&amp;publication_year=1998&amp;pages=212-217&amp;doi=10.1016/S1360-1385(98)01242-4&amp;"/></mixed-citation></ref><ref id="B87"><mixed-citation><named-content content-type="citation-string">Mori T., Shimokawa Y., Matsui T., Kinjo K., Kato R., Noguchi H., et al. (2013). Cloning and structure-function analyses of quinolone-and acridone-producing novel type III polyketide synthases from <italic>Citrus microcarpa</italic>. J. Biol. Chem.
288, 28845–28858. 10.1074/jbc.M113.493155</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1074/jbc.M113.493155"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC3789980"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="23963450"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Biol. Chem.&amp;title=Cloning and structure-function analyses of quinolone-and acridone-producing novel type III polyketide synthases from Citrus microcarpa&amp;author=T. Mori&amp;author=Y. Shimokawa&amp;author=T. Matsui&amp;author=K. Kinjo&amp;author=R. Kato&amp;volume=288&amp;publication_year=2013&amp;pages=28845-28858&amp;pmid=23963450&amp;doi=10.1074/jbc.M113.493155&amp;"/></mixed-citation></ref><ref id="B88"><mixed-citation><named-content content-type="citation-string">Morita H., Shimokawa Y., Tanio M., Kato R., Noguchi H., Sugio S., et al. (2010). A structure-based mechanism for benzalacetone synthase from Rheum palmatum. Proc. Nat. Acad. Sci.
107, 669–673. 10.1073/pnas.0909982107</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1073/pnas.0909982107"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC2818918"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="20080733"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Proc. Nat. Acad. Sci.&amp;title=A structure-based mechanism for benzalacetone synthase from Rheum palmatum&amp;author=H. Morita&amp;author=Y. Shimokawa&amp;author=M. Tanio&amp;author=R. Kato&amp;author=H. Noguchi&amp;volume=107&amp;publication_year=2010&amp;pages=669-673&amp;pmid=20080733&amp;doi=10.1073/pnas.0909982107&amp;"/></mixed-citation></ref><ref id="B89"><mixed-citation><named-content content-type="citation-string">Morita H., Wong C. P., Abe I. (2019). How structural subtleties lead to molecular diversity for the type III polyketide synthases. J. Biol. Chem.
294, 15121–15136. 10.1074/jbc.REV119.006129</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1074/jbc.REV119.006129"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC6791334"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="31471316"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Biol. Chem.&amp;title=How structural subtleties lead to molecular diversity for the type III polyketide synthases&amp;author=H. Morita&amp;author=C. P. Wong&amp;author=I. Abe&amp;volume=294&amp;publication_year=2019&amp;pages=15121-15136&amp;pmid=31471316&amp;doi=10.1074/jbc.REV119.006129&amp;"/></mixed-citation></ref><ref id="B90"><mixed-citation><named-content content-type="citation-string">Motohashi N. (2008). Bioactive Heterocycles VI: Flavonoids and Anthocyanins in Plants, and Latest Bioactive Heterocycles I. Leipzig: Springer.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="title=Bioactive Heterocycles VI: Flavonoids and Anthocyanins in Plants, and Latest Bioactive Heterocycles I&amp;author=N. Motohashi&amp;publication_year=2008&amp;"/></mixed-citation></ref><ref id="B91"><mixed-citation><named-content content-type="citation-string">Nakayama T., Sato T., Fukui Y., Yonekura-Sakakibara K., Hayashi H., Tanaka Y., et al. (2001). Specificity analysis and mechanism of aurone synthesis catalyzed by aureusidin synthase, a polyphenol oxidase homolog responsible for flower coloration. FEBS Lett.
499, 107–111. 10.1016/S0014-5793(01)02529-7</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/S0014-5793(01)02529-7"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="11418122"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=FEBS Lett.&amp;title=Specificity analysis and mechanism of aurone synthesis catalyzed by aureusidin synthase, a polyphenol oxidase homolog responsible for flower coloration&amp;author=T. Nakayama&amp;author=T. Sato&amp;author=Y. Fukui&amp;author=K. Yonekura-Sakakibara&amp;author=H. Hayashi&amp;volume=499&amp;publication_year=2001&amp;pages=107-111&amp;pmid=11418122&amp;doi=10.1016/S0014-5793(01)02529-7&amp;"/></mixed-citation></ref><ref id="B92"><mixed-citation><named-content content-type="citation-string">National Academies of Sciences Engineering, and Medicine.  (2017). The Health Effects of Cannabis and Cannabinoids: The Current State of Evidence and Recommendations for Research.
National Academies Press.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="28182367"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="title=The Health Effects of Cannabis and Cannabinoids: The Current State of Evidence and Recommendations for Research.&amp;publication_year=2017&amp;"/></mixed-citation></ref><ref id="B93"><mixed-citation><named-content content-type="citation-string">Negi J., Bisht V., Singh P., Rawat M., Joshi G. (2013). Naturally occurring xanthones: chemistry and biology. J. Appl. Chem. 10.1155/2013/621459</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1155/2013/621459"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Appl. Chem&amp;title=Naturally occurring xanthones: chemistry and biology&amp;author=J. Negi&amp;author=V. Bisht&amp;author=P. Singh&amp;author=M. Rawat&amp;author=G. Joshi&amp;publication_year=2013&amp;doi=10.1155/2013/621459&amp;"/></mixed-citation></ref><ref id="B94"><mixed-citation><named-content content-type="citation-string">Nett R. S., Dho Y., Low Y.-Y., Sattely E. S. (2021). A metabolic regulon reveals early and late acting enzymes in neuroactive Lycopodium alkaloid biosynthesis. Proc. Nat. Acad. Sci. U.S.A.
118:e2102949118. 10.1073/pnas.2102949118</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1073/pnas.2102949118"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC8214681"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="34112718"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Proc. Nat. Acad. Sci. U.S.A.&amp;title=A metabolic regulon reveals early and late acting enzymes in neuroactive Lycopodium alkaloid biosynthesis&amp;author=R. S. Nett&amp;author=Y. Dho&amp;author=Y.-Y. Low&amp;author=E. S. Sattely&amp;volume=118&amp;publication_year=2021&amp;pages=e2102949118&amp;pmid=34112718&amp;doi=10.1073/pnas.2102949118&amp;"/></mixed-citation></ref><ref id="B95"><mixed-citation><named-content content-type="citation-string">Nguyen Q., Nguyen T., Yougnia R., Gaslonde T., Dufat H., Michel S., et al. (2009). Acronycine derivatives: a promising series of anti-cancer agents. Anti-Cancer Agents Med. Chem.
9, 804–815. 10.2174/187152009789056921</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.2174/187152009789056921"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="19594412"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Anti-Cancer Agents Med. Chem.&amp;title=Acronycine derivatives: a promising series of anti-cancer agents&amp;author=Q. Nguyen&amp;author=T. Nguyen&amp;author=R. Yougnia&amp;author=T. Gaslonde&amp;author=H. Dufat&amp;volume=9&amp;publication_year=2009&amp;pages=804-815&amp;pmid=19594412&amp;doi=10.2174/187152009789056921&amp;"/></mixed-citation></ref><ref id="B96"><mixed-citation><named-content content-type="citation-string">Nualkaew N., Morita H., Shimokawa Y., Kinjo K., Kushiro T., De-Eknamkul W., et al. (2012). Benzophenone synthase from <italic>Garcinia mangostana</italic> L. pericarps. Phytochemistry
77, 60–69. 10.1016/j.phytochem.2012.02.002</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.phytochem.2012.02.002"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="22390826"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Phytochemistry&amp;title=Benzophenone synthase from Garcinia mangostana L. pericarps&amp;author=N. Nualkaew&amp;author=H. Morita&amp;author=Y. Shimokawa&amp;author=K. Kinjo&amp;author=T. Kushiro&amp;volume=77&amp;publication_year=2012&amp;pages=60-69&amp;pmid=22390826&amp;doi=10.1016/j.phytochem.2012.02.002&amp;"/></mixed-citation></ref><ref id="B97"><mixed-citation><named-content content-type="citation-string">Okada Y., ITo K. (2001). Cloning and analysis of valerophenone synthase gene expressed specifically in lupulin gland of hop (<italic>Humulus lupulus</italic> L.). Biosci. Biotechnol. Biochem.
65, 150–155. 10.1271/bbb.65.150</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1271/bbb.65.150"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="11272819"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Biosci. Biotechnol. Biochem.&amp;title=Cloning and analysis of valerophenone synthase gene expressed specifically in lupulin gland of hop (Humulus lupulus L.)&amp;author=Y. Okada&amp;author=K. ITo&amp;volume=65&amp;publication_year=2001&amp;pages=150-155&amp;pmid=11272819&amp;doi=10.1271/bbb.65.150&amp;"/></mixed-citation></ref><ref id="B98"><mixed-citation><named-content content-type="citation-string">Pinto M., Sousa M., Nascimento M. (2005). Xanthone derivatives: new insights in biological activities. Curr. Med. Chem.
12, 2517–2538. 10.2174/092986705774370691</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.2174/092986705774370691"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="16250875"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Curr. Med. Chem.&amp;title=Xanthone derivatives: new insights in biological activities&amp;author=M. Pinto&amp;author=M. Sousa&amp;author=M. Nascimento&amp;volume=12&amp;publication_year=2005&amp;pages=2517-2538&amp;pmid=16250875&amp;doi=10.2174/092986705774370691&amp;"/></mixed-citation></ref><ref id="B99"><mixed-citation><named-content content-type="citation-string">Polya G. (2003). Biochemical Targets of Plant Bioactive Compounds: A Pharmacological Reference Guide to Sites of Action and Biological Effects. Boca Raton, FL: CRC Press.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="title=Biochemical Targets of Plant Bioactive Compounds: A Pharmacological Reference Guide to Sites of Action and Biological Effects&amp;author=G. Polya&amp;publication_year=2003&amp;"/></mixed-citation></ref><ref id="B100"><mixed-citation><named-content content-type="citation-string">Preisigmuller R., Gnau P., Kindl H. (1995). The inducible 9, 10-dihydrophenanthrene pathway: characterization and expression of bibenzyl synthase and S-adenosylhomocysteine hydrolase. Arch. Biochem. Biophys.
317, 201–207. 10.1006/abbi.1995.1154</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1006/abbi.1995.1154"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="7872785"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Arch. Biochem. Biophys.&amp;title=The inducible 9, 10-dihydrophenanthrene pathway: characterization and expression of bibenzyl synthase and S-adenosylhomocysteine hydrolase&amp;author=R. Preisigmuller&amp;author=P. Gnau&amp;author=H. Kindl&amp;volume=317&amp;publication_year=1995&amp;pages=201-207&amp;pmid=7872785&amp;doi=10.1006/abbi.1995.1154&amp;"/></mixed-citation></ref><ref id="B101"><mixed-citation><named-content content-type="citation-string">Radha M. H., Laxmipriya N. P. (2015). Evaluation of biological properties and clinical effectiveness of <italic>Aloe vera</italic>: a systematic review. J. Traditional Complementary Med.
5, 21–26. 10.1016/j.jtcme.2014.10.006</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.jtcme.2014.10.006"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC4488101"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="26151005"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Traditional Complementary Med.&amp;title=Evaluation of biological properties and clinical effectiveness of Aloe vera: a systematic review&amp;author=M. H. Radha&amp;author=N. P. Laxmipriya&amp;volume=5&amp;publication_year=2015&amp;pages=21-26&amp;pmid=26151005&amp;doi=10.1016/j.jtcme.2014.10.006&amp;"/></mixed-citation></ref><ref id="B102"><mixed-citation><named-content content-type="citation-string">Rammohan A., Reddy J. S., Sravya G., Rao C. N., Zyryanov G. V. (2020). Chalcone synthesis, properties and medicinal applications: a review. Environ. Chem. Lett.
18, 433–458. 10.1007/s10311-019-00959-w</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/s10311-019-00959-w"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Environ. Chem. Lett.&amp;title=Chalcone synthesis, properties and medicinal applications: a review&amp;author=A. Rammohan&amp;author=J. S. Reddy&amp;author=G. Sravya&amp;author=C. N. Rao&amp;author=G. V. Zyryanov&amp;volume=18&amp;publication_year=2020&amp;pages=433-458&amp;doi=10.1007/s10311-019-00959-w&amp;"/></mixed-citation></ref><ref id="B103"><mixed-citation><named-content content-type="citation-string">Reimold U., Kröger M., Kreuzaler F., Hahlbrock K. (1983). Coding and 3'non-coding nucleotide sequence of chalcone synthase mRNA and assignment of amino acid sequence of the enzyme. EMBO J.
2:1801. 10.1002/j.1460-2075.1983.tb01661.x</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1002/j.1460-2075.1983.tb01661.x"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC555362"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="16453477"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=EMBO J.&amp;title=Coding and 3'non-coding nucleotide sequence of chalcone synthase mRNA and assignment of amino acid sequence of the enzyme&amp;author=U. Reimold&amp;author=M. Kröger&amp;author=F. Kreuzaler&amp;author=K. Hahlbrock&amp;volume=2&amp;publication_year=1983&amp;pages=1801&amp;pmid=16453477&amp;doi=10.1002/j.1460-2075.1983.tb01661.x&amp;"/></mixed-citation></ref><ref id="B104"><mixed-citation><named-content content-type="citation-string">Resmi M. S., Verma P., Gokhale R. S., Soniya E. V. (2013). Identification and characterization of a type III polyketide synthase involved in quinolone alkaloid biosynthesis from <italic>Aegle marmelos</italic> Correa. J. Biol. Chem.
288, 7271–7281. 10.1074/jbc.M112.429886</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1074/jbc.M112.429886"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC3591635"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="23329842"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Biol. Chem.&amp;title=Identification and characterization of a type III polyketide synthase involved in quinolone alkaloid biosynthesis from Aegle marmelos Correa&amp;author=M. S. Resmi&amp;author=P. Verma&amp;author=R. S. Gokhale&amp;author=E. V. Soniya&amp;volume=288&amp;publication_year=2013&amp;pages=7271-7281&amp;pmid=23329842&amp;doi=10.1074/jbc.M112.429886&amp;"/></mixed-citation></ref><ref id="B105"><mixed-citation><named-content content-type="citation-string">Rethy B., Zupkó I., Minorics R., Hohmann J., Ocsovszki I., Falkay G. (2007). Investigation of cytotoxic activity on human cancer cell lines of arborinine and furanoacridones isolated from <italic>Ruta graveolens</italic>. Planta Med.
73, 41–48. 10.1055/s-2006-951747</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1055/s-2006-951747"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="17109253"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Planta Med.&amp;title=Investigation of cytotoxic activity on human cancer cell lines of arborinine and furanoacridones isolated from Ruta graveolens&amp;author=B. Rethy&amp;author=I. Zupkó&amp;author=R. Minorics&amp;author=J. Hohmann&amp;author=I. Ocsovszki&amp;volume=73&amp;publication_year=2007&amp;pages=41-48&amp;pmid=17109253&amp;doi=10.1055/s-2006-951747&amp;"/></mixed-citation></ref><ref id="B106"><mixed-citation><named-content content-type="citation-string">Rozmer Z., Perjési P. (2016). Naturally occurring chalcones and their biological activities. Phytochem. Rev.
15, 87–120. 10.1007/s11101-014-9387-89448101</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/s11101-014-9387-8"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Phytochem. Rev.&amp;title=Naturally occurring chalcones and their biological activities&amp;author=Z. Rozmer&amp;author=P. Perjési&amp;volume=15&amp;publication_year=2016&amp;pages=87-120&amp;doi=10.1007/s11101-014-9387-8&amp;"/></mixed-citation></ref><ref id="B107"><mixed-citation><named-content content-type="citation-string">Samanta A., Das G., Das S. K. (2011). Roles of flavonoids in plants. Carbon N. Y. 100.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Carbon N. Y.&amp;title=Roles of flavonoids in plants&amp;author=A. Samanta&amp;author=G. Das&amp;author=S. K. Das&amp;publication_year=2011&amp;"/></mixed-citation></ref><ref id="B108"><mixed-citation><named-content content-type="citation-string">Sayhan H., Beyaz S. G., Çeliktaş A. (2017). The local anesthetic and pain relief activity of alkaloids. Intech Open
57–84. 10.5772/intechopen.69847</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.5772/intechopen.69847"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Intech Open&amp;title=The local anesthetic and pain relief activity of alkaloids&amp;author=H. Sayhan&amp;author=S. G. Beyaz&amp;author=A. Çeliktaş&amp;publication_year=2017&amp;pages=57-84&amp;doi=10.5772/intechopen.69847&amp;"/></mixed-citation></ref><ref id="B109"><mixed-citation><named-content content-type="citation-string">Schneider L. M., Adamski N. M., Christensen C. E., Stuart D. B., Vautrin S., Hansson M., et al. (2016). The Cer-cqu gene cluster determines three key players in a β-diketone synthase polyketide pathway synthesizing aliphatics in epicuticular waxes. J. Exp. Bot.
67, 2715–2730. 10.1093/jxb/erw105</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1093/jxb/erw105"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC4861019"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="26962211"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Exp. Bot.&amp;title=The Cer-cqu gene cluster determines three key players in a β-diketone synthase polyketide pathway synthesizing aliphatics in epicuticular waxes&amp;author=L. M. Schneider&amp;author=N. M. Adamski&amp;author=C. E. Christensen&amp;author=D. B. Stuart&amp;author=S. Vautrin&amp;volume=67&amp;publication_year=2016&amp;pages=2715-2730&amp;pmid=26962211&amp;doi=10.1093/jxb/erw105&amp;"/></mixed-citation></ref><ref id="B110"><mixed-citation><named-content content-type="citation-string">Shimizu Y., Ogata H., Goto S. (2017). Discriminating the reaction types of plant type III polyketide synthases. Bioinformatics
33, 1937–1943. 10.1093/bioinformatics/btx112</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1093/bioinformatics/btx112"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC5870536"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="28334262"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Bioinformatics&amp;title=Discriminating the reaction types of plant type III polyketide synthases&amp;author=Y. Shimizu&amp;author=H. Ogata&amp;author=S. Goto&amp;volume=33&amp;publication_year=2017&amp;pages=1937-1943&amp;pmid=28334262&amp;doi=10.1093/bioinformatics/btx112&amp;"/></mixed-citation></ref><ref id="B111"><mixed-citation><named-content content-type="citation-string">Sinha A. K., Sharma A., Joshi B. P., Singh N. P. (2005). A mild conversion of phenylpropanoid into rare phenylbutanoids:(E)-4-(2′, 4′, 5′-trimethoxyphenyl) but-1, 3-diene and (E)-4-(2′, 4′, 5′-trimethoxyphenyl) but-1-ene occurring in <italic>Zingiber cassumunar</italic>. Nat. Product Res.
19, 771–776. 10.1080/14786410500045523</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1080/14786410500045523"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="16320427"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Nat. Product Res.&amp;title=A mild conversion of phenylpropanoid into rare phenylbutanoids:(E)-4-(2′, 4′, 5′-trimethoxyphenyl) but-1, 3-diene and (E)-4-(2′, 4′, 5′-trimethoxyphenyl) but-1-ene occurring in Zingiber cassumunar&amp;author=A. K. Sinha&amp;author=A. Sharma&amp;author=B. P. Joshi&amp;author=N. P. Singh&amp;volume=19&amp;publication_year=2005&amp;pages=771-776&amp;pmid=16320427&amp;doi=10.1080/14786410500045523&amp;"/></mixed-citation></ref><ref id="B112"><mixed-citation><named-content content-type="citation-string">Springob K., Lukačin R., Ernwein C., Gröning I., Matern U. (2000). Specificities of functionally expressed chalcone and acridone synthases from <italic>Ruta graveolens</italic>. FEBS J.
267, 6552–6559. 10.1046/j.1432-1327.2000.01746.x</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1046/j.1432-1327.2000.01746.x"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="11054106"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=FEBS J.&amp;title=Specificities of functionally expressed chalcone and acridone synthases from Ruta graveolens&amp;author=K. Springob&amp;author=R. Lukačin&amp;author=C. Ernwein&amp;author=I. Gröning&amp;author=U. Matern&amp;volume=267&amp;publication_year=2000&amp;pages=6552-6559&amp;pmid=11054106&amp;doi=10.1046/j.1432-1327.2000.01746.x&amp;"/></mixed-citation></ref><ref id="B113"><mixed-citation><named-content content-type="citation-string">Stewart C., Woods K., Macias G., Allan A. C., Hellens R. P., Noel J. P. (2017). Molecular architectures of benzoic acid-specific type III polyketide synthases. Acta Crystallographica Section D Struct. Biol.
73, 1007–1019. 10.1107/S2059798317016618</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1107/S2059798317016618"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC5713876"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="29199980"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Acta Crystallographica Section D Struct. Biol.&amp;title=Molecular architectures of benzoic acid-specific type III polyketide synthases&amp;author=C. Stewart&amp;author=K. Woods&amp;author=G. Macias&amp;author=A. C. Allan&amp;author=R. P. Hellens&amp;volume=73&amp;publication_year=2017&amp;pages=1007-1019&amp;pmid=29199980&amp;doi=10.1107/S2059798317016618&amp;"/></mixed-citation></ref><ref id="B114"><mixed-citation><named-content content-type="citation-string">Su G.-Y., Chen M.-L., Wang K.-W. (2020). Natural new bioactive anthraquinones from rubiaceae. Mini Rev. Organic Chem.
17, 872–883. 10.2174/1570193X17666200107092510</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.2174/1570193X17666200107092510"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Mini Rev. Organic Chem.&amp;title=Natural new bioactive anthraquinones from rubiaceae&amp;author=G.-Y. Su&amp;author=M.-L. Chen&amp;author=K.-W. Wang&amp;volume=17&amp;publication_year=2020&amp;pages=872-883&amp;doi=10.2174/1570193X17666200107092510&amp;"/></mixed-citation></ref><ref id="B115"><mixed-citation><named-content content-type="citation-string">Taura F., Tanaka S., Taguchi C., Fukamizu T., Tanaka H., Shoyama Y., et al. (2009). Characterization of olivetol synthase, a polyketide synthase putatively involved in cannabinoid biosynthetic pathway. FEBS Lett.
583, 2061–2066. 10.1016/j.febslet.2009.05.024</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.febslet.2009.05.024"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="19454282"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=FEBS Lett.&amp;title=Characterization of olivetol synthase, a polyketide synthase putatively involved in cannabinoid biosynthetic pathway&amp;author=F. Taura&amp;author=S. Tanaka&amp;author=C. Taguchi&amp;author=T. Fukamizu&amp;author=H. Tanaka&amp;volume=583&amp;publication_year=2009&amp;pages=2061-2066&amp;pmid=19454282&amp;doi=10.1016/j.febslet.2009.05.024&amp;"/></mixed-citation></ref><ref id="B116"><mixed-citation><named-content content-type="citation-string">Thapa S. B., Pandey R. P., Park Y. I., Sohng J. K. (2019). Biotechnological advances in resveratrol production and its chemical diversity. Molecules
24:2571. 10.3390/molecules24142571</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.3390/molecules24142571"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC6680439"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="31311182"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Molecules&amp;title=Biotechnological advances in resveratrol production and its chemical diversity&amp;author=S. B. Thapa&amp;author=R. P. Pandey&amp;author=Y. I. Park&amp;author=J. K. Sohng&amp;volume=24&amp;publication_year=2019&amp;pages=2571&amp;pmid=31311182&amp;doi=10.3390/molecules24142571&amp;"/></mixed-citation></ref><ref id="B117"><mixed-citation><named-content content-type="citation-string">Tiwari R., Rana C. (2015). Plant secondary metabolites: a review. Int. J. Eng. Res. Gen. Sci.
3, 661–670.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Int. J. Eng. Res. Gen. Sci.&amp;title=Plant secondary metabolites: a review&amp;author=R. Tiwari&amp;author=C. Rana&amp;volume=3&amp;publication_year=2015&amp;pages=661-670&amp;"/></mixed-citation></ref><ref id="B118"><mixed-citation><named-content content-type="citation-string">Ullrich S. F., Hagels H., Kayser O. (2017). Scopolamine: a journey from the field to clinics. Phytochem. Rev.
16, 333–353. 10.1007/s11101-016-9477-x</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/s11101-016-9477-x"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Phytochem. Rev.&amp;title=Scopolamine: a journey from the field to clinics&amp;author=S. F. Ullrich&amp;author=H. Hagels&amp;author=O. Kayser&amp;volume=16&amp;publication_year=2017&amp;pages=333-353&amp;doi=10.1007/s11101-016-9477-x&amp;"/></mixed-citation></ref><ref id="B119"><mixed-citation><named-content content-type="citation-string">Vargas R. I., Shelly T. E., Leblanc L., Pinero J. C. (2010). “Recent advances in methyl eugenol and cue-lure technologies for fruit fly detection, monitoring, and control in Hawaii,” in Vitamins &amp; Hormones, ed G. Litwack (Elsevier; ), 575–595. 10.1016/S0083-6729(10)83023-7</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/S0083-6729(10)83023-7"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="20831962"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="title=Vitamins &amp; Hormones&amp;author=R. I. Vargas&amp;author=T. E. Shelly&amp;author=L. Leblanc&amp;author=J. C. Pinero&amp;publication_year=2010&amp;"/></mixed-citation></ref><ref id="B120"><mixed-citation><named-content content-type="citation-string">Vasil I. K. (2012). Phytochemicals in Plant Cell Cultures. Cambridge: Elsevier.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="title=Phytochemicals in Plant Cell Cultures&amp;author=I. K. Vasil&amp;publication_year=2012&amp;"/></mixed-citation></ref><ref id="B121"><mixed-citation><named-content content-type="citation-string">Vitale D. C., Piazza C., Melilli B., Drago F., Salomone S. (2013). Isoflavones: estrogenic activity, biological effect and bioavailability. Eur. J. Drug Metab. Pharmacokinet.
38, 15–25. 10.1007/s13318-012-0112-y</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/s13318-012-0112-y"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="23161396"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Eur. J. Drug Metab. Pharmacokinet.&amp;title=Isoflavones: estrogenic activity, biological effect and bioavailability&amp;author=D. C. Vitale&amp;author=C. Piazza&amp;author=B. Melilli&amp;author=F. Drago&amp;author=S. Salomone&amp;volume=38&amp;publication_year=2013&amp;pages=15-25&amp;pmid=23161396&amp;doi=10.1007/s13318-012-0112-y&amp;"/></mixed-citation></ref><ref id="B122"><mixed-citation><named-content content-type="citation-string">von Wettstein-Knowles P. (2017). The polyketide components of waxes and the Cer-cqu gene cluster encoding a novel polyketide synthase, the β-diketone synthase, DKS. Plants
6:28. 10.3390/plants6030028</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.3390/plants6030028"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC5620584"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="28698520"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plants&amp;title=The polyketide components of waxes and the Cer-cqu gene cluster encoding a novel polyketide synthase, the β-diketone synthase, DKS&amp;author=P. von Wettstein-Knowles&amp;volume=6&amp;publication_year=2017&amp;pages=28&amp;pmid=28698520&amp;doi=10.3390/plants6030028&amp;"/></mixed-citation></ref><ref id="B123"><mixed-citation><named-content content-type="citation-string">Wang J., Zhang Z.-K., Jiang F.-F., Qi B.-W., Ding N., Hnin S. Y. Y., et al. (2020). Deciphering the biosynthetic mechanism of pelletierine in Lycopodium alkaloid biosynthesis. Org. Lett.
22, 8725–8729. 10.1021/acs.orglett.0c03339</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1021/acs.orglett.0c03339"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="33104367"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Org. Lett.&amp;title=Deciphering the biosynthetic mechanism of pelletierine in Lycopodium alkaloid biosynthesis&amp;author=J. Wang&amp;author=Z.-K. Zhang&amp;author=F.-F. Jiang&amp;author=B.-W. Qi&amp;author=N. Ding&amp;volume=22&amp;publication_year=2020&amp;pages=8725-8729&amp;pmid=33104367&amp;doi=10.1021/acs.orglett.0c03339&amp;"/></mixed-citation></ref><ref id="B124"><mixed-citation><named-content content-type="citation-string">Wang T., Li L.-F., Zhang K., Zhang W.-Y., Pei Y.-H. (2001). New 2-(2-phenylethyl) chromones from Bothriochloa ischaemum. J. Asian Nat. Prod. Res.
3, 145–149. 10.1080/10286020108041382</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1080/10286020108041382"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="11407814"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Asian Nat. Prod. Res.&amp;title=New 2-(2-phenylethyl) chromones from Bothriochloa ischaemum&amp;author=T. Wang&amp;author=L.-F. Li&amp;author=K. Zhang&amp;author=W.-Y. Zhang&amp;author=Y.-H. Pei&amp;volume=3&amp;publication_year=2001&amp;pages=145-149&amp;pmid=11407814&amp;doi=10.1080/10286020108041382&amp;"/></mixed-citation></ref><ref id="B125"><mixed-citation><named-content content-type="citation-string">Wang X.-X., Zan K., Shi S.-P., Zeng K.-W., Jiang Y., Guan Y., et al. (2013). Quinolone alkaloids with antibacterial and cytotoxic activities from the fruits of <italic>Evodia rutaecarpa</italic>. Fitoterapia
89, 1–7. 10.1016/j.fitote.2013.04.007</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.fitote.2013.04.007"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="23651559"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Fitoterapia&amp;title=Quinolone alkaloids with antibacterial and cytotoxic activities from the fruits of Evodia rutaecarpa&amp;author=X.-X. Wang&amp;author=K. Zan&amp;author=S.-P. Shi&amp;author=K.-W. Zeng&amp;author=Y. Jiang&amp;volume=89&amp;publication_year=2013&amp;pages=1-7&amp;pmid=23651559&amp;doi=10.1016/j.fitote.2013.04.007&amp;"/></mixed-citation></ref><ref id="B126"><mixed-citation><named-content content-type="citation-string">Wanibuchi K., Morita H., Noguchi H., Abe I. (2011). Enzymatic formation of an aromatic dodecaketide by engineered plant polyketide synthase. Bioorg. Med. Chem. Lett.
21, 2083–2086. 10.1016/j.bmcl.2011.01.135</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.bmcl.2011.01.135"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="21345674"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Bioorg. Med. Chem. Lett.&amp;title=Enzymatic formation of an aromatic dodecaketide by engineered plant polyketide synthase&amp;author=K. Wanibuchi&amp;author=H. Morita&amp;author=H. Noguchi&amp;author=I. Abe&amp;volume=21&amp;publication_year=2011&amp;pages=2083-2086&amp;pmid=21345674&amp;doi=10.1016/j.bmcl.2011.01.135&amp;"/></mixed-citation></ref><ref id="B127"><mixed-citation><named-content content-type="citation-string">Wanibuchi K., Zhang P., Abe T., Morita H., Kohno T., Chen G., et al. (2007). An acridone-producing novel multifunctional type III polyketide synthase from <italic>Huperzia serrata</italic>. FEBS J.
274, 1073–1082. 10.1111/j.1742-4658.2007.05656.x</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1111/j.1742-4658.2007.05656.x"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="17250741"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=FEBS J.&amp;title=An acridone-producing novel multifunctional type III polyketide synthase from Huperzia serrata&amp;author=K. Wanibuchi&amp;author=P. Zhang&amp;author=T. Abe&amp;author=H. Morita&amp;author=T. Kohno&amp;volume=274&amp;publication_year=2007&amp;pages=1073-1082&amp;pmid=17250741&amp;doi=10.1111/j.1742-4658.2007.05656.x&amp;"/></mixed-citation></ref><ref id="B128"><mixed-citation><named-content content-type="citation-string">Yang Y.-Y., Yang W., Zuo W.-J., Zeng Y.-B., Liu S.-B., Mei W.-L., et al. (2013). Two new acridone alkaloids from the branch of Atalantia buxifolia and their biological activity. J. Asian Nat. Prod. Res.
15, 899–904. 10.1080/10286020.2013.803073</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1080/10286020.2013.803073"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="23796077"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Asian Nat. Prod. Res.&amp;title=Two new acridone alkaloids from the branch of Atalantia buxifolia and their biological activity&amp;author=Y.-Y. Yang&amp;author=W. Yang&amp;author=W.-J. Zuo&amp;author=Y.-B. Zeng&amp;author=S.-B. Liu&amp;volume=15&amp;publication_year=2013&amp;pages=899-904&amp;pmid=23796077&amp;doi=10.1080/10286020.2013.803073&amp;"/></mixed-citation></ref><ref id="B129"><mixed-citation><named-content content-type="citation-string">Yoshikawa H., Ichiki Y., Sakakibara K. D., Tamura H., Suiko M. (2002). The biological and structural similarity between lunularic acid and abscisic acid. Biosci. Biotechnol. Biochem.
66, 840–846. 10.1271/bbb.66.840</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1271/bbb.66.840"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="12036058"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Biosci. Biotechnol. Biochem.&amp;title=The biological and structural similarity between lunularic acid and abscisic acid&amp;author=H. Yoshikawa&amp;author=Y. Ichiki&amp;author=K. D. Sakakibara&amp;author=H. Tamura&amp;author=M. Suiko&amp;volume=66&amp;publication_year=2002&amp;pages=840-846&amp;pmid=12036058&amp;doi=10.1271/bbb.66.840&amp;"/></mixed-citation></ref><ref id="B130"><mixed-citation><named-content content-type="citation-string">Yu H.-N., Wang L., Sun B., Gao S., Cheng A.-X., Lou H.-X. (2015). Functional characterization of a chalcone synthase from the liverwort Plagiochasma appendiculatum. Plant Cell Rep.
34, 233–245. 10.1007/s00299-014-1702-8</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/s00299-014-1702-8"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="25404490"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant Cell Rep.&amp;title=Functional characterization of a chalcone synthase from the liverwort Plagiochasma appendiculatum&amp;author=H.-N. Yu&amp;author=L. Wang&amp;author=B. Sun&amp;author=S. Gao&amp;author=A.-X. Cheng&amp;volume=34&amp;publication_year=2015&amp;pages=233-245&amp;pmid=25404490&amp;doi=10.1007/s00299-014-1702-8&amp;"/></mixed-citation></ref><ref id="B131"><mixed-citation><named-content content-type="citation-string">Zhang L., Gao B., Wang X., Zhang Z., Liu X., Wang J., et al. (2016). Identification of a new curcumin synthase from ginger and construction of a curcuminoid-producing unnatural fusion protein diketide-CoA synthase:: curcumin synthase. RSC Adv.
6, 12519–12524. 10.1039/C5RA23401H</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1039/C5RA23401H"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=RSC Adv.&amp;title=Identification of a new curcumin synthase from ginger and construction of a curcuminoid-producing unnatural fusion protein diketide-CoA synthase:: curcumin synthase&amp;author=L. Zhang&amp;author=B. Gao&amp;author=X. Wang&amp;author=Z. Zhang&amp;author=X. Liu&amp;volume=6&amp;publication_year=2016&amp;pages=12519-12524&amp;doi=10.1039/C5RA23401H&amp;"/></mixed-citation></ref><ref id="B132"><mixed-citation><named-content content-type="citation-string">Zhou X.-M., Zheng C.-J., Gan L.-S., Chen G.-Y., Zhang X.-P., Song X.-P., et al. (2016). Bioactive phenanthrene and bibenzyl derivatives from the stems of Dendrobium nobile. J. Nat. Prod.
79, 1791–1797. 10.1021/acs.jnatprod.6b00252</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1021/acs.jnatprod.6b00252"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="27310249"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J. Nat. Prod.&amp;title=Bioactive phenanthrene and bibenzyl derivatives from the stems of Dendrobium nobile&amp;author=X.-M. Zhou&amp;author=C.-J. Zheng&amp;author=L.-S. Gan&amp;author=G.-Y. Chen&amp;author=X.-P. Zhang&amp;volume=79&amp;publication_year=2016&amp;pages=1791-1797&amp;pmid=27310249&amp;doi=10.1021/acs.jnatprod.6b00252&amp;"/></mixed-citation></ref><ref id="B133"><mixed-citation><named-content content-type="citation-string">Zwergel C., Gaascht F., Valente S., Diederich M., Bagrel D., Kirsch G. (2012). Aurones: interesting natural and synthetic compounds with emerging biological potential. Nat. Prod. Commun.
7, 389–394. 10.1177/1934578X1200700322</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1177/1934578X1200700322"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="22545415"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Nat. Prod. Commun.&amp;title=Aurones: interesting natural and synthetic compounds with emerging biological potential&amp;author=C. Zwergel&amp;author=F. Gaascht&amp;author=S. Valente&amp;author=M. Diederich&amp;author=D. Bagrel&amp;volume=7&amp;publication_year=2012&amp;pages=389-394&amp;pmid=22545415&amp;doi=10.1177/1934578X1200700322&amp;"/></mixed-citation></ref></ref-list></sec></sec></body></article>