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<article article-type="research-article" xml:lang="en" dtd-version="1.4"><?da-xref-anchor-style autodetect?><front><journal-meta><journal-id journal-id-type="nlm-ta">European J Org Chem</journal-id><journal-id journal-id-type="iso-abbrev">European J Org Chem</journal-id><journal-id journal-id-type="pmc-domain-id">379</journal-id><journal-id journal-id-type="pmc-domain">blackwellopen</journal-id><journal-id journal-id-type="nlm-id">9805750</journal-id><journal-id journal-id-type="publisher-id">EJOC</journal-id><journal-title-group><journal-title>European Journal of Organic Chemistry</journal-title></journal-title-group><issn pub-type="ppub">1434-193X</issn><?publisher_abbrev blackwell?><custom-meta-group><custom-meta><meta-name>pmc-is-collection-domain</meta-name><meta-value>yes</meta-value></custom-meta><custom-meta><meta-name>pmc-collection-title</meta-name><meta-value>Wiley Open Access Collection</meta-value></custom-meta></custom-meta-group></journal-meta><article-meta><article-id pub-id-type="pmcid">PMC6686972</article-id><article-id pub-id-type="pmcid-ver">PMC6686972.1</article-id><article-id pub-id-type="pmcaid">6686972</article-id><article-id pub-id-type="pmcaiid">6686972</article-id><article-id pub-id-type="pmid">31423106</article-id><article-id pub-id-type="doi">10.1002/ejoc.201900059</article-id><article-id pub-id-type="publisher-id">EJOC201900059</article-id><article-version article-version-type="pmc-version">1</article-version><article-categories><subj-group subj-group-type="overline"><subject>Full Paper</subject></subj-group><subj-group subj-group-type="heading"><subject>Full Papers</subject><subj-group subj-group-type="heading"><subject>Heterocycles</subject></subj-group></subj-group></article-categories><title-group><article-title>A Revised Modular Approach to (–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐THC and Derivatives Through Late‐Stage Suzuki–Miyaura Cross‐Coupling Reactions</article-title><alt-title alt-title-type="left-running-head">V. L. J Bloemendal, D. Sondag, H. Elferink, T. J. Boltje, J. C. M van Hest, F. J. T Rutjes</alt-title><alt-title alt-title-type="right-running-head">A Revised Modular Approach to (–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐THC and Derivatives Through Late‐Stage Suzuki–Miyaura Cross‐Coupling Reactions</alt-title></title-group><contrib-group><contrib id="ejoc201900059-cr-0001" contrib-type="author"><name name-style="western"><surname>Bloemendal</surname><given-names initials="VRLJ">Victor R. L. J.</given-names></name><contrib-id contrib-id-type="orcid" authenticated="false">http://orcid.org/0000-0003-0013-6015</contrib-id><xref ref-type="aff" rid="ejoc201900059-aff-0001">
<sup>1</sup>
</xref><xref ref-type="author-notes" rid="ejoc201900059-note-0001">
<sup>†</sup>
</xref></contrib><contrib id="ejoc201900059-cr-0002" contrib-type="author"><name name-style="western"><surname>Sondag</surname><given-names initials="D">Daan</given-names></name><xref ref-type="aff" rid="ejoc201900059-aff-0001">
<sup>1</sup>
</xref><xref ref-type="author-notes" rid="ejoc201900059-note-0001">
<sup>†</sup>
</xref></contrib><contrib id="ejoc201900059-cr-0003" contrib-type="author"><name name-style="western"><surname>Elferink</surname><given-names initials="H">Hidde</given-names></name><contrib-id contrib-id-type="orcid" authenticated="false">http://orcid.org/0000-0002-3915-2218</contrib-id><xref ref-type="aff" rid="ejoc201900059-aff-0001">
<sup>1</sup>
</xref></contrib><contrib id="ejoc201900059-cr-0004" contrib-type="author"><name name-style="western"><surname>Boltje</surname><given-names initials="TJ">Thomas J.</given-names></name><contrib-id contrib-id-type="orcid" authenticated="false">http://orcid.org/0000-0001-9141-8784</contrib-id><xref ref-type="aff" rid="ejoc201900059-aff-0001">
<sup>1</sup>
</xref></contrib><contrib id="ejoc201900059-cr-0005" contrib-type="author" corresp="yes"><name name-style="western"><surname>van Hest</surname><given-names initials="JCM">Jan. C. M.</given-names></name><contrib-id contrib-id-type="orcid" authenticated="false">http://orcid.org/0000-0001-7973-2404</contrib-id><address><email>j.c.m.v.hest@tue.nl</email><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="uri" xlink:href="https://www.tue.nl/en/research/research-groups/bio-organic-chemistry/">https://www.tue.nl/en/research/research-groups/bio-organic-chemistry/</ext-link></address><xref ref-type="aff" rid="ejoc201900059-aff-0002">
<sup>2</sup>
</xref></contrib><contrib id="ejoc201900059-cr-0006" contrib-type="author" corresp="yes"><name name-style="western"><surname>Rutjes</surname><given-names initials="FPJT">Floris P. J. T.</given-names></name><contrib-id contrib-id-type="orcid" authenticated="false">http://orcid.org/0000-0003-1538-3852</contrib-id><address><email>floris.rutjes@ru.nl</email><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="uri" xlink:href="https://www.ru.nl/syntheticorganicchemistry/">https://www.ru.nl/syntheticorganicchemistry/</ext-link></address><xref ref-type="aff" rid="ejoc201900059-aff-0001">
<sup>1</sup>
</xref></contrib></contrib-group><aff id="ejoc201900059-aff-0001">
<label><sup>1</sup></label>
<institution>Institute for Molecules and Materials</institution>
<named-content content-type="street">Heyendaalseweg 135</named-content>
<named-content content-type="post-code">NL‐6525 AJ</named-content>
<named-content content-type="city">Nijmegen</named-content>
<country country="NL">The Netherlands</country>
</aff><aff id="ejoc201900059-aff-0002">
<label><sup>2</sup></label>
<institution>Eindhoven University of Technology</institution>
<named-content content-type="street">P.O. Box 513 (STO 3.31)</named-content>
<named-content content-type="post-code">NL‐5600 MB</named-content>
<named-content content-type="city">Eindhoven</named-content>
<country country="NL">The Netherlands</country>
</aff><author-notes><corresp id="correspondenceTo"><label>*</label>
Eindhoven University of Technology, P.O. Box 513 (STO 3.31), NL‐5600 MB Eindhoven,The Netherlands<break/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="uri" xlink:href="https://www.tue.nl/en/research/research-groups/bio-organic-chemistry/">https://www.tue.nl/en/research/research‐groups/bio‐organic‐chemistry/</ext-link><break/></corresp><fn id="ejoc201900059-note-0001"><label>†</label><p>These authors contributed equally to this work</p></fn></author-notes><pub-date pub-type="epub"><day>18</day><month>3</month><year>2019</year></pub-date><pub-date pub-type="ppub"><day>31</day><month>3</month><year>2019</year></pub-date><volume>2019</volume><issue>12</issue><issue-id pub-id-type="pmc-issue-id">340080</issue-id><issue-id pub-id-type="doi">10.1002/ejoc.v2019.12</issue-id><fpage>2289</fpage><lpage>2296</lpage><history><date date-type="received"><day>11</day><month>1</month><year>2019</year></date></history><pub-history><event event-type="pmc-release"><date><day>08</day><month>08</month><year>2019</year></date></event><event event-type="pmc-live"><date><day>14</day><month>08</month><year>2019</year></date></event><event event-type="pmc-last-change"><date iso-8601-date="2024-07-18 10:25:14.567"><day>18</day><month>07</month><year>2024</year></date></event></pub-history><permissions><copyright-statement content-type="article-copyright">© 2019 The Authors. Published by Wiley‐VCH Verlag GmbH &amp; Co. KGaA.</copyright-statement><license license-type="creativeCommonsBy"><ali:license_ref xmlns:ali="http://www.niso.org/schemas/ali/1.0/" specific-use="textmining" content-type="ccbylicense">https://creativecommons.org/licenses/by/4.0/</ali:license_ref><license-p>This is an open access article under the terms of the <ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="uri" xlink:href="http://creativecommons.org/licenses/by/4.0/">http://creativecommons.org/licenses/by/4.0/</ext-link> License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.</license-p></license></permissions><self-uri xmlns:xlink="http://www.w3.org/1999/xlink" content-type="pmc-pdf" xlink:href="EJOC-2019-2289.pdf"><?pdf-name EJOC-2019-2289.pdf?><?pdf-size 1224989?><?pdf-md5 7098d9601c85c3f45ceb26f939cfedcf?><?pdf-image-server-status NEVER_LOAD?><?pdf-cloudpmc-urn urn:app:1ff5/6686972/7098d9601c85/EJOC-2019-2289.pdf?></self-uri><self-uri xmlns:xlink="http://www.w3.org/1999/xlink" content-type="pdf" xlink:href="file:EJOC-2019-2289.pdf"/><abstract><p>A revised modular approach to various synthetic (–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐THC derivatives through late‐stage Suzuki–Miyaura cross‐coupling reactions is disclosed. Ten derivatives were synthesized allowing both sp<sup>2</sup>‐ and sp<sup>3</sup>‐hybridized cross‐coupling partners with minimal β‐hydride elimination. Importantly, we demonstrate that a <italic toggle="yes">para</italic>‐bromo‐substituted THC scaffold for Suzuki–Miyaura cross‐coupling reactions has been initially reported incorrectly in recent literature.</p></abstract><kwd-group kwd-group-type="author-generated"><kwd id="ejoc201900059-kwd-0001">Tetrahydrocannabinol</kwd><kwd id="ejoc201900059-kwd-0002">Suzuki–Miyaura coupling</kwd><kwd id="ejoc201900059-kwd-0003">Cannabis derivatives</kwd><kwd id="ejoc201900059-kwd-0004">Cascade reactions</kwd><kwd id="ejoc201900059-kwd-0005">Heterocycles</kwd></kwd-group><funding-group><award-group><funding-source>H2020 Marie Skłodowska-Curie Actions</funding-source><award-id>737266‐ONE FLOW</award-id></award-group></funding-group><counts><fig-count count="7"/><table-count count="1"/><page-count count="8"/><word-count count="0"/></counts><custom-meta-group><custom-meta><meta-name>pmc-status-qastatus</meta-name><meta-value>0</meta-value></custom-meta><custom-meta><meta-name>pmc-status-live</meta-name><meta-value>yes</meta-value></custom-meta><custom-meta><meta-name>pmc-status-embargo</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>pmc-status-released</meta-name><meta-value>yes</meta-value></custom-meta><custom-meta><meta-name>pmc-prop-open-access</meta-name><meta-value>yes</meta-value></custom-meta><custom-meta><meta-name>pmc-prop-olf</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>pmc-prop-manuscript</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>pmc-prop-legally-suppressed</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>pmc-prop-has-pdf</meta-name><meta-value>yes</meta-value></custom-meta><custom-meta><meta-name>pmc-prop-has-supplement</meta-name><meta-value>yes</meta-value></custom-meta><custom-meta><meta-name>pmc-prop-pdf-only</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>pmc-prop-suppress-copyright</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>pmc-prop-is-real-version</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>pmc-prop-is-scanned-article</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>pmc-prop-preprint</meta-name><meta-value>no</meta-value></custom-meta><custom-meta><meta-name>pmc-prop-in-epmc</meta-name><meta-value>yes</meta-value></custom-meta><custom-meta><meta-name>pmc-license-ref</meta-name><meta-value>CC BY</meta-value></custom-meta><custom-meta><meta-name>source-schema-version-number</meta-name><meta-value>2.0</meta-value></custom-meta><custom-meta><meta-name>component-id</meta-name><meta-value>ejoc201900059</meta-value></custom-meta><custom-meta><meta-name>cover-date</meta-name><meta-value>March 31, 2019</meta-value></custom-meta><custom-meta><meta-name>details-of-publishers-convertor</meta-name><meta-value>Converter:WILEY_ML3GV2_TO_NLMPMC version:5.6.4 mode:remove_FC converted:13.06.2019</meta-value></custom-meta></custom-meta-group></article-meta></front><body><sec id="ejoc201900059-sec-0010"><title>Introduction</title><p>Medicinal applications of Cannabis sativa have drawn worldwide attention ever since the first introduction in Western medicine in 1839.<xref rid="ejoc201900059-bib-0001" ref-type="ref">1</xref> Since then, over 500 constituents from this plant have been isolated and identified, among which 113 biologically active phytocannabinoids.<xref rid="ejoc201900059-bib-0002" ref-type="ref">2</xref> The active constituents may be applied to treat neurodegenerative symptoms of Parkinson, Alzheimer, and MS,<xref rid="ejoc201900059-bib-0002" ref-type="ref">2</xref> but are also used as analgesic for patients with specific forms of cancer.<xref rid="ejoc201900059-bib-0003" ref-type="ref">3</xref> Tetrahydrocannabinols (THCs), in particular the predominant isomers (–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐THC (thermodynamic product, Scheme <xref rid="ejoc201900059-fig-0002" ref-type="fig">1</xref>A) and (–)‐<italic toggle="yes">trans</italic>‐Δ<sup>9</sup>‐THC (kinetic product), are the major (psycho‐)active compounds encountered in Cannabis sativa.<xref rid="ejoc201900059-bib-0004" ref-type="ref">4</xref> THCs interact with the G‐protein‐coupled receptors CB<sub>1</sub> and CB<sub>2</sub>, which are mainly expressed in the central nervous system (CNS) and its periphery.<xref rid="ejoc201900059-bib-0005" ref-type="ref">5</xref> The pharmacological effects and selectivity exhibited by the natural substrates may be improved by synthetic THC derivatives.<xref rid="ejoc201900059-bib-0006" ref-type="ref">6</xref> Hence, a multitude of synthetic CB<sub>1</sub> agonists have already been prepared, some of which are in clinical trials.<xref rid="ejoc201900059-bib-0006" ref-type="ref">6</xref>, <xref rid="ejoc201900059-bib-0007" ref-type="ref">7</xref>
</p><fig fig-type="Scheme" xml:lang="en" id="ejoc201900059-fig-0002" orientation="portrait" position="float"><label>Scheme 1</label><caption><p>A) Synthesis of (–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐THC using (–)‐verbenol (<bold>2</bold>) and olivetol (<bold>1a</bold>) by Mechoulam et al.;<xref rid="ejoc201900059-bib-0009" ref-type="ref">9</xref> B) Synthesis of (–)‐<italic toggle="yes">trans</italic>‐Δ<sup>9</sup>‐THC‐Br using multistep synthesis by Carreira et al.;<xref rid="ejoc201900059-bib-0010" ref-type="ref">10</xref> C) Our revised modular synthesis of (–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐THC derivatives.</p></caption><graphic xmlns:xlink="http://www.w3.org/1999/xlink" id="nlm-graphic-3" position="float" orientation="portrait" xlink:href="EJOC-2019-2289-g002.jpg"><?image-name EJOC-2019-2289-g002.jpg?><?image-size 69136?><?image-md5 5fbc5284f6a29fadbd36ed3b0b21b5d8?><?image-image-server-status NEVER_LOAD?><?image-original-height 340?><?image-original-width 335?><?image-scaled-height 340?><?image-scaled-width 335?><?image-cloudpmc-urn urn:cdn:blobs/1ff5/6686972/5fbc5284f6a2/EJOC-2019-2289-g002.jpg?><?thumb-name EJOC-2019-2289-g002.gif?><?thumb-size 16591?><?thumb-md5 a9d035f0de7f5b9fd2bdfed11108a61c?><?thumb-image-server-status NEVER_LOAD?><?thumb-scaled-height 100?><?thumb-scaled-width 99?><?thumb-cloudpmc-urn urn:cdn:blobs/1ff5/6686972/a9d035f0de7f/EJOC-2019-2289-g002.gif?><permissions><copyright-holder>John Wiley &amp; Sons, Ltd.</copyright-holder></permissions></graphic></fig><p>The first isolation and partial synthesis of (–)‐<italic toggle="yes">trans</italic>‐Δ<sup>9</sup>‐THC (Δ<sup>9</sup>‐THC) in 1964 by Mechoulam et al.,<xref rid="ejoc201900059-bib-0008" ref-type="ref">8</xref> followed by the stereoselective synthesis of both THC isomers three years later,<xref rid="ejoc201900059-bib-0009" ref-type="ref">9</xref> initiated a growing interest in the preparation of new (synthetic) cannabinoids (Scheme <xref rid="ejoc201900059-fig-0002" ref-type="fig">1</xref>A). In particular, the introduction of unnatural substituents on the resorcinol building block was shown to improve selectivity of THC analogues for CB<sub>1</sub> or CB<sub>2</sub>. Despite various strategies that have been developed over the years,<xref rid="ejoc201900059-bib-0001" ref-type="ref">1</xref> the synthesis of THC derivatives remains a significant challenge. Therefore, a generally applicable modular approach allowing late‐stage synthetic modification of cannabinoids would be very useful. As an example, an elegant method to synthesize challenging Δ<sup>9</sup>‐THC derivatives via late‐stage Suzuki–Miyaura cross‐coupling reactions was recently reported by Carreira et al. (Scheme <xref rid="ejoc201900059-fig-0002" ref-type="fig">1</xref>B).<xref rid="ejoc201900059-bib-0010" ref-type="ref">10</xref> Yet, the preparation of the Δ<sup>9</sup>‐THC‐Br precursor required a multistep sequence and did not provide access to the corresponding (–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐THC (Δ<sup>8</sup>‐THC) derivatives.<xref rid="ejoc201900059-bib-0006" ref-type="ref">6</xref>
</p><p>Herein we report a revised one‐step synthetic approach to Δ<sup>8</sup>‐THC, Δ<sup>8</sup>‐propyl‐THC and halogenated Δ<sup>8</sup>‐THC scaffolds, which have been used in SAR studies.<xref rid="ejoc201900059-bib-0006" ref-type="ref">6</xref> We also demonstrate that recent reports concerning the synthesis of para‐substituted THC derivatives are incorrect,<xref rid="ejoc201900059-bib-0011" ref-type="ref">11</xref> and by studying the regioselectivity of various resorcinol derivatives with (–)‐verbenol (<bold>2</bold>) we deliver proof of the correct assignment of the two possible regioisomers. Finally, both regioisomeric scaffolds were functionalized through late‐stage Suzuki–Miyaura cross‐coupling reactions with sp<sup>2</sup>‐ and sp<sup>3</sup>‐hybridized organoboron reagents (Scheme <xref rid="ejoc201900059-fig-0002" ref-type="fig">1</xref>C).</p></sec><sec id="ejoc201900059-sec-0020"><title>Results and Discussion</title><p>Inspired by the seminal work of Mechoulam et al. we investigated whether the electrophilic aromatic substitution of commercially available olivetol (<bold>1a</bold>) with (–)‐verbenol (<bold>2</bold>), directly followed by cyclization to afford Δ<sup>8</sup>‐THC could also be effected with Brønsted acids (see: Experimental Section). Reaction under the influence of TfOH in CH<sub>2</sub>Cl<sub>2</sub> at 0 °C provided the thermodynamic isomer Δ<sup>8</sup>‐THC in 33 % isolated yield as the sole product. Unlike weaker Brønsted acids, TfOH was successfully used for both Friedel‐Crafts alkylation and subsequent cyclization at room temperature. We also envisioned that this transformation could be used to create a Δ<sup>8</sup>‐THC scaffold for late‐stage derivatization through Pd‐catalyzed cross‐coupling reactions. Thus, initially using readily available phloroglucinol (<bold>1b</bold>), Δ<sup>8</sup>‐THC‐hydroxy analogue <bold>3</bold> was prepared using TfOH in 53 % yield (Scheme <xref rid="ejoc201900059-fig-0003" ref-type="fig">2</xref>). Selective triflation with Tf<sub>2</sub>O at 0 °C of the least hindered <italic toggle="yes">para</italic>‐hydroxy substituent resulted in Δ8‐THC‐triflate <bold>4</bold> in 56 % yield.</p><fig fig-type="Scheme" xml:lang="en" id="ejoc201900059-fig-0003" orientation="portrait" position="float"><label>Scheme 2</label><caption><p>Synthesis of Δ<sup>8</sup>‐THC‐triflate (<bold>4</bold>) using phloroglucinol (<bold>1b</bold>) and subsequent regioselective triflation.</p></caption><graphic xmlns:xlink="http://www.w3.org/1999/xlink" id="nlm-graphic-5" position="float" orientation="portrait" xlink:href="EJOC-2019-2289-g003.jpg"><?image-name EJOC-2019-2289-g003.jpg?><?image-size 31349?><?image-md5 994815b4a6f36d87933cd2c7e1218624?><?image-image-server-status NEVER_LOAD?><?image-original-height 118?><?image-original-width 335?><?image-scaled-height 118?><?image-scaled-width 335?><?image-cloudpmc-urn urn:cdn:blobs/1ff5/6686972/994815b4a6f3/EJOC-2019-2289-g003.jpg?><?thumb-name EJOC-2019-2289-g003.gif?><?thumb-size 9326?><?thumb-md5 a533cbb4586335bfcd8a6e414d132436?><?thumb-image-server-status NEVER_LOAD?><?thumb-scaled-height 70?><?thumb-scaled-width 199?><?thumb-cloudpmc-urn urn:cdn:blobs/1ff5/6686972/a533cbb45863/EJOC-2019-2289-g003.gif?><permissions><copyright-holder>John Wiley &amp; Sons, Ltd.</copyright-holder></permissions></graphic></fig><p>Unfortunately, all attempts of triflate <bold>4</bold> to undergo sp<sup>2</sup>‐sp<sup>3</sup> Suzuki–Miyaura coupling utilizing various ligands, solvents and different organoboron reagents failed to give the desired products (see: Supporting Information I). Presumably, oxidative addition onto the electron‐rich aromatic system did not occur, since in most cases triflate <bold>4</bold> was recovered.<xref rid="ejoc201900059-bib-0012" ref-type="ref">12</xref> During the preparation of this manuscript, Studer et al. reported the sp<sup>2</sup>‐sp<sup>2</sup> Suzuki–Miyaura cross coupling with triflate <bold>4</bold> to obtain aryl‐substituted THC derivatives,<xref rid="ejoc201900059-bib-0013" ref-type="ref">13</xref> but were unable to prepare biologically more relevant sp<sup>3</sup>‐substituted THC derivatives<xref rid="ejoc201900059-bib-0014" ref-type="ref">14</xref> through direct cross‐coupling reactions.</p><p>Inversely, existing syntheses of bromo‐substituted THCs<xref rid="ejoc201900059-bib-0011" ref-type="ref">11</xref>, <xref rid="ejoc201900059-bib-0015" ref-type="ref">15</xref> by alkylating 5‐bromoresorcinol <bold>5</bold> with terpenoid systems such as verbenol (<bold>2</bold>) and <italic toggle="yes">para</italic>‐mentha‐2,8‐dienol, inspired us to incorporate different synthetic handles in the Δ<sup>8</sup>‐THC derivatives. Hence, halide‐substituted THC scaffolds were prepared through TfOH‐catalyzed condensation of resorcinol <bold>5</bold> (Scheme <xref rid="ejoc201900059-fig-0004" ref-type="fig">3</xref>).</p><fig fig-type="Scheme" xml:lang="en" id="ejoc201900059-fig-0004" orientation="portrait" position="float"><label>Scheme 3</label><caption><p>Reaction of 5‐bromoresorcinol (<bold>5</bold>) with (–)‐verbenol (<bold>2</bold>) to give regioisomers <bold>6</bold> and <bold>7</bold>.</p></caption><graphic xmlns:xlink="http://www.w3.org/1999/xlink" id="nlm-graphic-7" position="float" orientation="portrait" xlink:href="EJOC-2019-2289-g004.jpg"><?image-name EJOC-2019-2289-g004.jpg?><?image-size 33359?><?image-md5 c7f6335ad39792ea5a7f9a695576220a?><?image-image-server-status NEVER_LOAD?><?image-original-height 204?><?image-original-width 335?><?image-scaled-height 204?><?image-scaled-width 335?><?image-cloudpmc-urn urn:cdn:blobs/1ff5/6686972/c7f6335ad397/EJOC-2019-2289-g004.jpg?><?thumb-name EJOC-2019-2289-g004.gif?><?thumb-size 8848?><?thumb-md5 2f9e747a90245fc4c9c836b087e37770?><?thumb-image-server-status NEVER_LOAD?><?thumb-scaled-height 80?><?thumb-scaled-width 131?><?thumb-cloudpmc-urn urn:cdn:blobs/1ff5/6686972/2f9e747a9024/EJOC-2019-2289-g004.gif?><permissions><copyright-holder>John Wiley &amp; Sons, Ltd.</copyright-holder></permissions></graphic></fig><p>The electrophilic aromatic substitution/cyclization protocol of <bold>5</bold> with (–)‐verbenol (<bold>2</bold>) surprisingly provided different results than recently published by Studer et al.[<xref rid="ejoc201900059-bib-0011" ref-type="ref">11a</xref>] and Dethe et al.[<xref rid="ejoc201900059-bib-0011" ref-type="ref">11b</xref>] (Scheme <xref rid="ejoc201900059-fig-0004" ref-type="fig">3</xref>). In our hands, a mixture of regioisomers <bold>6</bold> and <bold>7</bold> was obtained, with the <italic toggle="yes">ortho</italic>‐substituted regioisomer <bold>6</bold> being the main product, meaning that electrophilic aromatic substitution of <bold>5</bold> did not only take place on the “activated” C2‐position but also on the equivalent C4‐ and C6‐positions.<xref rid="ejoc201900059-bib-0016" ref-type="ref">16</xref> The Dethe and Studer groups reported formation of the <italic toggle="yes">para</italic>‐isomer <bold>7</bold> as the sole product, however, the structure was initially incorrectly assigned. Our characterizations are in line with the <italic toggle="yes">para</italic>‐bromo‐substituted Δ<sup>9</sup>‐THC derivatives by Carreira et al.,<xref rid="ejoc201900059-bib-0010" ref-type="ref">10</xref> describing similar NMR shifts and coupling constants. The discrepancy in the assignment of the regioisomers was clarified using a variety of NMR experiments (see: Supporting Information II). Careful analysis of the <sup>1</sup>H‐NMR spectrum showed clear proof of the difference between regioisomers <bold>6</bold> and <bold>7</bold>, indicated by a 0.7 Hz difference in <sup>4</sup>
<italic toggle="yes">J</italic>
<sub>3′,5′</sub> coupling constant between the two aromatic protons and their distinguishable chemical shifts (Figure <xref rid="ejoc201900059-fig-0001" ref-type="fig">1</xref>). This was further confirmed by HMBC NMR analysis showing a correlation between proton H‐1 and C‐2′.</p><fig fig-type="Figure" xml:lang="en" id="ejoc201900059-fig-0001" orientation="portrait" position="float"><label>Figure 1</label><caption><p>The <sup>1</sup>H‐NMR chemical shift and <sup>4</sup>
<italic toggle="yes">J</italic>
<sub>3′‐5′</sub>‐coupling constants of the aromatic protons of regioisomers <bold>6</bold> and <bold>7</bold>.</p></caption><graphic xmlns:xlink="http://www.w3.org/1999/xlink" id="nlm-graphic-9" position="float" orientation="portrait" xlink:href="EJOC-2019-2289-g001.jpg"><?image-name EJOC-2019-2289-g001.jpg?><?image-size 36748?><?image-md5 6de78ff939de347135cb2ae8a64aeeee?><?image-image-server-status NEVER_LOAD?><?image-original-height 219?><?image-original-width 335?><?image-scaled-height 219?><?image-scaled-width 335?><?image-cloudpmc-urn urn:cdn:blobs/1ff5/6686972/6de78ff939de/EJOC-2019-2289-g001.jpg?><?thumb-name EJOC-2019-2289-g001.gif?><?thumb-size 9262?><?thumb-md5 7ba16531e1858493567c830ed5a7c64d?><?thumb-image-server-status NEVER_LOAD?><?thumb-scaled-height 80?><?thumb-scaled-width 122?><?thumb-cloudpmc-urn urn:cdn:blobs/1ff5/6686972/7ba16531e185/EJOC-2019-2289-g001.gif?><permissions><copyright-holder>John Wiley &amp; Sons, Ltd.</copyright-holder></permissions></graphic></fig><p>Since the undesired regioisomer was formed predominantly, we studied the intrinsic regioselectivity of the electrophilic aromatic substitution hoping that by changing the halide of the resorcinol system the ratio could be positively influenced. Starting from 5‐chloro‐ and 5‐iodoresorcinol (<bold>8</bold> and <bold>9</bold>, respectively) four halide‐substituted THC analogues <bold>16</bold>/<bold>17</bold> and<bold> 18</bold>/<bold>19</bold> were prepared. Despite the difference in size of the halides, no clear trend in regioselectivity was observed, since in all cases <italic toggle="yes">ortho</italic>‐substitution was preferred over <italic toggle="yes">para</italic>‐substitution. This preference has also been observed in literature,<xref rid="ejoc201900059-bib-0016" ref-type="ref">16</xref>, <xref rid="ejoc201900059-bib-0017" ref-type="ref">17</xref> and is most likely due to the deactivating effect exerted by the halide on the aromatic ring. Selective <italic toggle="yes">para</italic>‐substitution was only observed in case of the alkyl‐substituted THC regioisomers <bold>13a</bold> and <bold>13b</bold>. This is underlined by Baek et al.,<xref rid="ejoc201900059-bib-0018" ref-type="ref">18</xref> who already showed in 1992 that electrophilic aromatic substitution of alkyl resorcinols preferentially takes place at the C2‐position. For the halide‐substituted THC analogues the highest amount of <italic toggle="yes">para‐</italic>substitution and total yield were obtained starting from 5‐bromoresorcinol (<bold>5</bold>, Table <xref rid="ejoc201900059-tbl-0001" ref-type="table">1</xref>, entry 2). These bromo‐substituted synthons for Suzuki–Miyaura cross‐coupling reactions were used to derivatize the pharmacologically relevant C3′‐ and C5′‐positions of Δ<sup>8</sup>‐THC.<xref rid="ejoc201900059-bib-0019" ref-type="ref">19</xref>
</p><table-wrap id="ejoc201900059-tbl-0001" xml:lang="en" orientation="portrait" position="float"><label>Table 1</label><caption><p>
<italic toggle="yes">ortho‐</italic> and <italic toggle="yes">para‐</italic>halide substituted THCs obtained from resorcinols <bold>5</bold>, <bold>8</bold> and <bold>9</bold>
</p></caption><graphic xmlns:xlink="http://www.w3.org/1999/xlink" id="nlm-graphic-11" position="float" orientation="portrait" xlink:href="EJOC-2019-2289-g007.jpg"><?image-name EJOC-2019-2289-g007.jpg?><?image-size 42287?><?image-md5 4a32431f77bcc6a1bf44685ad9833f17?><?image-image-server-status NEVER_LOAD?><?image-original-height 318?><?image-original-width 335?><?image-scaled-height 318?><?image-scaled-width 335?><?image-cloudpmc-urn urn:cdn:blobs/1ff5/6686972/4a32431f77bc/EJOC-2019-2289-g007.jpg?><?thumb-name EJOC-2019-2289-g007.gif?><?thumb-size 10011?><?thumb-md5 e7486d23e0c0f99a9e8db7cd9a4dc7ba?><?thumb-image-server-status NEVER_LOAD?><?thumb-scaled-height 94?><?thumb-scaled-width 99?><?thumb-cloudpmc-urn urn:cdn:blobs/1ff5/6686972/e7486d23e0c0/EJOC-2019-2289-g007.gif?><permissions><copyright-holder>John Wiley &amp; Sons, Ltd.</copyright-holder></permissions></graphic><permissions><copyright-holder>John Wiley &amp; Sons, Ltd</copyright-holder></permissions></table-wrap><p>To investigate the reactivity of bromides <bold>6</bold> and <bold>7</bold>, various Pd‐catalyzed cross‐coupling reactions were evaluated. Classical Heck, Kumada, Stille, and Negishi reactions were investigated, but all led to degradation of the THC scaffold, were low yielding and/or hard to reproduce. The Suzuki–Miyaura cross‐couplings of <bold>6</bold> and <bold>7</bold> were successful and provided six different Δ<sup>8</sup>‐THC derivatives (Scheme <xref rid="ejoc201900059-fig-0005" ref-type="fig">4</xref>). Use of Pd(dppf)Cl<sub>2</sub> as the catalyst in combination with Cs<sub>2</sub>CO<sub>3</sub>, MeOH and potassium trifluoroborates (BF<sub>3</sub>K salts)<xref rid="ejoc201900059-bib-0010" ref-type="ref">10</xref> worked best in our hands and afforded the products <bold>10a–c</bold> and <bold>11a–c</bold> in yields ranging from 17 up to 78 %. NMR data of the <italic toggle="yes">ortho</italic>‐substituted derivatives <bold>10a–c</bold> were in agreement with those obtained in earlier studies,<xref rid="ejoc201900059-bib-0013" ref-type="ref">13</xref> although they were previously reported to be <italic toggle="yes">para</italic>‐substituted (see: Supporting Information III). Notably, <bold>10b</bold> was formed as an inseparable mixture of atropisomers (<italic toggle="yes">R</italic>
<sub>a</sub>, <italic toggle="yes">S</italic>
<sub>a</sub>), but could be analyzed using advanced NMR techniques (see: Supporting Information IV).</p><fig fig-type="Scheme" xml:lang="en" id="ejoc201900059-fig-0005" orientation="portrait" position="float"><label>Scheme 4</label><caption><p>The Suzuki–Miyaura cross‐coupling of isomers <bold>6</bold> and <bold>7</bold> to give Δ<sup>8</sup>‐THC derivatives using sp<sup>2</sup>‐hybridized organotrifluoroborate substrates.</p></caption><graphic xmlns:xlink="http://www.w3.org/1999/xlink" id="nlm-graphic-13" position="float" orientation="portrait" xlink:href="EJOC-2019-2289-g005.jpg"><?image-name EJOC-2019-2289-g005.jpg?><?image-size 45179?><?image-md5 47a7e0cfdddb42c5044bd031e8d232a6?><?image-image-server-status NEVER_LOAD?><?image-original-height 193?><?image-original-width 335?><?image-scaled-height 193?><?image-scaled-width 335?><?image-cloudpmc-urn urn:cdn:blobs/1ff5/6686972/47a7e0cfdddb/EJOC-2019-2289-g005.jpg?><?thumb-name EJOC-2019-2289-g005.gif?><?thumb-size 12588?><?thumb-md5 34982a4293be913e6c70db6a2c2f5dd1?><?thumb-image-server-status NEVER_LOAD?><?thumb-scaled-height 80?><?thumb-scaled-width 138?><?thumb-cloudpmc-urn urn:cdn:blobs/1ff5/6686972/34982a4293be/EJOC-2019-2289-g005.gif?><permissions><copyright-holder>John Wiley &amp; Sons, Ltd.</copyright-holder></permissions></graphic></fig><p>To extend this method to a modular approach, we studied conditions that would allow the synthesis of more challenging substrates involving sp<sup>2</sup>‐sp<sup>3</sup> cross‐coupling. It was found that Pd(OAc)<sub>2</sub> combined with RuPhos and NaOH facilitated coupling with sp<sup>3</sup>‐hybridized reagents with minimal β‐hydride elimination.<xref rid="ejoc201900059-bib-0020" ref-type="ref">20</xref> The BF<sub>3</sub>K salts, used as substrates for cross‐coupling reactions, were prepared in a straightforward manner from the corresponding boronic acids under non‐etching conditions.<xref rid="ejoc201900059-bib-0021" ref-type="ref">21</xref> Elaborating on the essential difference of regioisomers <bold>6</bold> and <bold>7</bold>, we converted <bold>7</bold> into naturally occurring Δ<sup>8</sup>‐THC (<bold>13a</bold>) and Δ<sup>8</sup>‐propyl‐THC (<bold>13b</bold>) by successful Suzuki–Miyaura cross‐coupling (Scheme <xref rid="ejoc201900059-fig-0006" ref-type="fig">5</xref>). The spectroscopic data of <bold>13a</bold> and <bold>13b</bold> were in agreement with previously conducted experiments (see: Experimental Section). The versatility of this new modular route towards Δ<sup>8</sup>‐THC was extended to the preparation of THC derivatives <bold>12a</bold>–<bold>b</bold>.</p><fig fig-type="Scheme" xml:lang="en" id="ejoc201900059-fig-0006" orientation="portrait" position="float"><label>Scheme 5</label><caption><p>The Suzuki–Miyaura cross‐coupling of isomers <bold>6</bold> and <bold>7</bold> to give Δ<sup>8</sup>‐THC (derivatives) using sp<sup>3</sup>‐hybridized organotrifluoroborate substrates.</p></caption><graphic xmlns:xlink="http://www.w3.org/1999/xlink" id="nlm-graphic-15" position="float" orientation="portrait" xlink:href="EJOC-2019-2289-g006.jpg"><?image-name EJOC-2019-2289-g006.jpg?><?image-size 39577?><?image-md5 38f5602c7890d2fae431803361874e72?><?image-image-server-status NEVER_LOAD?><?image-original-height 151?><?image-original-width 335?><?image-scaled-height 151?><?image-scaled-width 335?><?image-cloudpmc-urn urn:cdn:blobs/1ff5/6686972/38f5602c7890/EJOC-2019-2289-g006.jpg?><?thumb-name EJOC-2019-2289-g006.gif?><?thumb-size 12479?><?thumb-md5 0d8e40a5c20917f0b86b2cbd9b17468c?><?thumb-image-server-status NEVER_LOAD?><?thumb-scaled-height 80?><?thumb-scaled-width 177?><?thumb-cloudpmc-urn urn:cdn:blobs/1ff5/6686972/0d8e40a5c209/EJOC-2019-2289-g006.gif?><permissions><copyright-holder>John Wiley &amp; Sons, Ltd.</copyright-holder></permissions></graphic></fig></sec><sec id="ejoc201900059-sec-0030"><title>Conclusions</title><p>In conclusion, we developed a synthetically versatile experimental procedure to synthesize Δ<sup>8</sup>‐THC and a range of derivatives. Six unique halide‐substituted THC analogues were prepared through an electrophilic aromatic substitution/cyclization protocol of three different halide resorcinols with verbenol, which are scaffolds for Suzuki–Miyaura cross‐coupling reactions. Regioselectivity of the Friedel‐Crafts alkylations was evaluated and shown to be primarily <italic toggle="yes">ortho</italic>‐directing, most likely due to electronic effects. The use of bromo‐substituted Δ<sup>8</sup>‐THC in recent literature was wrongly reported to provide <italic toggle="yes">para</italic>‐substituted products and is rectified. Our revised modular approach proved to be suitable for sp<sup>2</sup>‐ and sp<sup>3</sup>‐hybridized substrates and led to the synthesis of ten different pharmacologically relevant Δ<sup>8</sup>‐THC derivatives. We envision that this modular procedure can be extended to Δ<sup>9</sup>‐THC derivatives using double bond isomerization<xref rid="ejoc201900059-bib-0022" ref-type="ref">22</xref> or starting from <italic toggle="yes">para</italic>‐mentha‐2,8‐dien‐1‐ol, which is currently being studied in our laboratories.</p></sec><sec id="ejoc201900059-sec-0040"><title>Experimental Section</title><p>
<bold>Supporting Information</bold> (see footnote on the first page of this article): copies of 1D and 2D NMR spectra and extensive NMR studies are provided in Supporting Information.</p><p>
<bold>1. General information</bold>: NMR spectra were recorded on a Bruker Avance III 400 MHz or a Bruker 500 MHz spectrometer and the compounds were assigned using <sup>1</sup>H NMR, <sup>13</sup>C NMR, <sup>11</sup>B NMR, <sup>19</sup>F NMR, COSY, HSQCED and HMBC spectra. Chemical shifts were reported in parts per million (ppm.) relative to reference (CDCl<sub>3</sub>: <sup>1</sup>H: 7.26 ppm. and <sup><bold>1</bold>3</sup>C 77.16 ppm; CD<sub>3</sub>OD: <sup>1</sup>H: 3.31 ppm. and <sup><bold>1</bold>3</sup>C 49.00 ppm; (CD<sub>3</sub>)<sub>2</sub>SO: <sup>1</sup>H: 2.50 ppm. and <sup><bold>1</bold>3</sup>C 39.52 ppm.) NMR data are presented in the following way: chemical shift, multiplicity (s = singlet, bs = broad singlet, d = doublet, <italic toggle="yes">t</italic> = triplet, dd = doublet of doublets, ddd = doublet of doublet of doublets, dtd = doublet of triplet of doublets h = heptet, m = multiplet and/or multiple resonances) and coupling constants <italic toggle="yes">J</italic> in Hz. Reactions were monitored using TLC F<sub>254</sub> (Merck KGaA) using UV absorption detection (254 nm) and by spraying them with cerium ammonium molybdate stain (Hannesian's stain) followed by charring at ca 300 °C. Mass spectra were recorded on a JEOL AccuTOF CS JMS‐T100CS (ESI) mass spectrometer. Melting points (m.p.) were determined using a Büchi Melting Point B‐545. Automatic flash column chromatography was executed on a Biotage Isolera Spektra One using SNAP or Silicycle cartridges (Biotage, 30–100 μm, 60Å) 4–50 g. Reactions under protective atmosphere were performed under positive Ar./N<sub>2</sub> flow in flame‐dried flasks. Atom‐numbering of the THC compounds is derived from an earlier reported NMR assignment in literature.<xref rid="ejoc201900059-bib-0019" ref-type="ref">19</xref>
</p><p>
<bold>2. General procedures</bold>
</p><p>
<bold>General procedure I</bold> for potassium trifluoroborate salt synthesis from boronic acid (<bold>22–25</bold>)<bold>:</bold>
<xref rid="ejoc201900059-bib-0021" ref-type="ref">21</xref> Boronic acid (1 equiv.) was dissolved in acetonitrile (0.1M), KF (4 equiv.) in water (1M) was added at r.t. and the reaction was left stirring for 5 min. 2,3‐Dihydroxysuccinic acid (2.05 equiv.) dissolved in THF (0.3M) (heat was required) was added dropwise to the vigorously stirred biphasic mixture and a white precipitate formed immediately. The reaction was diluted with acetonitrile and filtered. The flask and filter were rinsed with acetonitrile and the filtrate was concentrated in vacuo. The residue was dried under high vacuum affording the trifluoroborate salt as pure product (<bold>22–25</bold>).</p><p>
<bold>General procedure II</bold> for sp<sup>2</sup>‐sp<sup>2</sup> Suzuki Miyaura coupling (<bold>10a</bold>–<bold>c, 11a</bold>–<bold>c</bold>):<xref rid="ejoc201900059-bib-0010" ref-type="ref">10</xref> Cs<sub>2</sub>CO<sub>3</sub> (3 equiv.), PdCl<sub>2</sub>(dppf) (5 mol‐%) and the trifluoroborate salt (1.6 equiv.) were added in a flask which was evacuated and backfilled thrice with Ar. Bromo‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol (<bold>6</bold>)/(<bold>7</bold>) (1 equiv.) was added in dry MeOH (0.1M) and the reaction was stirred at 65 °C. After 16 h the mixture was cooled to r.t. and diluted with Et<sub>2</sub>O. The mixture was filtered through Celite, dried with MgSO<sub>4</sub>, concentrated in vacuo and purified through silica gel column chromatography or preparative HPLC to afford the product (<bold>10a</bold>–<bold>c, 11a</bold>–<bold>c</bold>).</p><p>
<bold>General procedure III</bold> for sp<sup>2</sup>‐sp<sup>3</sup> Suzuki Miyaura coupling (<bold>12a</bold>–<bold>12b, 13a</bold>–<bold>13b</bold>):<xref rid="ejoc201900059-bib-0020" ref-type="ref">20</xref> Bromo‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol (<bold>6</bold>)/(<bold>7</bold>) (1 equiv.) was dissolved in toluene (0.2M) and Pd(OAc)<sub>2</sub> (10 mol‐%), RuPhos (20 mol‐%), alkyl trifluoroborate salt (1.5 equiv.) and aqueous sodium hydroxide (3M, 3 equiv.) were added. The reaction mixture was stirred at 120 °C and followed with TLC until full conversion (± 64 h) after which it was diluted with aqueous hydrochloric acid (1M) and DCM. The mixture was extracted with DCM and the combined organic layers were filtered through Celite, dried with MgSO<sub>4</sub>, concentrated in vacuo and purified through silica gel column chromatography or preparative HPLC to afford the product (<bold>12a</bold>, <bold>12b, 13a</bold>, <bold>13b</bold>).</p><p>
<bold>3. Experimental details and analysis</bold>
</p><p>
<bold>5‐Propylbenzene‐1,3‐diol</bold> (<bold>1c</bold>):<xref rid="ejoc201900059-bib-0023" ref-type="ref">23</xref> 1‐Bromo‐3,5‐dimethoxybenzene (400 mg, 1.84 mmol) was dissolved in dry toluene. <italic toggle="yes">n</italic>‐Propylboronic acid (<bold>21</bold>) (243 mg, 2.76 mmol), PdCl<sub>2</sub>(dppf) (5 mol‐%) and potassium phosphate (1.17 g, 5.53 mmol) were added and the flask was evacuated and backfilled with argon thrice. The reaction was stirred at 110 °C for 16 h. The mixture was cooled to r.t. and diluted with Et<sub>2</sub>O after which it was filtered through Celite, dried with MgSO<sub>4</sub> and concentrated in vacuo, the crude 1,3‐dimethoxy‐5‐propylbenzene was directly used in the next step. The product was dissolved in dry DCM (20 mL) and kept under protective atmosphere. The solution was cooled to 0 °C and boron tribromide (455 µL, 4.79 mmol) was carefully added dropwise. The reaction was left stirring for 16 h and warmed‐up to r.t. The reaction was cooled to 0 °C before saturated aqueous NaHCO<sub>3</sub> (15 mL) was added. After no more gas evolution was observed NaOH (3M, 5 mL) was added. The mixture was extracted with DCM (2 × 50 mL) and EtOAc (2 × 50 mL) and the resulting aqueous phase was acidified with HCl (1M) until pH 2. The aqueous layer was washed again with DCM (2 × 50 mL) and EtOAc (2 × 50 mL). The combined organic layers were dried with MgSO<sub>4</sub>, concentrated in vacuo and purified by silica gel column chromatography (0→30 % EtOAc in <italic toggle="yes">n</italic>‐heptane) to afford <bold>14</bold> (168 mg, 60 % over two steps) as a green oil. TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 3:7 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.28. <sup>1</sup>H‐NMR (400 MHz, CDCl<sub>3</sub>) δ 6.25 (d, <italic toggle="yes">J</italic> = 2.2 Hz, 2H), 6.18 (t, <italic toggle="yes">J</italic> = 2.3 Hz, 1H), 4.93 (s, 2H), 2.50–2.41 (m, 2H), 1.66–1.54 (m, 2H), 0.92 (t, <italic toggle="yes">J</italic> = 7.3 Hz, 3H). <sup>13</sup>C NMR (100 MHz, CDCl<sub>3</sub>) δ 156.66, 146.06, 108.28, 100.34, 38.02, 24.26, 13.93. HRMS (<italic toggle="yes">m/z</italic>): [M + H]<sup>+</sup> calcd. for C<sub>9</sub>H<sub>12</sub>O<sub>2</sub>: 152.08373, found 152.08270.</p><p>
<bold>4′‐Hydroxyl‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>3</bold>): Benzene‐1,3,5‐triol (<bold>1b</bold>, 9.94 g, 78.8 mmol) was dissolved in dry Et<sub>2</sub>O (200 mL) and stirred vigorously. (<italic toggle="yes">S</italic>)‐<italic toggle="yes">cis</italic>‐verbenol (4.00 g, 26.3 mmol) was added and the reaction was stirred at r.t. Trifluoromethanesulfonic acid (581 µL, 6.60 mmol) was added dropwise at –10 °C and the reaction was left stirring for 4 h. To stop the reaction saturated aqueous NH<sub>4</sub>Cl (100 mL) was added and the mixture was extracted with Et<sub>2</sub>O (2 × 100 mL). The combined organic layers were dried with MgSO<sub>4</sub>, concentrated in vacuo and purified by silica gel column chromatography (0→50 % EtOAc in <italic toggle="yes">n</italic>‐heptane) to give <bold>3</bold> (3.61 g, 53 %) as a yellow solidified oil. TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:1 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.60. <sup>1</sup>H NMR (400 MHz, CDCl<sub>3</sub>) δ 5.94–5.93 (m, 1H), 5.86 (d, <italic toggle="yes">J</italic> = 2.4 Hz, 1H), 5.41 (d, <italic toggle="yes">J</italic> = 4.8 Hz, 1H), 5.17 (bs, 2H), 3.14 (dd, <italic toggle="yes">J</italic> = 15.3, 4.0 Hz, 1H), 2.64 (td, <italic toggle="yes">J</italic> = 10.9, 4.7 Hz, 1H), 2.18–2.09 (m, 1H), 1.86–1.74 (m, 3H), 1.69 (s, 3H), 1.36 (s, 3H), 1.09 (s, 3H). <sup>13</sup>C NMR (100 MHz, CDCl<sub>3</sub>) δ 156.04, 155.82, 154.98, 134.85, 119.41, 106.45, 97.30, 96.05, 77.36, 45.01, 36.33, 31.45, 27.98, 27.60, 23.62, 18.62. HRMS (<italic toggle="yes">m/z</italic>): [M + H]<sup>+</sup> calcd. for C<sub>16</sub>H<sub>20</sub>O<sub>3</sub>: 261.14907, found 261.14737.</p><p>
<bold>4′‐Triflate‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>4</bold>): 4′‐Hydroxyl‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol (<bold>3</bold>, 100 mg, 384 µmol) was dissolved in dry DCM (4 mL) and stirred at 0 °C before 2,6‐dimethylpyridine (36 µL, 311 µmol) was added. Trifluoromethanesulfonic anhydride (52 µL, 311 µmol) was added over a course of 10 min. After 14 h the reaction was diluted with DCM (10 mL) and washed with water (4 mL), HCl (1M, 4 mL), saturated aqueous NaHCO<sub>3</sub> (3 mL) and brine (3 mL). The organic layer was dried with MgSO<sub>4</sub>, concentrated in vacuo and purified by silica gel column chromatography (0→25 % EtOAc in <italic toggle="yes">n</italic>‐heptane) to afford <bold>4</bold> (58.9 mg, 56 %, based on recovery of SM) as a yellow oil. TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:1 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.79. <sup>1</sup>H NMR (400 MHz, CDCl<sub>3</sub>) δ 6.37 (d, <italic toggle="yes">J</italic> = 2.5 Hz, 1H), 6.23 (d, <italic toggle="yes">J</italic> = 2.5 Hz, 1H), 5.47–5.41 (m, 1H), 5.21 (s, 1H), 3.20–3.10 (m, 1H), 2.70 (td, <italic toggle="yes">J</italic> = 11.0, 4.8 Hz, 1H), 2.20–2.10 (m, 1H), 1.89–1.76 (m, 3H), 1.71 (s, 3H), 1.39 (s, 3H), 1.10 (s, 3H). <sup>13</sup>C NMR (100 MHz, CDCl<sub>3</sub>) δ 156.15, 155.84, 148.26, 134.54, 119.43, 113.81, 103.63, 100.81, 78.02, 44.64, 35.68, 31.67, 27.89, 27.49, 23.56, 18.64. <sup>19</sup>F NMR (377 MHz, CDCl<sub>3</sub>) δ –72.93. HRMS (<italic toggle="yes">m/z</italic>): [M + H]<sup>+</sup> calcd. for C<sub>17</sub>H<sub>19</sub>F<sub>3</sub>O<sub>5</sub>S: 393.09835, found 393.10073.</p><p>
<bold>5‐Bromobenzene‐1,3‐diol</bold> (<bold>5</bold>):<xref rid="ejoc201900059-bib-0024" ref-type="ref">24</xref> 1‐Bromo‐3,5‐dimethoxybenzene (5.00 g, 23.0 mmol) was dissolved in dry DCM (100 mL) and kept under protective atmosphere. The solution was cooled to 0 °C and boron tribromide (7.62 mL, 80.62 mmol) was added carefully dropwise. The reaction was left stirring for 16 h and warmed to r.t. The reaction was cooled to 0 °C before saturated aqueous NaHCO<sub>3</sub> (70 mL) was added. After no more gas evolution was observed NaOH (1M, 5 mL) was added. The mixture was extracted with DCM (2 × 100 mL) and EtOAc (2 × 100 mL) and the resulting aqueous phase was acidified with HCl (1M) until pH 2. The aqueous layer was extracted again with DCM (3 × 100 mL) and EtOAc (3 × 100 mL). The combined organic layers were dried with MgSO<sub>4</sub>, concentrated in vacuo and purified through silica gel column chromatography (0→30 % EtOAc in <italic toggle="yes">n</italic>‐heptane) to afford <bold>5</bold> (4.35 g, 100 %) as a brown solid. TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 3:7 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.20. <sup>1</sup>H‐NMR (400 MHz, CDCl<sub>3</sub>) δ 6.59 (d, <italic toggle="yes">J</italic> = 2.2 Hz, 2H), 6.28 (t, <italic toggle="yes">J</italic> = 2.2 Hz, 1H), 5.15 (s, 2H). <sup>13</sup>C NMR (100 MHz, CDCl<sub>3</sub>) δ 157.76, 122.97, 111.56, 102.21. m.p. 86.9 °C.</p><p>
<bold>2′‐Bromo‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>6</bold>): 5‐Bromobenzene‐1,3‐diol (<bold>5</bold>, 1.35 g, 7.14 mmol) was dissolved in dry DCM (100 mL) and stirred vigorously. (<italic toggle="yes">S</italic>)‐<italic toggle="yes">cis</italic>‐verbenol (1.09 g, 7.14 mmol) was added and the reaction was stirred at r.t. Trifluoromethanesulfonic acid (284 µL, 3.21 mmol) was added dropwise at 0 °C and the reaction was left stirring for 20 h. To stop the reaction saturated aqueous NaHCO<sub>3</sub> (50 mL) was added and the mixture was extracted with DCM (2 × 100 mL). The combined organic layers were dried with MgSO<sub>4</sub>, concentrated in vacuo and purified through silica gel column chromatography (0→4 % EtOAc in <italic toggle="yes">n</italic>‐heptane) to afford <bold>6</bold> (1.32 g, 57 %) as a yellow oil and <bold>7</bold> as a minor product (199 mg, 9 %). TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:9 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.23. <sup>1</sup>H NMR (400 MHz, CDCl<sub>3</sub>) δ 6.68 (d, <italic toggle="yes">J</italic> = 2.6 Hz, 1H), 6.28 (d, <italic toggle="yes">J</italic> = 2.6 Hz, 1H), 5.46–5.41 (m, 1H), 5.05 (s, 1H), 3.41 (dd, <italic toggle="yes">J</italic> = 16.4, 3.4 Hz, 1H), 2.64 (td, <italic toggle="yes">J</italic> = 10.5, 4.3 Hz, 1H), 2.18–2.11 (m, 1H), 1.86 (m, 3H), 1.71 (s, 3H), 1.37 (s, 3H), 1.07 (s, 3H). <sup>13</sup>C NMR (100 MHz, CDCl<sub>3</sub>) δ 155.81, 155.01, 134.84, 123.71, 119.64, 118.78, 113.64, 104.40, 77.51, 46.55, 36.80, 35.15, 28.41, 27.41, 23.56, 18.29. HRMS (<italic toggle="yes">m/z</italic>): [M + H]<sup>+</sup> calcd. for C<sub>16</sub>H<sub>19</sub>BrO<sub>2</sub>: 323.06467, found 323.06511. <bold>4′‐Bromo‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>7</bold>): TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:9 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.35. <sup>1</sup>H NMR (400 MHz, CDCl<sub>3</sub>) δ 6.61 (d, <italic toggle="yes">J</italic> = 1.9 Hz, 1H), 6.43 (d, <italic toggle="yes">J</italic> = 1.9 Hz, 1H), 5.46–5.40 (m, 1H), 5.24 (s, 1H), 3.16 (dd, <italic toggle="yes">J</italic> = 15.7, 4.4 Hz, 1H), 2.66 (td, <italic toggle="yes">J</italic> = 11.1, 4.8 Hz, 1H), 2.19–2.09 (m, 1H), 1.84–1.74 (m, 3H), 1.70 (s, 3H), 1.38 (s, 3H), 1.09 (s, 3H). <sup>13</sup>C NMR (100 MHz, CDCl<sub>3</sub>) δ 155.94, 155.79, 134.67, 119.77, 119.43, 113.82, 112.74, 110.84, 77.62, 44.81, 35.81, 31.70, 27.93, 27.53, 23.58, 18.58. HRMS (<italic toggle="yes">m/z</italic>): [M + H]<sup>+</sup> calcd. for C<sub>16</sub>H<sub>19</sub>BrO<sub>2</sub>: 323.06467, found 323.06620.</p><p>
<bold>5‐Chlorobenzene1,3‐diol</bold> (<bold>8</bold>): 1‐Chloro‐3,5‐dimethoxybenzene (1.01 g, 5.85 mmol) was dissolved in ACN (12 mL) and kept under protective atmosphere. Iodotrimethylsilane (4.78 mL, 35.11 mmol) was added and the solution was heated to 70 °C. The reaction was left stirring overnight at reflux. The mixture was cooled to r.t. and concentrated in vacuo. The residue was dissolved in 1M aqueous HCl (10 mL) and DCM (15 mL), after which the aqueous layer was extracted with DCM (2 × 15 mL). The combined organic layers were dried with Na<sub>2</sub>SO<sub>4</sub>, concentrated in vacuo and purified using silica gel column chromatography (0→20 % EtOAc in <italic toggle="yes">n</italic>‐heptane) to afford <bold>8</bold> (222 mg, 26 %) as a yellow solidified oil. TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:4 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.20 <sup>1</sup>H‐NMR (500 MHz, CDCl<sub>3</sub>) δ 6.44 (d, <italic toggle="yes">J</italic> = 2.2 Hz, 2H), 6.24 (s, 1H), 5.01 (s, 2H); <sup>13</sup>C NMR (126 MHz, CDCl<sub>3</sub>) δ 157.51, 135.23, 108.46, 101.52. m.p. 58.8 °C.</p><p>
<bold>5‐Iodobenzene‐1,3‐diol</bold> (<bold>9</bold>): 3,5‐Dimethoxyiodobenzene (<bold>15</bold>, 0.867 g, 3.28 mmol) was dissolved in ACN (7 mL) and kept under protective atmosphere. Iodotrimethylsilane (2.80 mL, 19.7 mmol) was added and the solution was heated to 70 °C. The reaction was left stirring overnight at reflux. After cooling to r.t. the reaction mixture was concentrated in vacuo and the residue was dissolved in 1 M aqueous HCl (10 mL) and DCM (15 mL). The aqueous layer was extracted with DCM (2 × 15 mL), the combined organic layers were dried with Na<sub>2</sub>SO<sub>4</sub>, concentrated in vacuo and purified with silica gel column chromatography (0→20 % EtOAc in <italic toggle="yes">n</italic>‐heptane) to afford <bold>9</bold> (198 mg, 26 %, based on recovery of SM) as a brown solid. TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:1 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.50; <sup>1</sup>H NMR (400 MHz, CDCl<sub>3</sub>) δ 6.79 (d, <italic toggle="yes">J</italic> = 2.2 Hz, 2H), 6.31 (t, <italic toggle="yes">J</italic> = 2.2 Hz, 1H), 5.22 (s, 2H). <sup>13</sup>C NMR (100 MHz, CDCl<sub>3</sub>) δ 157.42, 117.59, 103.01, 93.80. m.p. 74.1 °C.</p><p>
<bold>2′‐<italic toggle="yes">S</italic>tyrene(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐Tetrahydrocannabinol</bold> (<bold>10a</bold>): Synthesized according to general procedure II from 2′‐bromo‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol (<bold>6</bold>, 88.3 mg, 258 µmol) and potassium (E)‐styryl trifluoroborate (86.6 mg, 412 µmol) which afforded (<bold>10a</bold>, 69.2 mg, 78 %) as a colorless oil. TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:9 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.11. <sup>1</sup>H NMR (500 MHz, CDCl<sub>3</sub>) δ 7.51–7.47 (m, 2H), 7.37 (t, <italic toggle="yes">J</italic> = 7.7 Hz, 2H), 7.29–7.26 (m, 1H), 7.19 (d, <italic toggle="yes">J</italic> = 16.0 Hz, 1H), 6.93 (d, <italic toggle="yes">J</italic> = 16.0 Hz, 1H), 6.66 (d, <italic toggle="yes">J</italic> = 2.6 Hz, 1H), 6.28 (d, <italic toggle="yes">J</italic> = 2.6 Hz, 1H), 5.45 (m, 1H), 4.79 (bs, 1H), 2.83 (td, <italic toggle="yes">J</italic> = 10.8, 4.5 Hz, 1H), 2.71–2.64 (m, 1H), 2.23–2.15 (m, 1H), 1.89–1.80 (m, 2H), 1.62 (s, 3H), 1.40 (s, 3H), 1.14 (s, 3H). <sup>13</sup>C NMR (126 MHz, CDCl<sub>3</sub>) δ 155.14, 154.84, 138.54, 137.62, 134.88, 128.97, 128.90, 128.24, 127.77, 126.65, 119.99, 117.32, 106.33, 103.98, 76.73, 46.01, 39.69, 33.10, 28.42, 27.59, 23.74, 18.38. HRMS (<italic toggle="yes">m/z</italic>): [M + H]<sup>+</sup> calcd. for C<sub>24</sub>H<sub>26</sub>O<sub>2</sub>: 347.20110, found 347.20075.</p><p>
<bold>2′‐Naphthalene(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>10b‐S<italic toggle="yes"><sub>a</sub></italic></bold> and <bold>10b‐R<italic toggle="yes"><sub>a</sub></italic></bold>): Synthesized according to general procedure II from 2′‐bromo‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol (<bold>6</bold>) (150 mg, 464 µmol) and potassium (1‐naphthalene) trifluoroborate (<bold>24</bold>, 174 mg, 743 µmol) and purified using preparative HPLC to afford (<bold>10b</bold>, 28.5 mg, 17 %) as a colorless oil. The product was obtained as an inseparable mixture of two atropisomers <bold>10b‐R<sub>a</sub></bold> and <bold>10b‐S<sub>a</sub></bold> in ratios of 0.64:1.00, respectively. TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:9 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.15. <bold>10b‐<italic toggle="yes">R</italic><sub>a</sub>:</bold>
<sup>1</sup>H NMR (500 MHz, [D<sub>6</sub>]DMSO) δ 7.94 (d, <italic toggle="yes">J</italic> = 8.2 Hz, 1H), 7.81 (d, <italic toggle="yes">J</italic> = 7.9 Hz, 1H), 7.56 (dd, i = 6.8, 1.6 Hz, 1H), 7.56–7.52 (m, 1H), 7.45–7.43 (m, 1H), 7.41–7.39 (m, 1H), 7.32 (dd, <italic toggle="yes">J</italic> = 7.1, 1.2 Hz, 1H), 6.23 (d, <italic toggle="yes">J</italic> = 2.6 Hz, 1H), 6.16 (d, <italic toggle="yes">J</italic> = 2.6 Hz, 1H), 5.18 (d, <italic toggle="yes">J</italic> = 2.7 Hz, 1H), 2.69 (dt, <italic toggle="yes">J</italic> = 11.2, 5.6 Hz, 1H), 2.04 (m, 1H), 1.77–1.67 (m, 1H), 1.58 (dd, <italic toggle="yes">J</italic> = 11.6, 4.4 Hz, 1H), 1.33 (s, 3H), 1.19 (s, 3H), 1.17 (s, 1H), 0.93 (d, <italic toggle="yes">J</italic> = 12.6 Hz, 1H), 0.92–0.86 (bs, 3H). <sup>13</sup>C NMR (126 MHz, [D<sub>6</sub>]DMSO) δ 156.09, 155.36, 140.94, 140.22, 133.93, 133.30, 132.06, 128.49, 127.63, 126.62, 126.36, 126.29, 125.92, 125.85, 119.94, 115.78, 111.97, 103.51, 76.41, 45.15, 36.65, 32.61, 27.75, 27.56, 23.14, 18.86. <bold>10b‐<italic toggle="yes">S</italic><sub>a</sub></bold>: <sup>1</sup>H NMR (500 MHz, [D<sub>6</sub>]DMSO) δ 8.00–7.98 (m, 2H), 7.60 (dd, <italic toggle="yes">J</italic> = 8.3, 7.0 Hz, 1H), 7.51 (d, <italic toggle="yes">J</italic> = 1.5 Hz, 1H), 7.45 (m, 2H), 7.41–7.39 (m, 1H), 6.27 (d, <italic toggle="yes">J</italic> = 2.6 Hz, 1H), 6.25 (d, <italic toggle="yes">J</italic> = 2.6 Hz, 1H), 5.08 (d, <italic toggle="yes">J</italic> = 4.3 Hz, 1H), 2.16 (td, <italic toggle="yes">J</italic> = 10.7, 4.9 Hz, 1H), 1.97–1.93 (m, 1H), 1.55–1.53 (m, 2H), 1.32 (s, 3H), 1.31–1.29 (m, 1H), 1.18 (s, 3H), 1.06 (s, 3H), 0.97–0.90 (m, 1H). <sup>13</sup>C NMR (126 MHz, [D<sub>6</sub>]DMSO) δ 156.85, 154.69, 141.46, 141.14, 133.30, 133.26, 130.55, 128.83, 127.89, 126.93, 126.67, 126.45, 126.09, 125.41, 119.68, 115.84, 111.66, 103.65, 76.35, 45.01, 37.58, 33.44, 27.75, 27.56, 23.31, 18.90. HRMS (<italic toggle="yes">m/z</italic>): [M + H]<sup>+</sup> calcd. for C<sub>26</sub>H<sub>26</sub>O<sub>2</sub>: 371.20110, found 371.20214.</p><p>
<bold>2′‐(4‐Methoxybenzene)‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>10c</bold>): Synthesized according to general procedure I from 2′‐bromo‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol (<bold>6</bold>, 98.0 mg, 68 µmol) and potassium (4‐methoxyphenyl) trifluoroborate (<bold>25</bold>, 104 mg, 485 µmol) to afford <bold>10c</bold> (24.0 mg, 23 %) as a colorless oil. <bold>TLC</bold> (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:9 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.07. <sup>1</sup>H NMR (400 MHz, CDCl<sub>3</sub>) δ 7.25 (d, <italic toggle="yes">J</italic> = 8.7 Hz, 2H), 6.92 (d, <italic toggle="yes">J</italic> = 8.7 Hz, 2H), 6.29 (d, <italic toggle="yes">J</italic> = 0.6 Hz), 5.28 (m, 1H), 4.72 (s, 1H), 3.85 (s, 3H), 2.86 (td, <italic toggle="yes">J</italic> = 10.9, 4.8 Hz, 1H), 2.13–2.06 (m, 1H), 1.76–1.69 (m, 2H), 1.58–1.52 (m, 1H), 1.45–1.40 (m, 1H), 1.38 (s, 3H), 1.35–1.33 (m, 3H), 1.22 (s, 3H). <sup>13</sup>C NMR (126 MHz, CDCl<sub>3</sub>) δ 158.70, 155.14, 154.35, 143.56, 135.50, 134.66, 129.10, 118.93, 116.34, 113.89, 110.62, 102.94, 76.41, 55.37, 45.11, 36.70, 32.68, 27.99, 27.50, 23.29, 18.34. HRMS (<italic toggle="yes">m/z</italic>): [M + H]<sup>+</sup> calcd. for C<sub>23</sub>H<sub>26</sub>O<sub>3</sub>: 351.19602, found 351.19571.</p><p>
<bold>4′‐<italic toggle="yes">S</italic>tyrene‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>11a</bold>): Synthesized according to general procedure II from 4′‐bromo‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol (<bold>7</bold>, 20.0 mg, 62 µmol) and potassium (<italic toggle="yes">E</italic>)‐styryl trifluoroborate (21.0 mg, 99 µmol) to afford <bold>11a</bold> (4.8 mg, 27 %) as a colorless oil. TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:9 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.27. <sup>1</sup>H NMR (500 MHz, CDCl<sub>3</sub>) δ 7.49–7.45 (m, 2H), 7.34 (t, <italic toggle="yes">J</italic> = 7.7 Hz, 2H), 7.24 (m 1H), 7.02 (d, <italic toggle="yes">J</italic> = 16.3 Hz, 1H), 6.92 (d, <italic toggle="yes">J</italic> = 16.3 Hz, 1H), 6.62 (d, <italic toggle="yes">J</italic> = 1.6 Hz, 1H), 6.44 (d, <italic toggle="yes">J</italic> = 1.7 Hz, 1H3′), 5.45–5.43 (m, 1H), 4.81 (s, 1H), 3.21 (dd, <italic toggle="yes">J</italic> = 15.9, 4.5 Hz, 1H), 2.74 (td, <italic toggle="yes">J</italic> = 10.8, 4.7 Hz, 1H), 2.20–2.12 (m, 1H), 1.92–1.78 (m, 3H), 1.72 (s, 3H), 1.40 (s, 3H), 1.13 (s, 3H). <sup>13</sup>C NMR (126 MHz, CDCl<sub>3</sub>) δ 155.48, 155.31, 137.44, 137.04, 134.81, 128.80, 128.77, 128.21, 127.71, 126.64, 119.51, 113.30, 108.77, 105.63, 77.06, 44.99, 36.08, 31.98, 28.03, 27.71, 23.65, 18.68. HRMS (<italic toggle="yes">m/z</italic>): [M + H]<sup>+</sup> calcd. for C<sub>24</sub>H<sub>26</sub>O<sub>2</sub>: 347.20110, found 347.20105.</p><p>
<bold>4′‐Naphthalene‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>11b</bold>): Synthesized according to general procedure II from 4′‐bromo‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol (<bold>7</bold>, 25.0 mg, 77 µmol) and potassium (1‐naphthalene) trifluoroborate (<bold>24</bold>, 29.0 mg, 120 µmol) to afford <bold>11b</bold> (17.1 mg, 60 %) as a colorless oil. TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:9 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.27. <sup>1</sup>H NMR (500 MHz, CDCl<sub>3</sub>) δ 8.04 (d, <italic toggle="yes">J</italic> = 8.4 Hz, 1H), 7.87 (d, <italic toggle="yes">J</italic> = 8.0 Hz, 1H), 7.82 (d, <italic toggle="yes">J</italic> = 8.1 Hz, 1H), 7.51–7.44 (m, 2H), 7.44–7.39 (m, 2H), 6.59 (d, <italic toggle="yes">J</italic> = 1.7 Hz, 1H), 6.41 (d, <italic toggle="yes">J</italic> = 1.7 Hz, 1H), 5.49–5.47 (m, 1H), 4.98 (s, 1H), 3.30 (dd, <italic toggle="yes">J</italic> = 17.2, 4.7 Hz, 1H), 2.83 (td, <italic toggle="yes">J</italic> = 10.8, 4.8 Hz, 1H), 2.24–2.16 (m, 1H), 2.01–1.84 (m, 3H), 1.74 (s, 3H), 1.42 (s, 3H), 1.19 (s, 3H). <sup>13</sup>C NMR (126 MHz, CDCl<sub>3</sub>) δ 155.15, 154.85, 140.27, 139.85, 134.92, 133.90, 131.60, 128.29, 127.65, 126.69, 126.42, 126.01, 125.83, 125.44, 119.52, 112.43, 112.33, 109.44, 77.08, 45.10, 36.13, 31.95, 28.10, 27.75, 23.67, 18.76. HRMS (<italic toggle="yes">m/z</italic>): [M + H]<sup>+</sup> calcd. for C<sub>26</sub>H<sub>26</sub>O<sub>2</sub>: 371.20110, found 371.20176.</p><p>
<bold>4′‐(4‐Methoxybenzene)‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>11c</bold>): Synthesized according to general procedure II from 4′‐bromo‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol (<bold>7</bold>, 100 mg, 309 µmol) and potassium (4‐methoxyphenyl) trifluoroborate (<bold>25</bold>, 106 mg, 495 µmol) to afford <bold>11c</bold> (31.0 mg, 29 %) as a colorless oil. TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:9 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.17. <sup>1</sup>H NMR (500 MHz, CDCl<sub>3</sub>) 7.47 (d, <italic toggle="yes">J</italic> = 8.8 Hz, 2H), 6.93 (d, <italic toggle="yes">J</italic> = 8.8 Hz, 2H), 6.65 (d, <italic toggle="yes">J</italic> = 1.7 Hz, 1H), 6.48 (d, <italic toggle="yes">J</italic> = 1.8 Hz, 1H), 5.45 (d, <italic toggle="yes">J</italic> = 5.4 Hz, 1H), 4.87 (s, 1H), 3.83 (s, 3H), 3.23 (dd, <italic toggle="yes">J</italic> = 16.4, 4.5 Hz, 1H), 2.76 (td, <italic toggle="yes">J</italic> = 10.8, 4.6 Hz, 1H), 2.21–2.09 (m, 1H), 1.89–1.80 (m, 3H), 1.72 (s, 3H), 1.41 (s, 3H), 1.14 (s, 3H). <sup>13</sup>C NMR (126 MHz, CDCl<sub>3</sub>) δ 158.89, 155.55, 155.39, 143.91, 135.73, 134.85, 127.91, 119.51, 114.20, 112.61, 108.76, 105.89, 77.06, 55.46, 45.03, 36.12, 31.81, 28.05, 27.73, 23.65, 18.72. HRMS (<italic toggle="yes">m/z</italic>): [M + H]<sup>+</sup> calcd. for C<sub>23</sub>H<sub>26</sub>O<sub>3</sub>: 351.19602, found 351.19740.</p><p>
<bold><italic toggle="yes">Ortho</italic>‐<italic toggle="yes">n</italic>‐pentyl‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>12a</bold>): Synthesized according to general procedure III from 2′‐bromo‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol (<bold>6</bold>, 77.9 mg, 241 µmol) and potassium <italic toggle="yes">n</italic>‐pentylboron trifluoride (<bold>23</bold>, 64.4 mg, 362 µmol). Silica gel column chromatography (0→8 % EtOAc/<italic toggle="yes">n</italic>‐heptane) afforded <bold>12a</bold> (38.8 mg, 51 %) as an inseparable mixture with <bold>6</bold>. TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:9 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.23. <sup>1</sup>H NMR (500 MHz, CDCl<sub>3</sub>) δ 6.29 (d, <italic toggle="yes">J</italic> = 2.7 Hz, 1H), 6.16 (d, <italic toggle="yes">J</italic> = 2.6 Hz, 1H), 5.47–5.44 (m, 1H), 4.88 (s, 1H), 2.71–2.62 (m, 1H), 2.60–2.55 (m, 3H), 2.21–2.10 (m, 1H), 1.87–1.81 (m, 3H), 1.70 (s, 3H), 1.67–1.57 (m, 2H), 1.36 (s, 3H), 1.35–1.23 (m, 4H), 1.06 (s, 3H), 0.94–0.86 (m, 3H). <sup>13</sup>C NMR (126 MHz, CDCl<sub>3</sub>) δ 154.94, 154.55, 143.99, 134.64, 120.13, 117.21, 109.24, 102.19, 76.35, 46.63, 38.86, 33.53, 33.47, 32.07, 31.07, 28.49, 27.59, 23.61, 22.67, 18.25, 14.22. HRMS (<italic toggle="yes">m/z</italic>): [M + H]<sup>+</sup> calcd. for C<sub>21</sub>H<sub>30</sub>O<sub>2</sub>: 315.23240, found 315.23200.</p><p>
<bold>2′‐<italic toggle="yes">Ortho</italic>‐<italic toggle="yes">n</italic>‐propyl‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>12b</bold>): Synthesized according to general procedure III from 2′‐bromo‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol (<bold>6</bold>, 130 mg, 402 µmol) and potassium <italic toggle="yes">n</italic>‐propylboron trifluoride (<bold>22</bold>, 90.5 mg, 603 µmol). Silica gel column chromatography (0→8 % EtOAc/<italic toggle="yes">n</italic>‐heptane) afforded <bold>12b</bold> (63.9 mg, 56 %) as an inseparable mixture with <bold>6</bold>. TLC (Toluene): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.05. <sup>1</sup>H NMR (500 MHz, CDCl<sub>3</sub>) δ 6.29 (d, <italic toggle="yes">J</italic> = 2.8Hz, 1H), 6.16 (d, <italic toggle="yes">J</italic> = 2.7 Hz, 1H), 5.48–5.43 (m, 1H), 4.97–4.89 (m, 1H), 2.71–2.62 (m, 1H), 2.60 (m, 1H), 2.56 (t, <italic toggle="yes">J</italic> = 7.9 Hz, 2H), 2.18–2.10 (m, 1H), 1.88–1.79 (m, 3H), 1.70 (s, 3H), 1.65–1.59 (m, 2H), 1.36 (s, 3H), 1.06 (s, 3H), 0.96 (t, <italic toggle="yes">J</italic> = 7.3 Hz, 3H). <sup>13</sup>C NMR (126 MHz, CDCl<sub>3</sub>) δ 154.94, 154.56, 143.78, 134.65, 120.15, 117.28, 109.22, 102.24, 76.35, 46.65, 38.88, 35.62, 33.48, 28.50, 27.59, 24.54, 23.64, 18.25, 14.29. HRMS (<italic toggle="yes">m/z</italic>): [M + H]<sup>+</sup> calcd. for C<sub>19</sub>H<sub>26</sub>O<sub>2</sub>: 287.20110, found 287.20130.</p><p>
<bold>(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>13a</bold>):<xref rid="ejoc201900059-bib-0009" ref-type="ref">9</xref> 5‐Pentylbenzene‐1,3‐diol (<bold>1a</bold>, 1.18 g, 6.60 mmol) and (<italic toggle="yes">S</italic>)‐<italic toggle="yes">cis</italic>‐verbenol (1.00 g, 6.60 mmol) were stirred at r.t. in dry DCM (70 mL). Trifluoromethanesulfonic acid (145 µL, 1.64 mmol) was added dropwise at 0 °C and the reaction was left stirring for 2 h. To stop the reaction saturated aqueous NaHCO<sub>3</sub> (70 mL) was added and the mixture was extracted with DCM (2 × 70 mL). The combined organic layers were dried with MgSO<sub>4</sub>, concentrated in vacuo and purified through silica gel column chromatography (0→4 % EtOAc/<italic toggle="yes">n</italic>‐heptane) to afford <bold>1</bold> (691 mg, 33 %) as a yellow oil. TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:9 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.38. <sup>1</sup>H NMR (400 MHz, CDCl<sub>3</sub>) δ 6.29 (d, <italic toggle="yes">J</italic> = 1.5 Hz, 1H), 6.11 (d, <italic toggle="yes">J</italic> = 1.5 Hz, 1H), 5.44 (d, <italic toggle="yes">J</italic> = 4.8 Hz, 1H), 4.93 (s, 1H) 3.22 (dd, <italic toggle="yes">J</italic> = 15.8, 4.2 Hz, 1H), 2.71 (td, <italic toggle="yes">J</italic> = 10.8, 4.6 Hz, 1H), 2.44 (td, <italic toggle="yes">J</italic> = 7.4, 2.0 Hz, 2H), 2.20–2.11 (m, 1H), 1.91–1.76 (m, 3H), 1.71 (s, 3H), 1.62–1.53 (m, 2H), 1.39 (s, 3H), 1.34–1.26 (m, 4H), 1.12 (s, 3H), 0.91–0.87 (m, 3H). <sup>13</sup>C NMR (100 MHz, CDCl<sub>3</sub>) δ 154.93, 154.92, 142.83, 134.89, 119.45, 110.70, 110.20, 107.83, 76.86, 45.05, 36.17, 35.59, 31.74, 31.72, 30.74, 28.04, 27.70, 23.63, 22.69, 18.63, 14.16. HRMS (<italic toggle="yes">m/z</italic>): [M + H]<sup>+</sup> calcd. for C<sub>21</sub>H<sub>30</sub>O<sub>2</sub>: 315.23240, found 315.23343.</p><p>
<bold>(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>13a</bold>): Synthesized according to general procedure III from 4′‐bromo‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol (<bold>7</bold>, 52.1 mg, 161 µmol) and potassium <italic toggle="yes">n</italic>‐pentylboron trifluoride (<bold>23</bold>, 43.0 mg, 242 µmol) to afford <bold>13a</bold> (17.4 mg, 34 %) as a yellow oil. Spectral data were in agreement with previously synthesized <bold>1</bold> and hence no further purification was executed.</p><p>
<bold>4′‐Propyl‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>13b</bold>): 5‐Propylbenzene‐1,3‐diol (<bold>1c</bold>, 150 mg, 986 µmol) and (<italic toggle="yes">S</italic>)‐<italic toggle="yes">cis</italic>‐verbenol (150 g, 986 µmol) were stirred at r.t. in dry DCM (20 mL). Trifluoromethanesulfonic acid (26.2 µL, 296 µmol) was added dropwise at 0 °C and the reaction was left stirring for 3 h. To stop the reaction saturated aqueous NaHCO<sub>3</sub> (20 mL) was added and the mixture was extracted with DCM (2 × 40 mL). The combined organic layers were dried with MgSO<sub>4</sub>, concentrated in vacuo and purified through silica gel column chromatography (0→4 % EtOAc/<italic toggle="yes">n</italic>‐heptane) to afford <bold>2</bold> (55.9 mg, 20 %) as a yellow oil. TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:9 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.29. <sup>1</sup>H NMR (400 MHz, CDCl<sub>3</sub>) δ 6.28 (d, <italic toggle="yes">J</italic> = 1.7 Hz, 1H), 6.10 (d, <italic toggle="yes">J</italic> = 1.6 Hz, 1H), 5.45–5.41 (m, 1H), 4.82 (s, 1H), 3.25–3.15 (m, 1H), 2.71 (td, <italic toggle="yes">J</italic> = 10.8, 4.6 Hz, 1H), 2.42 (td, <italic toggle="yes">J</italic> = 7.4, 2.4 Hz, 2H), 2.19–2.10 (m, 1H), 1.91–1.77 (m, 3H), 1.71 (s, 3H), 1.59 (t, <italic toggle="yes">J</italic> = 7.4 Hz, 2H), 1.38 (s, 3H), 1.11 (s, 3H), 0.92 (t, <italic toggle="yes">J</italic> = 7.3 Hz, 3H). <sup>13</sup>C NMR (100 MHz, CDCl<sub>3</sub>) δ 154.94, 154.89, 142.58, 134.89, 119.46, 110.72, 110.31, 107.85, 76.83, 45.04, 37.71, 36.17, 31.73, 28.04, 27.71, 24.12, 23.63, 18.64, 14.07. HRMS (<italic toggle="yes">m/z</italic>): [M + H]<sup>+</sup> calcd. for C<sub>19</sub>H<sub>26</sub>O<sub>2</sub>: 287.20110, found 287.20004.</p><p>
<bold>Propyl‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>13b</bold>): Synthesized according to general procedure III from 4′‐bromo‐(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol (<bold>7</bold>, 38.2 mg, 118 µmol) and potassium <italic toggle="yes">n</italic>‐propylboron trifluoride (<bold>22</bold>, 26.6 mg, 177 µmol) to afford <bold>13b</bold> (11.3 mg, 33 %) as a yellow oil. Spectral data were in agreement with previously synthesized <bold>2</bold> and hence no further purification was executed.</p><p>
<bold>3,5‐Dimethoxyiodobenzene</bold> (<bold>15</bold>): 1‐Bromo‐3,5‐dimethoxybenzene (1.09 g, 5.00 mmol) was dissolved in THF (2.5 mL) and kept under protective atmosphere. Magnesium turnings (133 mg, 5.50 mmol) were added and the mixture was stirred vigorously. One drop of 1,2‐dibromoethane (±45 mg, 250 µmol) was added, and a reflux condenser was placed on top of the flask. The reaction was then heated to reflux temperature and allowed to stir for 2 h. After this time, the reaction mixture was cooled on ice, and iodine (845 mg, 3.33 mmol) in THF (2.5 mL) was added. The reaction was allowed to stir for 2 h at 0 °C. After this time, 1M aqueous HCl (10 mL) was added slowly and the mixture was extracted with Et<sub>2</sub>O (3 × 10 mL). The combined organic layers were washed with 1M aqueous Na<sub>2</sub>S<sub>2</sub>O<sub>3</sub> (3 × 10 mL), concentrated in vacuo and purified through silica gel column chromatography (0→10 % EtOAc in <italic toggle="yes">n</italic>‐heptane) to afford <bold>15</bold> (1.00 g, 76 %) as a brown solidified oil. TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:9 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.45. <sup>1</sup>H‐NMR (500 MHz, CDCl<sub>3</sub>) δ 6.86 (d, <italic toggle="yes">J</italic> = 2.2 Hz, 2H), 6.40 (t, <italic toggle="yes">J</italic> = 2.2 Hz, 1H), 3.76 (s, 6H). <sup>13</sup>C NMR (100 MHz, CDCl<sub>3</sub>) δ 161.07, 115.81, 100.67, 94.05, 55.49. m.p. 72.4 °C.</p><p>
<bold>Chloro(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>16</bold> and <bold>17</bold>): 5‐Chlorobenzene1,3‐diol (<bold>8</bold>, 107 mg, 740 µmol) was dissolved in dry DCM (5 mL) and stirred vigorously. (<italic toggle="yes">S</italic>)‐<italic toggle="yes">cis</italic>‐verbenol (113 mg, 740 µmol) was added and the reaction was stirred at r.t. Trifluoromethanesulfonic acid (29 µL, 333 µmol) was added dropwise at 0 °C and the reaction was left stirring for 20 h. To stop the reaction saturated aqueous NaHCO<sub>3</sub> (50 mL) was added and the mixture was extracted with DCM (2 × 100 mL). The combined organic layers were dried with MgSO<sub>4</sub>, concentrated in vacuo and purified through silica gel column chromatography (0→4 % EtOAc/<italic toggle="yes">n</italic>‐heptane) to afford <bold>16</bold> (53.3 mg, 26 %) as a yellow oil and <bold>17</bold> as a minor product (13.7 mg, 7 %). <bold>2′‐Chloro(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>16</bold>): TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:5 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.40 <sup>1</sup>H NMR (500 MHz, CDCl<sub>3</sub>) δ 6.40 (d, <italic toggle="yes">J</italic> = 2.6 Hz, 1H), 6.17 (d, <italic toggle="yes">J</italic> = 2.6 Hz, 1H), 5.39 (s, 1H), 5.36 (d, <italic toggle="yes">J</italic> = 4.1 Hz, 1H), 3.22 (dd, <italic toggle="yes">J</italic> = 16.4, 4.4 Hz, 1H), 2.61 (td, <italic toggle="yes">J</italic> = 10.8, 4.5 Hz, 1H), 2.12–2.02 (m, 1H), 1.77–1.73 (m, 2H), 1.71–1.66 (m, 1H), 1.63 (s, 3H), 1.30 (s, 3H), 0.99 (s, 3H); <sup>13</sup>C NMR (126 MHz, CDCl<sub>3</sub>) δ 155.73, 154.79, 134.68, 134.59, 119.43, 116.99, 110.19, 103.59, 77.39, 45.97, 36.32, 33.57, 28.15, 27.33, 23.44, 18.24; HRMS (<italic toggle="yes">m/z</italic>): [M + H]<sup>+</sup> calcd. for C<sub>16</sub>H<sub>19</sub>ClO<sub>2</sub>: 279.11518, found 279.11664. <bold>4′‐Chloro(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>17</bold>): TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:5 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.47. <sup>1</sup>H NMR (500 MHz, CDCl<sub>3</sub>) δ 6.45 (d, <italic toggle="yes">J</italic> = 2.1 Hz, 1H), 6.29 (d, <italic toggle="yes">J</italic> = 2.0 Hz, 1H), 5.43 (d, <italic toggle="yes">J</italic> = 3.7 Hz, 1H), 5.03 (s, 1H), 3.15 (dd, <italic toggle="yes">J</italic> = 15.7, 4.8 Hz, 1H), 2.67 (td, <italic toggle="yes">J</italic> = 11.0, 4.8 Hz, 1H), 2.16–2.10 (m, 1H), 1.85–1.76 (m, 3H), 1.70 (s, 3H), 1.37 (s, 3H), 1.09 (s, 3H); <sup>13</sup>C NMR (126 MHz, CDCl<sub>3</sub>) δ 155.72, 155.47, 134.53, 132.14, 119.31, 112.02, 110.79, 107.80, 77.35, 44.68, 35.77, 31.50, 27.80, 27.42, 23.45, 18.45; HRMS (<italic toggle="yes">m/z</italic>): [M + Na]<sup>+</sup> calcd. for C<sub>16</sub>H<sub>19</sub>O<sub>2</sub>Cl: 278.10736, found 278.10653.</p><p>
<bold>Iodo(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>18</bold> and <bold>19</bold>): 5‐Iodobenzene‐1,3‐diol (<bold>9</bold>, 110 mg, 466 µmol) was dissolved in dry DCM (5 mL) and stirred vigorously. (<italic toggle="yes">S</italic>)‐<italic toggle="yes">cis</italic>‐verbenol (71.0 mg, 466 µmol) was added and the reaction was stirred at r.t. Trifluoromethanesulfonic acid (18.6 µL, 210 µmol) was added dropwise at 0 °C and the reaction was left stirring for 20 h. To stop the reaction saturated aqueous NaHCO<sub>3</sub> (50 mL) was added and the mixture was extracted with DCM (2 × 100 mL). The combined organic layers were dried with MgSO<sub>4</sub>, concentrated in vacuo and purified through silica gel column chromatography (0→4 % EtOAc/<italic toggle="yes">n</italic>‐heptane) to afford <bold>18</bold> (43.7 mg, 25 %) as a yellow oil and <bold>19</bold> as a minor product (11.1 mg, 6 %). <bold>2′‐Iodo(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>18</bold>): TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:1 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.35. <sup>1</sup>H NMR (500 MHz, CDCl<sub>3</sub>) δ 7.00 (d, <italic toggle="yes">J</italic> = 2.6 Hz, 1H), 6.31 (d, <italic toggle="yes">J</italic> = 2.6 Hz, 1H), 5.44 (d, <italic toggle="yes">J</italic> = 3.7 Hz, 1H), 5.25 (s, 1H), 3.48 (dd, <italic toggle="yes">J</italic> = 17.2, 3.6 Hz, 1H), 2.52 (td, <italic toggle="yes">J</italic> = 10.7, 4.3 Hz, 1H), 2.19–2.13 (m, 1H), 1.93–1.82 (m, 2H), 1.72 (s, 3H), 1.69–1.66 (m, 1H), 1.36 (s, 3H), 1.05 (s, 3H); <sup>13</sup>C NMR (126 MHz, CDCl<sub>3</sub>) δ 155.09, 154.57, 134.64, 121.41, 120.46, 119.70, 105.30, 96.81, 77.28, 46.96, 37.45, 37.19, 28.40, 27.22, 23.41, 18.09. HRMS (<italic toggle="yes">m/z</italic>): [M + H]<sup>+</sup> calcd. for C<sub>16</sub>H<sub>19</sub>IO<sub>2</sub>: 371.05080, found 371.05235. <bold>4′‐Iodo(–)‐<italic toggle="yes">trans</italic>‐Δ<sup>8</sup>‐tetrahydrocannabinol</bold> (<bold>19</bold>): TLC (EtOAc/<italic toggle="yes">n</italic>‐heptane, 1:1 v/v): <italic toggle="yes">R</italic>
<sub>f</sub> = 0.44. <sup>1</sup>H NMR (500 MHz, CDCl<sub>3</sub>) δ 6.80 (d, <italic toggle="yes">J</italic> = 1.7 Hz, 1H), 6.62 (d, <italic toggle="yes">J</italic> = 1.7 Hz, 1H), 5.42 (d, <italic toggle="yes">J</italic> = 4.0 Hz, 1H), 4.93 (s, 1H), 3.15 (dd, <italic toggle="yes">J</italic> = 15.3, 4.4 Hz, 1H), 2.66 (td, <italic toggle="yes">J</italic> = 11.0, 4.7 Hz, 1H), 2.16–2.10 (m, 1H), 1.83–1.73 (m, 3H), 1.69 (s, 3H), 1.36 (s, 3H), 1.08 (s, 3H); <sup>13</sup>C NMR (126 MHz, CDCl<sub>3</sub>) δ 155.80, 155.53, 134.53, 119.80, 119.30, 116.35, 113.37, 90.32, 77.31, 44.65, 35.66, 31.61, 27.80, 27.43, 23.45, 18.47; HRMS (<italic toggle="yes">m/z</italic>): [M + Na]<sup>+</sup> calcd. for C<sub>16</sub>H<sub>19</sub>O<sub>2</sub>I: 370.04297, found 370.04265.</p><p>
<bold><italic toggle="yes">n</italic>‐Propylboronic acid</bold> (<bold>20</bold>): 1‐Bromopropane (2.15 mL, 23.6 mmol) and dry THF (12 mL) were combined and cooled to 0 °C. Magnesium turnings (631 mg, 25.9 mmol) and one drop of 1,2‐dibromoethane were added. After 15 min the cooling bath was removed and the reaction was refluxed for 2 h at 75 °C after which it was cooled to r.t. Trimethylborate (2.89 mL, 25.9 mmol) was dissolved in Et<sub>2</sub>O (100 mL), stirred vigorously and cooled to –78 °C. Freshly prepared propylmagnesium bromide was added dropwise to the mixture. The reaction was left stirring for 2 h at –78 °C after it was warmed up to r.t. 10 % aqueous HCl (80 mL) was added slowly and the biphasic reaction mixture was left stirring for 15 min. The layers were separated and the aqueous layer was washed with Et<sub>2</sub>O (2 × 80 mL). The combined organic layers were dried with MgSO<sub>4</sub>, concentrated in vacuo and the crude product was recrystallized by dissolving in hot water (20 mL) and cooling to 0 °C. The product was isolated by filtration and the flask and filter were rinsed with <italic toggle="yes">n</italic>‐heptane (4 mL). The filtered solid was dried under high vacuum to afford <bold>20</bold> (539 mg, 26 % over two steps) as white crystals. <sup>1</sup>H NMR (400 MHz, (CD<sub>3</sub>)<sub>2</sub>SO) δ 7.33 (s, 2H), 1.39–1.28 (m, 3H), 0.85 (t, <italic toggle="yes">J</italic> = 7.3 Hz, 2H), 0.57 (t, <italic toggle="yes">J</italic> = 7.7 Hz, 3H). <sup>13</sup>C NMR (100 MHz, CDCl<sub>3</sub>) δ 17.54, 17.09 (CH<sub>2</sub> next to B not visible; quadrupolar relaxation). <sup>11</sup>B NMR (128 MHz, CDCl<sub>3</sub>) δ 32.18 (s). m.p. 101.1 °C.</p><p>
<bold><italic toggle="yes">n</italic>‐Pentylboronic acid</bold> (<bold>21</bold>): Trimethylborate (1.1 mL, 10.0 mmol) was dissolved in Et<sub>2</sub>O (60 mL), stirred vigorously and cooled to –78 °C. Pentylmagnesium bromide (7.69 mL, 10.0 mmol, 1.3M in THF) was added dropwise. The reaction was left stirring for 2 h at –78 °C after it was warmed up to r.t. 10 % aqueous HCl (40 mL) was added slowly and the biphasic reaction mixture was left stirring for 15 min. The layers were separated and the aqueous layer was washed with Et<sub>2</sub>O (2 × 40 mL). The combined organic layers were dried with MgSO<sub>4</sub>, concentrated in vacuo and the crude product was recrystallized by dissolving in hot water (10 mL) and cooling to 0 °C. The product was isolated by filtration and the flask and filter were rinsed with <italic toggle="yes">n</italic>‐heptane (2 mL). The filtered solid was dried under high vacuum to afford <bold>21</bold> (774 mg, 67 %) as white crystals. <sup>1</sup>H NMR (400 MHz, CDCl<sub>3</sub>) δ 1.49–1.36 (m, 2H), 1.34–1.27 (m, 4H), 0.95–0.84 (m, 4H), 0.84–0.75 (m, 1H). <sup>13</sup>C NMR (100 MHz, CDCl<sub>3</sub>) δ 34.68, 28.20, 23.47, 22.65, 14.15. <sup>11</sup>B NMR (128 MHz, CDCl<sub>3</sub>) δ 33.32 (s). m.p. 88.2 °C.</p><p>
<bold>Potassium <italic toggle="yes">n</italic>‐propylboron trifluoride</bold> (<bold>22</bold>): Synthesized according to general procedure I from <italic toggle="yes">n</italic>‐propylboronic acid (<bold>20</bold>, 200 mg, 2.28 mmol), potassium fluoride (529 mg, 9.10 mmol) and 2,3‐dihydroxysuccinic acid (700 mg, 4.66 mmol) to afford <bold>22</bold> (257 mg, 75 %) as white crystals. <sup>1</sup>H NMR (400 MHz, (CD<sub>3</sub>)<sub>2</sub>SO) δ 1.22–1.06 (m, 2H), 0.83–0.76 (m, 3H), –0.01 to –0.10 (m, 2H). <sup>13</sup>C NMR (100 MHz, (CD<sub>3</sub>)<sub>2</sub>SO) δ 18.74, 18.23 (CH<sub>2</sub> next to B not visible; quadrupolar relaxation). <sup>11</sup>B NMR (128 MHz, (CD<sub>3</sub>)<sub>2</sub>SO) δ 4.76 (d,<italic toggle="yes"> J</italic> = 64.8 Hz). <sup>19</sup>F NMR (377 MHz (CD<sub>3</sub>)<sub>2</sub>SO) δ –136.49 to –136.98 (m). m.p. 378.9 °C.</p><p>
<bold>Potassium <italic toggle="yes">n</italic>‐pentylboron trifluoride</bold> (<bold>23</bold>): Synthesized according to general procedure I from <italic toggle="yes">n</italic>‐pentylboronic acid (<bold>21</bold>, 600 mg, 5.17 mmol), potassium fluoride (1.20 g, 20.7 mmol) and 2,3‐dihydroxysuccinic acid (1.59 g, 10.6 mmol) to afford <bold>23</bold> (872 mg, 95 %) as white crystals. <sup>1</sup>H NMR (400 MHz, (CD<sub>3</sub>)<sub>2</sub>SO) δ 1.26–1.07 (m, 6H), 0.82 (t, <italic toggle="yes">J</italic> = 7.1 Hz, 3H), –0.03 to –0.14 (m, 2H). <sup>13</sup>C NMR (100 MHz, (CD<sub>3</sub>)<sub>2</sub>SO) δ 35.54, 25.30, 22.44, 14.18 (CH<sub>3</sub>) (CH<sub>2</sub> next to B not visible; quadrupolar relaxation). <sup>11</sup>B NMR (128 MHz, (CD<sub>3</sub>)<sub>2</sub>SO) δ 4.83 (d, <italic toggle="yes">J</italic> = 65.6 Hz). <sup>19</sup>F NMR (377 MHz (CD<sub>3</sub>)<sub>2</sub>SO) δ –136.86 (d, <italic toggle="yes">J</italic> = 74.4 Hz). m.p. 392.2 °C.</p><p>
<bold>Potassium (1‐naphthalene) trifluoroborate</bold> (<bold>24</bold>): Synthesized according to general procedure I from naphthalene‐1‐ylboronic acid (400 mg, 2.33 mmol), potassium fluoride (540 mg, 9.30 mmol) and 2,3‐dihydroxysuccinic acid (716 mg, 4.77 mmol) to afford <bold>24</bold> (525 mg, 97 %) as white crystals. <sup>1</sup>H NMR (400 MHz, (CD<sub>3</sub>)<sub>2</sub>SO) δ 8.39 (d, <italic toggle="yes">J</italic> = 8.8 Hz, 1H), 7.74–7.69 (m, 1H), 7.57 (d, <italic toggle="yes">J</italic> = 8.2 Hz, 1H), 7.55–7.52 (m, 1H), 7.34–7.23 (m, 3H). <sup>13</sup>C NMR (100 MHz, (CD<sub>3</sub>)<sub>2</sub>SO) δ 136.63, 132.99, 130.29, 128.55, 127.38, 125.20, 124.93, 123.90, 123.38 (C next to B not visible; quadrupolar relaxation). <sup>11</sup>B NMR (128 MHz, (CD<sub>3</sub>)<sub>2</sub>SO) δ 3.51 (d, <italic toggle="yes">J</italic> = 56.0 Hz). <sup>19</sup>F NMR (377 MHz (CD<sub>3</sub>)<sub>2</sub>SO) δ –135.27 (d, <italic toggle="yes">J</italic> = 65.0 Hz). m.p. 117.9 °C.</p><p>
<bold>Potassium (4‐methoxyphenyl) trifluoroborate</bold> (<bold>25</bold>): Synthesized according to general procedure I from (4‐methoxyphenyl)boronic acid (400 mg, 2.63 mmol), potassium fluoride (612 mg, 10.5 mmol) and 2,3‐dihydroxysuccinic acid (810 mg, 5.40 mmol) to afford <bold>25</bold> (548 mg, 97 %) as white crystals. <sup>1</sup>H NMR (400 MHz, (CD<sub>3</sub>)<sub>2</sub>SO) δ 7.21 (d, <italic toggle="yes">J</italic> = 8.4 Hz, 2H), 6.66 (d, <italic toggle="yes">J</italic> = 7.7 Hz, 2H), 3.66 (s, 3H, CH<sub>3</sub>). <sup>13</sup>C NMR (100 MHz, (CD<sub>3</sub>)<sub>2</sub>SO) δ 157.20, 132.25, 111.87, 54.55 (C next to B not visible; quadrupolar relaxation). <sup>11</sup>B NMR (128 MHz, (CD<sub>3</sub>)<sub>2</sub>SO) δ 3.44 (m). <sup>19</sup>F NMR (377 MHz (CD<sub>3</sub>)<sub>2</sub>SO) δ –138.19 (m). m.p. 256.9 °C.</p></sec><sec sec-type="supplementary-material"><title>Supporting information</title><supplementary-material content-type="local-data" position="float" orientation="portrait"><caption><p>Supporting Information</p></caption><media xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="EJOC-2019-2289-s001.pdf" position="float" orientation="portrait"><?suppdata-name EJOC-2019-2289-s001.pdf?><?suppdata-size 4527458?><?suppdata-md5 dc6d5a7af120cdc8b8a43e0d52e06ab0?><?suppdata-image-server-status NEVER_LOAD?><?suppdata-mime-type application?><?suppdata-mime-sub-type pdf?><?suppdata-cloudpmc-urn urn:app:1ff5/6686972/dc6d5a7af120/EJOC-2019-2289-s001.pdf?><caption><p>Click here for additional data file.</p></caption></media></supplementary-material></sec></body><back><ack id="ejoc201900059-sec-0050"><title>Acknowledgements</title><p>We kindly acknowledge funding by the H2020‐FETOPEN‐2016‐2017 programme of the European Commission (Grant agreement number: 737266‐ONE FLOW). We also gratefully acknowledge Abbas H. K. Al Temimi for assistance with HPLC purifications.</p></ack><ref-list id="ejoc201900059-bibl-0001"><title>References</title><ref id="ejoc201900059-bib-0001"><label>1</label><mixed-citation publication-type="journal" id="ejoc201900059-cit-0001">
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