<?xml version="1.0" encoding="UTF-8"?><article xml:lang="en" article-type="research-article"><front><journal-meta><journal-id journal-id-type="pmc-domain-id">354</journal-id><journal-id journal-id-type="pmc-domain">plantmeth</journal-id><journal-title-group><journal-title>Plant Methods</journal-title><abbrev-journal-title>Plant Methods</abbrev-journal-title></journal-title-group><publisher><publisher-name>BMC</publisher-name></publisher></journal-meta><article-meta><article-id pub-id-type="pmcid">PMC5437668</article-id><article-id pub-id-type="pmcaid">5437668</article-id><article-id pub-id-type="pmcaiid">5437668</article-id><article-id pub-id-type="pmid">28533812</article-id><article-id pub-id-type="doi">10.1186/s13007-017-0188-0</article-id><title-group><article-title>Visualization of zinc dynamics in intact plants using positron imaging of commercially available <sup>65</sup>Zn</article-title></title-group><contrib-group content-type="author"><contrib><name name-style="western"><surname>Suzui</surname><given-names initials="N">Nobuo</given-names></name><xref ref-type="aff" rid="Aff1">1</xref><xref ref-type="aff" rid="Aff3">3</xref><xref ref-type="author-notes" rid="_fncrsp93pmc__">✉</xref></contrib><contrib><name name-style="western"><surname>Yin</surname><given-names initials="YG">Yong-Gen</given-names></name><xref ref-type="aff" rid="Aff1">1</xref></contrib><contrib><name name-style="western"><surname>Ishii</surname><given-names initials="S">Satomi</given-names></name><xref ref-type="aff" rid="Aff1">1</xref></contrib><contrib><name name-style="western"><surname>Sekimoto</surname><given-names initials="H">Hitoshi</given-names></name><xref ref-type="aff" rid="Aff2">2</xref></contrib><contrib><name name-style="western"><surname>Kawachi</surname><given-names initials="N">Naoki</given-names></name><xref ref-type="aff" rid="Aff1">1</xref></contrib></contrib-group><aff id="Aff1"><label>1</label>Takasaki Advanced Radiation Research Institute, National Institutes for Quantum and Radiological Science and Technology, Takasaki, Japan </aff><aff id="Aff2"><label>2</label>Faculty of Agriculture, Utsunomiya University, Utsunomiya, Japan </aff><aff id="Aff3"><label>3</label>Takasaki Advanced Radiation Research Institute, National Institutes for Quantum and Radiological Science and Technology, 1233 Watanuki, Takasaki, Gunma 370-1292 Japan </aff><author-notes><fn id="_fncrsp93pmc__"><label>✉</label><p>Corresponding author.</p></fn></author-notes><pub-date><day>18</day><month>5</month><year>2017</year></pub-date><volume>13</volume><fpage>40</fpage><page-range>40</page-range><pub-history><event event-type="pmc-release"><date><day>22</day><month>5</month><year>2017</year></date></event></pub-history><permissions><copyright-statement>© The Author(s) 2017</copyright-statement><license><license-p>
<bold>Open Access</bold>This article is distributed under the terms of the Creative Commons Attribution 4.0 International License (<ext-link xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="http://creativecommons.org/licenses/by/4.0/" ext-link-type="uri">http://creativecommons.org/licenses/by/4.0/</ext-link>), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (<ext-link xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="http://creativecommons.org/publicdomain/zero/1.0/" ext-link-type="uri">http://creativecommons.org/publicdomain/zero/1.0/</ext-link>) applies to the data made available in this article, unless otherwise stated.</license-p></license></permissions><self-uri xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="13007_2017_Article_188.pdf" content-type="pmc-pdf"><?cloudpmc-path 5e11/5437668/bc20270f27e8/13007_2017_Article_188.pdf?><?cloudpmc-bucket app?><?size 2304178?></self-uri><abstract id="Abs1"><title>Abstract</title><sec id="sec1" disp-level="2"><title>Background</title><p>Positron imaging can be used to non-destructively visualize the dynamics of a positron-emitting radionuclide in vivo, and is therefore a tool for understanding the mechanisms of nutrient transport in intact plants. The transport of zinc, which is one of the most important nutrient elements for plants, has so far been visualized by positron imaging using <sup>62</sup>Zn (half-life: 9.2 h), which is manufactured in the limited number of facilities that have a cyclotron. In contrast, the positron-emitting radionuclide <sup>65</sup>Zn (half-life: 244 days) is commercially available worldwide. In this study, we examined the possibility of conducting positron imaging of zinc in intact plants using <sup>65</sup>Zn.</p></sec><sec id="sec2" disp-level="2"><title>Results</title><p>By administering <sup>65</sup>Zn and imaging over a long time, clear serial images of <sup>65</sup>Zn distributions from the root to the panicle of dwarf rice plants were successfully obtained.</p></sec><sec id="sec3" disp-level="2"><title>Conclusions</title><p>Non-destructive visualization of zinc dynamics in plants was achieved using commercially available <sup>65</sup>Zn and a positron imaging system, demonstrating that zinc dynamics can be visualized even in facilities without a cyclotron.</p></sec><sec id="kwd-group1" xml:lang="en" sec-type="kwd-group" disp-level="2"><p><bold>Keywords:</bold> Plant nutrition, Zinc, Radionuclide, Non-destructive imaging, Positron imaging</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 2017 Feb 8; Accepted 2017 May 4; Collection date 2017.</p></sec></notes></front><body><sec id="Sec1" disp-level="1"><title>Background</title><p>Positron imaging is widely used to non-destructively visualize the dynamics of positron-emitting radionuclides in vivo. The most common use of positron imaging is cancer screening by positron emission tomography (PET), which exploits the tendency of fluorodeoxyglucose labeled with the positron-emitting radionuclide <sup>18</sup>F to accumulate in cancer cells. In addition, PET has been used in medical research to analyze the kinetics of drugs labeled with <sup>11</sup>C, <sup>13</sup>N, and <sup>15</sup>O. Meanwhile, in recent years, positron imaging has been used to study plants in research facilities around the world [<xref rid="CR1" ref-type="bibr">1</xref>–<xref rid="CR8" ref-type="bibr">8</xref>]. A recent review article emphasized the advantages of positron imaging for understanding the function of the xylem and phloem [<xref rid="CR9" ref-type="bibr">9</xref>].</p><p>Because the major and minor essential elements for plants have a number of positron-emitting radionuclides, positron imaging is a potentially useful tool for understanding the mechanisms of nutrient transport in plants. The radionuclides typically used for positron imaging of plants are limited to <sup>11</sup>C, <sup>13</sup>N, <sup>15</sup>O, and <sup>18</sup>F, which are processed using well-established purification methods developed for medical research [<xref rid="CR3" ref-type="bibr">3</xref>, <xref rid="CR9" ref-type="bibr">9</xref>]. We have previously studied positron imaging of minor essential and toxic elements, such as <sup>64</sup>Cu (half-life: 12.7 h) [<xref rid="CR10" ref-type="bibr">10</xref>] and <sup>107</sup>Cd (half-life: 6.5 h) [<xref rid="CR11" ref-type="bibr">11</xref>–<xref rid="CR16" ref-type="bibr">16</xref>], using the positron-emitting tracer imaging system (PETIS), a two-dimensional positron imaging system (special resolution: approximately 2 mm). However, this approach involves difficulties in purifying the positron-emitting metal radionuclides in other research facilities. Furthermore, most of these positron-emitting nuclides have short half-lives and are therefore not commercially available. Thus, the implementation of positron imaging for plant research is limited to research facilities with a cyclotron, where positron-emitting radionuclides can be produced through nuclear reactions using an accelerated ion beam.</p><p>Zinc is one of the essential elements for all living organisms, including higher plants. Zinc deficiency in crops is one of the most serious problems in food production worldwide [<xref rid="CR17" ref-type="bibr">17</xref>]. Therefore, it is important to understand how plants regulate zinc transport. In the efforts to elucidate the mechanism of zinc transport, positron imaging of zinc dynamics has been a powerful tool. The positron-emitting radionuclide <sup>62</sup>Zn (half-life: 9.2 h) has been used to study the dynamics of zinc in intact plants [<xref rid="CR18" ref-type="bibr">18</xref>, <xref rid="CR19" ref-type="bibr">19</xref>]. <sup>62</sup>Zn decays by electron capture (91.6%) and positron emission (8.4%) and produces the radionuclide <sup>62</sup>Cu (half-life: 9.7 min). Although the positron emission rate of <sup>62</sup>Zn is weak, its daughter <sup>62</sup>Cu decays with a 97.8% rate by positron emission to stable <sup>62</sup>Ni; therefore, a positron imaging system can obtain images of <sup>62</sup>Zn with high efficiency. However, because <sup>62</sup>Cu may migrate differently from <sup>62</sup>Zn in a plant body, there has been the argument that the positron imaging using <sup>62</sup>Zn correctly reflects zinc dynamics in plants. Furthermore, zinc imaging using <sup>62</sup>Zn can only be conducted in facilities with a cyclotron.</p><p>In contrast, <sup>65</sup>Zn (half-life: 244 days) is commercially available, and is therefore frequently used as a zinc tracer in the field of plant science [<xref rid="CR20" ref-type="bibr">20</xref>]. <sup>65</sup>Zn decays with a 98.6% probability by electron capture and 1.4% by positron emission to stable <sup>65</sup>Cu. Because the positron emission rate of <sup>65</sup>Zn is too low, <sup>65</sup>Zn has been considered to be unsuitable for positron imaging; however, there has been no direct verification of this claim. Therefore, in this study, we examined whether <sup>65</sup>Zn can be used to visualize zinc dynamics in an intact plant using a positron imaging system, and to estimate the kinetics of zinc uptake using positron imaging data.</p></sec><sec id="Sec2" disp-level="1"><title>Methods</title><sec id="Sec3" disp-level="2"><title>Plant cultivation</title><p>To visualize zinc dynamics in the whole plant body, dwarf rice plants were cultivated. Seeds of the dwarf rice cultivar <italic>Oryza sativa</italic> L. cv Waito-C were germinated and each plant was grown in a vinyl pot (12 cm in diameter, 10 cm height) filled with artificial soil (Bonsol; Sumitomo Chemical Co., Tokyo, Japan) in a greenhouse (15-h daytime) for 52 days. From 53 to 83 days after seeding, the rice plants were cultivated in a climate chamber under short-day conditions (9-h daytime) with light intensity of approximately 150 μmol m<sup>−2</sup> s<sup>−1</sup> and subsequently (84–103 days after seeding) grown in the greenhouse (15-h daytime). To induce strong dwarfing, the rice plants were flooded with uniconazole P solution at a concentration of 0.1 ppm from 78 to 103 days after seeding. From 104 days after seeding, the rice plants were transferred to the climate chamber and cultivated hydroponically in modified Kimura B solution, which consisted of 0.70 mM (NH<sub>4</sub>)<sub>2</sub>SO<sub>4</sub>, 0.17 mM Na<sub>2</sub>HPO<sub>4</sub>·12H<sub>2</sub>O, 0.27 mM K<sub>2</sub>SO<sub>4</sub>, 0.47 mM MgSO<sub>4</sub>·7H<sub>2</sub>O, 0.37 mM CaCl<sub>2</sub>·2H<sub>2</sub>O, 11 mg L<sup>−1</sup> FeC<sub>6</sub>H<sub>5</sub>O<sub>7</sub>·nH<sub>2</sub>O (Fe citrate), 0.16 µM CuSO<sub>4</sub>·5H<sub>2</sub>O, 0.15 µM ZnSO<sub>4</sub>·7H<sub>2</sub>O, 0.10 µM Na<sub>2</sub>MoO<sub>4</sub>·2H<sub>2</sub>O, 15 µM H<sub>3</sub>BO<sub>3</sub> and 4.6 μM MnSO<sub>4</sub>·5H<sub>2</sub>O. The culture solution was renewed every week, and the pH was adjusted again to 5.5 at 2 or 3 days after solution renewal. Rice plants approximately 4-months old were used in the whole-plant zinc imaging experiment.</p><p>Additionally, typical rice plants (<italic>Oryza sativa</italic> L. cv Nipponbare) were cultivated hydroponically for four weeks in the modified Kimura B solution and used to evaluate uptake kinetics.</p></sec><sec id="Sec4" disp-level="2"><title>Whole-plant imaging experiment</title><p>For whole-plant imaging, the roots of an intact dwarf rice plant were inserted in a 30 mL plastic disposable syringe (Termo Co., Tokyo, Japan), and the shoots were fixed to an acrylic board. The acrylic board, which held two plants at a time, was placed in the field of view of the PETIS (a modified PPIS-4800 positron imaging system; Hamamatsu Photonics, Hamamatsu, Japan) (Fig. <xref rid="Fig1" ref-type="fig">1</xref>a). Each syringe was supplied with 30 mL of 0.5 mM CaCl<sub>2</sub> containing 0.1 µM ZnSO<sub>4</sub> (3 nmol in total) labeled with 444 kBq of <sup>65</sup>Zn (22 pmol), which was purchased from RIKEN (Wako, Japan), and 2 mM 2-(N-morpholino)-ethanesulfonic acid. The movement of <sup>65</sup>Zn in the below-ground parts of the plants, including the roots and the shoot base, was monitored by the PETIS every 10 min for 24 h. Then, the PETIS was moved to the top of the plants and the <sup>65</sup>Zn movement in the above-ground parts was monitored every 10 min for 72 h. In the first 48 h of the imaging experiment (which lasted 96 h in total), the roots were fed with 0.5 mM CaCl<sub>2</sub> containing <sup>65</sup>Zn (the feeding step) and in the last 48 h, they were transferred into Kimura B solution (the chasing step). The solutions were maintained at the same level by supplying 0.5 mM CaCl<sub>2</sub> or Kimura B solution, which does not contain Zn<sup>+</sup> with the siphon method, as described by Fujimaki et al. [<xref rid="CR11" ref-type="bibr">11</xref>]. All imaging experiments were conducted in a growth chamber with continuous light at a density of 400 μmol m<sup>−2</sup> s<sup>−1</sup>.
</p><fig id="Fig1" position="float"><?disp-level 3?><label>Fig. 1</label><caption><p>Serial images of <sup>65</sup>Zn movement in the dwarf rice plants. <bold>a</bold> Photograph of test plants in the experimental apparatus. The <italic>dotted</italic> and <italic>solid rectangles</italic> indicate the field of view of the PETIS during the imaging of the below-ground and the above-ground parts of the plants, respectively. <bold>b</bold> Serial images of the below-ground part (0–24 h). <bold>c</bold> Serial images of the below-ground part (24–96 h).<italic> Each frame</italic> was created from the integration of 18 (<bold>b</bold>) or 54 (<bold>c</bold>) original images collected every 10 min</p></caption><alternatives><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="image" id="MO1" xlink:href="13007_2017_188_Fig1_HTML.jpg"><?cloudpmc-path blobs/5e11/5437668/3241c106147e/13007_2017_188_Fig1_HTML.jpg?><?cloudpmc-bucket cdn?><?image-server-status NEVER_LOAD?><?original-height 277?><?original-width 785?><?scaled-height 277?><?scaled-width 785?></graphic><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="thumb" xlink:href="13007_2017_188_Fig1_HTML.gif"><?cloudpmc-path blobs/5e11/5437668/502de5a639d0/13007_2017_188_Fig1_HTML.gif?><?cloudpmc-bucket cdn?></graphic></alternatives></fig><p>The time course data of the zinc amount (mol) in the regions of interest in the images were calculated by the values of the signal intensity (cps) extracted using the NIH Image J 1.50 software (<ext-link xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="http://rsb.info.nih.gov/ij/" ext-link-type="uri">http://rsb.info.nih.gov/ij/</ext-link>), counting efficiency of the system (cps Bq<sup>−1</sup>) and specific radioactivity (Bq mol<sup>−1</sup>).</p></sec><sec id="Sec5" disp-level="2"><title>Evaluation of uptake kinetics</title><p>To experimentally determine the uptake kinetics of zinc, the roots of six non-dwarf rice plants were inserted in a transparent acrylic root box specialized for direct root imaging [<xref rid="CR12" ref-type="bibr">12</xref>] (Fig. <xref rid="Fig3" ref-type="fig">3</xref>a). Each compartment of the root box was supplied with 14 mL of 0.5 mM CaCl<sub>2</sub> containing different concentrations (0.1, 0.25, 0.5, 1, 2.5 and 5 µM) of ZnSO<sub>4</sub>, labeled with 124 kBq (6 pmol) of <sup>65</sup>Zn and the <sup>65</sup>Zn movement from the solution to the roots was monitored by PETIS for 7 h. The solution was continuously stirred with gentle aeration in order to maintain a uniform composition in each compartment of the root box. The uptake velocities for the various zinc concentrations were calculated every hour using the imaging data acquired from the individual rice plants. The obtained substrate velocity data were fitted with the modified Michaelis–Menten equation according to Claassen and Barber [<xref rid="CR21" ref-type="bibr">21</xref>]:</p><disp-formula id="Equ1"><label>1</label><mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" id="M2" display="block" overflow="scroll"><mml:mrow><mml:mi>I</mml:mi><mml:mtext>n</mml:mtext><mml:mo>=</mml:mo><mml:mfrac><mml:mrow><mml:mi>V</mml:mi><mml:mtext>max</mml:mtext><mml:mo>×</mml:mo><mml:mi>c</mml:mi></mml:mrow><mml:mrow><mml:mi>K</mml:mi><mml:mtext>m</mml:mtext><mml:mo>+</mml:mo><mml:mi>c</mml:mi></mml:mrow></mml:mfrac><mml:mo>-</mml:mo><mml:mi>E</mml:mi></mml:mrow></mml:math></disp-formula><p>where, <italic>I</italic>n<italic>, c and E</italic> are the net uptake velocity, substrate concentration and the efflux velocity, respectively. <italic>V</italic>max, <italic>K</italic>m and <italic>E</italic> value were estimated by least-square regression using the python SciPy library (<ext-link xmlns:xlink="http://www.w3.org/1999/xlink" xlink:href="http://www.scipy.org/" ext-link-type="uri">http://www.scipy.org/</ext-link>).</p><fig id="Fig3" position="float"><?disp-level 3?><label>Fig. 3</label><caption><p>Evaluation of zinc uptake kinetics in non-dwarf rice plants using the <sup>65</sup>Zn imaging data. <bold>a</bold> Photograph of test plants in the acrylic root box. The <italic>dotted rectangle</italic> indicates the field of view of the PETIS. <bold>b</bold> Serial images of <sup>65</sup>Zn uptake by rice plants fed with different initial zinc concentrations (<italic>left</italic> to <italic>right</italic>: 0.1, 0.25, 0.5, 1, 2.5, and 5 µM). The <italic>yellow rectangles</italic> indicate the regions examined for the time course analysis. <bold>c</bold> Time course of the zinc concentration in the solution for the different solutions. <bold>d</bold>
<italic> Scatter plot</italic> of the uptake velocity as a function of zinc concentration. The <italic>symbols</italic> used for each dataset correspond to the initial zinc concentrations as in <bold>c</bold>. The <italic>dotted curve</italic> represents the modified Michaelis–Menten model fit to the results</p></caption><alternatives><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="image" id="MO4" xlink:href="13007_2017_188_Fig3_HTML.jpg"><?cloudpmc-path blobs/5e11/5437668/30bd2cd99149/13007_2017_188_Fig3_HTML.jpg?><?cloudpmc-bucket cdn?><?image-server-status NEVER_LOAD?><?original-height 458?><?original-width 767?><?scaled-height 458?><?scaled-width 767?></graphic><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="thumb" xlink:href="13007_2017_188_Fig3_HTML.gif"><?cloudpmc-path blobs/5e11/5437668/31068d5f9f0c/13007_2017_188_Fig3_HTML.gif?><?cloudpmc-bucket cdn?></graphic></alternatives></fig></sec></sec><sec id="Sec6" disp-level="1"><title>Results</title><p>The tracer solution containing <sup>65</sup>Zn was administered to dwarf rice plants and the dynamics of <sup>65</sup>Zn in intact whole plants was monitored by PETIS (Fig. <xref rid="Fig1" ref-type="fig">1</xref>a). As a result, obvious clear serial images of <sup>65</sup>Zn distributions from the root to the panicle were successfully obtained for 96 h (Fig. <xref rid="Fig1" ref-type="fig">1</xref>b, c). The counting efficiency of PETIS for <sup>65</sup>Zn was 6.68 × 10<sup>−4</sup> cps Bq<sup>−1</sup>, which was sufficient to obtain clear serial images of <sup>65</sup>Zn distributions from the root to the panicle.</p><p>Because the amount of non-radioactive zinc labeled with <sup>65</sup>Zn was calculated by <sup>65</sup>Zn radioactivity, Fig. <xref rid="Fig2" ref-type="fig">2</xref> represents the time course of “newly acquired” zinc. The amount of zinc in the hydroponic solution decreased rapidly for the first 3 h and more slowly after 6 h (Fig. <xref rid="Fig2" ref-type="fig">2</xref>b). In contrast, the amount of newly acquired zinc in the root increased for the first 3 h and then decreased for the remainder of the 24 h (Fig. <xref rid="Fig2" ref-type="fig">2</xref>c). Because the shoot base and the node were in the field of view of PETIS during the entire measurement (Fig. <xref rid="Fig2" ref-type="fig">2</xref>a, e) time course data could be obtained in these regions for 96 h (Fig. <xref rid="Fig2" ref-type="fig">2</xref>d, f). The results show that the amount of newly acquired zinc in the shoot base and the node increased for 48 and 72 h, respectively, and then became plateau (Fig. <xref rid="Fig2" ref-type="fig">2</xref>d, f). Although <sup>65</sup>Zn movement in the panicle was not monitored for the first 24 h, the x-intercept and slope of the linear approximation line fitted to the time course data indicate that zinc was transported from the root and arrived at the panicle 5.3 h after feeding, and monotonically accumulated in the panicle for 96 h at a rate of 5.1 pmol h<sup>−1</sup> (Fig. <xref rid="Fig2" ref-type="fig">2</xref>g).
</p><fig id="Fig2" position="float"><?disp-level 2?><label>Fig. 2</label><caption><p>Time course of the amount of zinc in different regions of dwarf rice plants. <bold>a</bold> Examined regions in the underground part of the plants. The <italic>blue dotted rectangle</italic> indicates the region of the solution and the <italic>red solid rectangle</italic> that of the solution and the root. <bold>b</bold> Time course of the amount of zinc in the solution. <bold>c</bold> Time course of the amount of newly acquired zinc in the root. <bold>e</bold> Examined regions of the above-ground part of the plants. <bold>d</bold> Time course of the amount of newly acquired zinc in the shoot base. <bold>f</bold> Time course of the amount of newly acquired zinc in the shoot base. <bold>g</bold> Time course of the amount of newly acquired zinc in the panicle. The <italic>dotted line</italic> indicates a linear approximation of the data. The <italic>red bar</italic> below the time axis represents the duration of the <sup>65</sup>Zn feeding step, during which 3 nmol of zinc were administered to the plants</p></caption><alternatives><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="image" id="MO3" xlink:href="13007_2017_188_Fig2_HTML.jpg"><?cloudpmc-path blobs/5e11/5437668/36912fdf7095/13007_2017_188_Fig2_HTML.jpg?><?cloudpmc-bucket cdn?><?image-server-status NEVER_LOAD?><?original-height 415?><?original-width 785?><?scaled-height 415?><?scaled-width 785?></graphic><graphic xmlns:xlink="http://www.w3.org/1999/xlink" content-type="thumb" xlink:href="13007_2017_188_Fig2_HTML.gif"><?cloudpmc-path blobs/5e11/5437668/54e5e5a5fc08/13007_2017_188_Fig2_HTML.gif?><?cloudpmc-bucket cdn?></graphic></alternatives></fig><p>We next obtained serial images and quantified zinc uptake in non-dwarf plants for various initial zinc concentrations (0.1–5 µM; Fig. <xref rid="Fig3" ref-type="fig">3</xref>b, c). The corresponding zinc uptake velocities were calculated from the decrease in zinc observed in the solution every hour (six values from each plant). The velocity data from the plant fed with 5 µM of initial zinc concentration were excluded from the analysis because the plant was injured during the experimental procedure and the zinc concentration did not monotonically decrease. The obtained substrate velocity data (30 values in total) were fitted by the modified Michaelis–Menten model (Eq. <xref rid="Equ1" ref-type="disp-formula">1</xref>) (Fig. <xref rid="Fig3" ref-type="fig">3</xref>c) and the values of <italic>V</italic>max, <italic>K</italic>m and <italic>E</italic> value were estimated to be 11.4 ± 1.9 nmol (g root fresh weight)<sup>−1</sup> h<sup>−1</sup>, 1.1 ± 0.4 µM and 0.15 ± 0.3 nmol (g root fresh weight)<sup>−1</sup> h<sup>−1</sup>, respectively (R<sup>2</sup> value: 0.91).
</p></sec><sec id="Sec7" disp-level="1"><title>Discussion</title><p>In this study, we demonstrated that <sup>65</sup>Zn can be used for positron imaging in plants by administering adequate amounts of <sup>65</sup>Zn and imaging for a sufficiently long time (Fig. <xref rid="Fig1" ref-type="fig">1</xref>). In addition, it was demonstrated that the main gamma ray of <sup>65</sup>Zn (1.1 MeV; 50.6%) does not become noise for positron imaging. These results indicate that non-destructive imaging of zinc dynamics can be conducted even in research facilities without a cyclotron.</p><p>In order to capture <sup>65</sup>Zn movement from the root to the panicle with the restricted size of PETIS field of view, the tested rice plants were artificially dwarfed by treatment with 0.1 ppm of uniconazole Izumi et al. [<xref rid="CR22" ref-type="bibr">22</xref>] reported that treatment with uniconazole P reduces the fresh weight of both shoots and roots by 39 and 22%, respectively. This result implies that shoot/root ratio is not drastically changed by treatment with uniconazole P. Hence, we sought that the <sup>65</sup>Zn movement in the dwarf rice plant provides qualitative information on the zinc dynamics in normal rice plant. Our time course measurements revealed that after peaking at approximately 3 h, the amount of newly acquired zinc in the root of the dwarf rice plants decreased (Fig. <xref rid="Fig2" ref-type="fig">2</xref>c). On the other hand, in a similar experiment using <sup>107</sup>Cd, the amount of cadmium in the root of a japonica rice cultivar plateaued within 1 h and increased slightly but did not decrease [<xref rid="CR12" ref-type="bibr">12</xref>]. Although zinc and cadmium are considered to partially share the same pathway from root to shoot [<xref rid="CR23" ref-type="bibr">23</xref>, <xref rid="CR24" ref-type="bibr">24</xref>], these results suggest that a rice plant usually retains toxic cadmium in the root, whereas it transports zinc to the shoot continuously. The amount of newly acquired zinc in the shoot base became plateau at the end of the feeding step (Fig. <xref rid="Fig2" ref-type="fig">2</xref>d), but those in the node and the panicle increased during the chasing step (Fig. <xref rid="Fig2" ref-type="fig">2</xref>f, g). These results indicate that zinc absorbed by the root is not accumulated in, but passes through the shoot base to the node and is continuously transported to the panicle in the reproductive stage of rice plants. In addition, we did not observe any <sup>65</sup>Zn signals in the region of the leaf blade (Fig. <xref rid="Fig1" ref-type="fig">1</xref>c). Because zinc is considered to transfer from the xylem to the phloem at nodes and finally accumulate in the panicle [<xref rid="CR25" ref-type="bibr">25</xref>], these results suggest that the positron imaging of <sup>65</sup>Zn correctly captures the zinc translocation in rice plants.</p><p>Our zinc uptake evaluation results obtained an estimated <italic>K</italic>m value of 1.1 µM, whereas the previously reported value was 5.5 µM [<xref rid="CR26" ref-type="bibr">26</xref>]. The difference may be caused by the lack of zinc deficient treatment before measurement and by the lack of velocity data at higher substrate concentrations than 2.5 µM in this study. Therefore, our estimation of <italic>K</italic>m using positron imaging data has room for improvement. This approach has the advantage of obtaining several substrate-velocity data measurements from one plant without continuous sampling. Principally, the uptake kinetics of a nutrient element can be estimated from the depletion curve of one plant [<xref rid="CR21" ref-type="bibr">21</xref>]. The development of this analytical method makes it possible to estimate the <italic>K</italic>m value from an individual plant.</p></sec><sec id="Sec8" disp-level="1"><title>Conclusions</title><p>To the best of our knowledge, this is the first report to visualize zinc movement in living plants using commercially available <sup>65</sup>Zn and a positron imaging system. Thus far, short-lived <sup>62</sup>Zn has been used in developing a cancer screening agent for PET [<xref rid="CR27" ref-type="bibr">27</xref>]. Although <sup>65</sup>Zn cannot be administered to humans because of its long half-life, it could be applicable to the kinetic analysis of drugs in small experimental animals if close attention is paid to avoid radioactive contamination in laboratories. Therefore, positron imaging of <sup>65</sup>Zn can be useful not only for the study of zinc dynamics in plants but also for the study of the kinetics of drugs labeled with <sup>65</sup>Zn in animals.</p></sec><sec id="ack1" sec-type="ack" disp-level="1"><title>Authors’ contributions</title><p>NS conceived and designed research. YY, SI, HS and NK conducted experiments. NS analyzed data and wrote the manuscript. All authors read and approved the final manuscript.</p><sec id="FPar1" disp-level="2"><title>Acknowledgements</title><p>We thank Dr. Haruaki Yamazaki (Tokyo University of Science) for his technical assistance in plant cultivation and imaging experiment.</p></sec><sec id="FPar2" disp-level="2"><title>Competing interests</title><p>The authors declare that they have no competing interests.</p></sec><sec id="FPar3" disp-level="2"><title>Availability of data and materials</title><p>All data generated or analysed during this study are included in this published article.</p></sec><sec id="FPar4" disp-level="2"><title>Funding</title><p>This study was supported in part by Grants-in-Aid for Scientific Research (C) (No. 16K06962) from the Japan Society for the Promotion of Science.</p></sec><sec id="FPar5" disp-level="2"><title>Publisher’s Note</title><p>Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.</p></sec></sec><sec id="glossary1" sec-type="glossary" disp-level="1"><title>Abbreviations</title><def-list><def-item><term>PET</term><def><p>positron emission tomography</p></def></def-item><def-item><term>PETIS</term><def><p>positron-emitting tracer imaging system</p></def></def-item></def-list></sec><sec id="_ci93_" xml:lang="en" sec-type="contrib-info" disp-level="1"><title>Contributor Information</title><p>Nobuo Suzui, Email: suzui.nobuo@qst.go.jp.</p><p>Yong-Gen Yin, Email: yin.yonggen@qst.go.jp.</p><p>Satomi Ishii, Email: ishii.satomi@qst.go.jp.</p><p>Hitoshi Sekimoto, Email: hitoshis@cc.utsunomiya-u.ac.jp.</p><p>Naoki Kawachi, Email: kawachi.naoki@qst.go.jp.</p></sec><sec id="Bib1" sec-type="ref-list" disp-level="1"><title>References</title><sec id="Bib1_sec2" disp-level="2"><ref-list><ref id="CR1"><label>1.</label><mixed-citation><named-content content-type="citation-string">Fujimaki S. The positron emitting tracer imaging system (PETIS), a most-advanced imaging tool for plant physiology. ITE Lett Batter New Technol Med. 2007;8:404–413.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=ITE Lett Batter New Technol Med&amp;title=The positron emitting tracer imaging system (PETIS), a most-advanced imaging tool for plant physiology&amp;author=S Fujimaki&amp;volume=8&amp;publication_year=2007&amp;pages=404-413&amp;"/></mixed-citation></ref><ref id="CR2"><label>2.</label><mixed-citation><named-content content-type="citation-string">Thorpe MR, Ferrieri AP, Herth MM, Ferrieri RA. 11C-imaging: methyl jasmonate moves in both phloem and xylem, promotes transport of jasmonate, and of photoassimilate even after proton transport is decoupled. Planta. 2007;226:541–551. doi: 10.1007/s00425-007-0503-5.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/s00425-007-0503-5"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="17356850"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Planta&amp;title=11C-imaging: methyl jasmonate moves in both phloem and xylem, promotes transport of jasmonate, and of photoassimilate even after proton transport is decoupled&amp;author=MR Thorpe&amp;author=AP Ferrieri&amp;author=MM Herth&amp;author=RA Ferrieri&amp;volume=226&amp;publication_year=2007&amp;pages=541-551&amp;pmid=17356850&amp;doi=10.1007/s00425-007-0503-5&amp;"/></mixed-citation></ref><ref id="CR3"><label>3.</label><mixed-citation><named-content content-type="citation-string">Hattori E, Uchida H, Harada N, Ohta M, Tsukada H, Hara Y, Suzuki T. Incorporation and translocation of 2-deoxy-2-[18F]fluoro-d-glucose in Sorghum bicolor (L.) Moench monitored using a planar positron imaging system. Planta. 2008;227:1181–1186. doi: 10.1007/s00425-008-0701-9.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/s00425-008-0701-9"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="18273639"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Planta&amp;title=Incorporation and translocation of 2-deoxy-2-[18F]fluoro-d-glucose in Sorghum bicolor (L.) Moench monitored using a planar positron imaging system&amp;author=E Hattori&amp;author=H Uchida&amp;author=N Harada&amp;author=M Ohta&amp;author=H Tsukada&amp;volume=227&amp;publication_year=2008&amp;pages=1181-1186&amp;pmid=18273639&amp;doi=10.1007/s00425-008-0701-9&amp;"/></mixed-citation></ref><ref id="CR4"><label>4.</label><mixed-citation><named-content content-type="citation-string">Jahnke S, Menzel MI, van Dusschoten D, Roeb GW, Buhler J, Minwuyelet S, Blumler P, Temperton VM, Hombach T, Streun M, et al.  Combined MRI-PET dissects dynamic changes in plant structures and functions. Plant J. 2009;59:634–644. doi: 10.1111/j.1365-313X.2009.03888.x.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1111/j.1365-313X.2009.03888.x"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="19392708"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant J&amp;title=Combined MRI-PET dissects dynamic changes in plant structures and functions&amp;author=S Jahnke&amp;author=MI Menzel&amp;author=D van Dusschoten&amp;author=GW Roeb&amp;author=J Buhler&amp;volume=59&amp;publication_year=2009&amp;pages=634-644&amp;pmid=19392708&amp;doi=10.1111/j.1365-313X.2009.03888.x&amp;"/></mixed-citation></ref><ref id="CR5"><label>5.</label><mixed-citation><named-content content-type="citation-string">Beer S, Streun M, Hombach T, Buehler J, Jahnke S, Khodaverdi M, Larue H, Minwuyelet S, Parl C, Roeb G, et al.  Design and initial performance of PlanTIS: a high-resolution positron emission tomograph for plants. Phys Med Biol. 2010;55:635–646. doi: 10.1088/0031-9155/55/3/006.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1088/0031-9155/55/3/006"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="20071758"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Phys Med Biol&amp;title=Design and initial performance of PlanTIS: a high-resolution positron emission tomograph for plants&amp;author=S Beer&amp;author=M Streun&amp;author=T Hombach&amp;author=J Buehler&amp;author=S Jahnke&amp;volume=55&amp;publication_year=2010&amp;pages=635-646&amp;pmid=20071758&amp;doi=10.1088/0031-9155/55/3/006&amp;"/></mixed-citation></ref><ref id="CR6"><label>6.</label><mixed-citation><named-content content-type="citation-string">Alexoff DL, Dewey SL, Vaska P, Krishnamoorthy S, Ferrieri R, Schueller M, Schlyer DJ, Fowler JS. PET imaging of thin objects: measuring the effects of positron range and partial-volume averaging in the leaf of Nicotiana tabacum. Nucl Med Biol. 2011;38:191–200. doi: 10.1016/j.nucmedbio.2010.08.004.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.nucmedbio.2010.08.004"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="21315274"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Nucl Med Biol&amp;title=PET imaging of thin objects: measuring the effects of positron range and partial-volume averaging in the leaf of Nicotiana tabacum&amp;author=DL Alexoff&amp;author=SL Dewey&amp;author=P Vaska&amp;author=S Krishnamoorthy&amp;author=R Ferrieri&amp;volume=38&amp;publication_year=2011&amp;pages=191-200&amp;pmid=21315274&amp;doi=10.1016/j.nucmedbio.2010.08.004&amp;"/></mixed-citation></ref><ref id="CR7"><label>7.</label><mixed-citation><named-content content-type="citation-string">De Schepper V, Bühler J, Thorpe M, Roeb G, Huber G, van Dusschoten D, Jahnke S, Steppe K. 11C-PET imaging reveals transport dynamics and sectorial plasticity of oak phloem after girdling. Front Plant Sci. 2013;4:200. doi: 10.3389/fpls.2013.00200.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.3389/fpls.2013.00200"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC3684848"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="23785380"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Front Plant Sci.&amp;title=11C-PET imaging reveals transport dynamics and sectorial plasticity of oak phloem after girdling&amp;author=V De Schepper&amp;author=J Bühler&amp;author=M Thorpe&amp;author=G Roeb&amp;author=G Huber&amp;volume=4&amp;publication_year=2013&amp;pages=200&amp;pmid=23785380&amp;doi=10.3389/fpls.2013.00200&amp;"/></mixed-citation></ref><ref id="CR8"><label>8.</label><mixed-citation><named-content content-type="citation-string">Partelová D, Uhrovčík J, Lesný J, Horník M, Rajec P, Kováč P, Hostin S. Application of positron emission tomography and 2-[18F]fluoro-2-deoxy-d-glucose for visualization and quantification of solute transport in plant tissues. Chem Pap. 2014;68:1463–1473. doi: 10.2478/s11696-014-0609-8.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.2478/s11696-014-0609-8"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Chem Pap&amp;title=Application of positron emission tomography and 2-[18F]fluoro-2-deoxy-d-glucose for visualization and quantification of solute transport in plant tissues&amp;author=D Partelová&amp;author=J Uhrovčík&amp;author=J Lesný&amp;author=M Horník&amp;author=P Rajec&amp;volume=68&amp;publication_year=2014&amp;pages=1463-1473&amp;doi=10.2478/s11696-014-0609-8&amp;"/></mixed-citation></ref><ref id="CR9"><label>9.</label><mixed-citation><named-content content-type="citation-string">Hubeau M, Steppe K. Plant-PET scans: in vivo mapping of xylem and phloem functioning. Trends Plant Sci. 2015;20:676–685. doi: 10.1016/j.tplants.2015.07.008.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.tplants.2015.07.008"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="26440436"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Trends Plant Sci&amp;title=Plant-PET scans: in vivo mapping of xylem and phloem functioning&amp;author=M Hubeau&amp;author=K Steppe&amp;volume=20&amp;publication_year=2015&amp;pages=676-685&amp;pmid=26440436&amp;doi=10.1016/j.tplants.2015.07.008&amp;"/></mixed-citation></ref><ref id="CR10"><label>10.</label><mixed-citation><named-content content-type="citation-string">Watanabe S, Iida Y, Suzui N, Katabuchi T, Ishii S, Kawachi N, Hanaoka H, Watanabe S, Matsuhashi S, Endo K, Ishioka NS. Production of no-carrier-added 64Cu and applications to molecular imaging by PET and PETIS as a biomedical tracer. J Radioanal Nucl Chem. 2009;280:199–205. doi: 10.1007/s10967-008-7443-9.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/s10967-008-7443-9"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J Radioanal Nucl Chem&amp;title=Production of no-carrier-added 64Cu and applications to molecular imaging by PET and PETIS as a biomedical tracer&amp;author=S Watanabe&amp;author=Y Iida&amp;author=N Suzui&amp;author=T Katabuchi&amp;author=S Ishii&amp;volume=280&amp;publication_year=2009&amp;pages=199-205&amp;doi=10.1007/s10967-008-7443-9&amp;"/></mixed-citation></ref><ref id="CR11"><label>11.</label><mixed-citation><named-content content-type="citation-string">Fujimaki S, Suzui N, Ishioka NS, Kawachi N, Ito S, Chino M, Nakamura S. Tracing cadmium from culture to spikelet: non-invasive imaging and quantitative characterization of absorption, transport and accumulation of cadmium in an intact rice plant. Plant Physiol. 2010;152:1796–1806. doi: 10.1104/pp.109.151035.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1104/pp.109.151035"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC2850040"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="20172965"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant Physiol&amp;title=Tracing cadmium from culture to spikelet: non-invasive imaging and quantitative characterization of absorption, transport and accumulation of cadmium in an intact rice plant&amp;author=S Fujimaki&amp;author=N Suzui&amp;author=NS Ishioka&amp;author=N Kawachi&amp;author=S Ito&amp;volume=152&amp;publication_year=2010&amp;pages=1796-1806&amp;pmid=20172965&amp;doi=10.1104/pp.109.151035&amp;"/></mixed-citation></ref><ref id="CR12"><label>12.</label><mixed-citation><named-content content-type="citation-string">Ishikawa S, Suzui N, Ito-Tanabata S, Ishii S, Igura M, Abe T, Kuramata M, Kawachi N, Fujimaki S. Real-time imaging and analysis of differences in cadmium dynamics in rice cultivars (Oryza sativa) using positron-emitting107Cd tracer. BMC Plant Biol. 2011;11:172. doi: 10.1186/1471-2229-11-172.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1186/1471-2229-11-172"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC3247196"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="22123026"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=BMC Plant Biol&amp;title=Real-time imaging and analysis of differences in cadmium dynamics in rice cultivars (Oryza sativa) using positron-emitting107Cd tracer&amp;author=S Ishikawa&amp;author=N Suzui&amp;author=S Ito-Tanabata&amp;author=S Ishii&amp;author=M Igura&amp;volume=11&amp;publication_year=2011&amp;pages=172&amp;pmid=22123026&amp;doi=10.1186/1471-2229-11-172&amp;"/></mixed-citation></ref><ref id="CR13"><label>13.</label><mixed-citation><named-content content-type="citation-string">Hu P, Yin Y-G, Ishikawa S, Suzui N, Kawachi N, Fujimaki S, Igura M, Yuan C, Huang J, Li Z, et al.  Nitrate facilitates cadmium uptake, transport and accumulation in the hyperaccumulator Sedum plumbizincicola. Environ Sci Pollut Res. 2013;20:6306–6316. doi: 10.1007/s11356-013-1680-3.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1007/s11356-013-1680-3"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="23589260"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Environ Sci Pollut Res&amp;title=Nitrate facilitates cadmium uptake, transport and accumulation in the hyperaccumulator Sedum plumbizincicola&amp;author=P Hu&amp;author=Y-G Yin&amp;author=S Ishikawa&amp;author=N Suzui&amp;author=N Kawachi&amp;volume=20&amp;publication_year=2013&amp;pages=6306-6316&amp;pmid=23589260&amp;doi=10.1007/s11356-013-1680-3&amp;"/></mixed-citation></ref><ref id="CR14"><label>14.</label><mixed-citation><named-content content-type="citation-string">Nakamura S, Suzui N, Nagasaka T, Komatsu F, Ishioka NS, Ito-Tanabata S, Kawachi N, Rai H, Hattori H, Chino M, Fujimaki S. Application of glutathione to roots selectively inhibits cadmium transport from roots to shoots in oilseed rape. J Exp Bot. 2013;64:1073–1081. doi: 10.1093/jxb/ers388.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1093/jxb/ers388"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC3580817"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="23364937"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=J Exp Bot&amp;title=Application of glutathione to roots selectively inhibits cadmium transport from roots to shoots in oilseed rape&amp;author=S Nakamura&amp;author=N Suzui&amp;author=T Nagasaka&amp;author=F Komatsu&amp;author=NS Ishioka&amp;volume=64&amp;publication_year=2013&amp;pages=1073-1081&amp;pmid=23364937&amp;doi=10.1093/jxb/ers388&amp;"/></mixed-citation></ref><ref id="CR15"><label>15.</label><mixed-citation><named-content content-type="citation-string">Yoshihara T, Suzui N, Ishii S, Kitazaki M, Yamazaki H, Kitazaki K, Kawachi N, Yin Y-G, Ito-Tanabata S, Hashida S-N, et al.  A kinetic analysis of cadmium accumulation in a Cd hyper-accumulator Fern, Athyrium Yokoscense and tobacco plants. Plant, Cell Environ. 2014;37:1086–1096. doi: 10.1111/pce.12217.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1111/pce.12217"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="24125071"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant, Cell Environ&amp;title=A kinetic analysis of cadmium accumulation in a Cd hyper-accumulator Fern, Athyrium Yokoscense and tobacco plants&amp;author=T Yoshihara&amp;author=N Suzui&amp;author=S Ishii&amp;author=M Kitazaki&amp;author=H Yamazaki&amp;volume=37&amp;publication_year=2014&amp;pages=1086-1096&amp;pmid=24125071&amp;doi=10.1111/pce.12217&amp;"/></mixed-citation></ref><ref id="CR16"><label>16.</label><mixed-citation><named-content content-type="citation-string">Fontanili L, Lancilli C, Suzui N, Dendena B, Yin Y-G, Ferri A, Ishii S, Kawachi N, Lucchini G, Fujimaki S, et al.  Kinetic analysis of zinc/cadmium reciprocal competitions suggests a possible Zn-insensitive pathway for root-to-shoot cadmium translocation in rice. Rice. 2016;9:1–13. doi: 10.1186/s12284-016-0088-3.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1186/s12284-016-0088-3"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC4828370"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="27068924"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Rice&amp;title=Kinetic analysis of zinc/cadmium reciprocal competitions suggests a possible Zn-insensitive pathway for root-to-shoot cadmium translocation in rice&amp;author=L Fontanili&amp;author=C Lancilli&amp;author=N Suzui&amp;author=B Dendena&amp;author=Y-G Yin&amp;volume=9&amp;publication_year=2016&amp;pages=1-13&amp;pmid=27068924&amp;doi=10.1186/s12284-016-0088-3&amp;"/></mixed-citation></ref><ref id="CR17"><label>17.</label><mixed-citation><named-content content-type="citation-string">Broadley MR, White PJ, Hammond JP, Zelko I, Lux A. Zinc in plants. New Phytol. 2007;173:677–702. doi: 10.1111/j.1469-8137.2007.01996.x.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1111/j.1469-8137.2007.01996.x"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="17286818"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=New Phytol&amp;title=Zinc in plants&amp;author=MR Broadley&amp;author=PJ White&amp;author=JP Hammond&amp;author=I Zelko&amp;author=A Lux&amp;volume=173&amp;publication_year=2007&amp;pages=677-702&amp;pmid=17286818&amp;doi=10.1111/j.1469-8137.2007.01996.x&amp;"/></mixed-citation></ref><ref id="CR18"><label>18.</label><mixed-citation><named-content content-type="citation-string">Suzuki M, Takahashi M, Tsukamoto T, Watanabe S, Matsuhashi S, Yazaki J, Kishimoto N, Kikuchi S, Nakanishi H, Mori S. Biosynthesis and secretion of mugineic acid family phytosiderophores in zinc-deficient barley. Plant J. 2006;48:85–97. doi: 10.1111/j.1365-313X.2006.02853.x.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1111/j.1365-313X.2006.02853.x"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="16972867"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant J&amp;title=Biosynthesis and secretion of mugineic acid family phytosiderophores in zinc-deficient barley&amp;author=M Suzuki&amp;author=M Takahashi&amp;author=T Tsukamoto&amp;author=S Watanabe&amp;author=S Matsuhashi&amp;volume=48&amp;publication_year=2006&amp;pages=85-97&amp;pmid=16972867&amp;doi=10.1111/j.1365-313X.2006.02853.x&amp;"/></mixed-citation></ref><ref id="CR19"><label>19.</label><mixed-citation><named-content content-type="citation-string">Watanabe S, Ishioka NS, Osa A, Koizumi M, Sekine T, Kiyomiya S, Nakanishi H, Mori S. Production of positron emitters of metallic elements to study plant uptake and distribution. Radiochim Acta. 2001;89:853–858. doi: 10.1524/ract.2001.89.11-12.853.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1524/ract.2001.89.11-12.853"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Radiochim Acta&amp;title=Production of positron emitters of metallic elements to study plant uptake and distribution&amp;author=S Watanabe&amp;author=NS Ishioka&amp;author=A Osa&amp;author=M Koizumi&amp;author=T Sekine&amp;volume=89&amp;publication_year=2001&amp;pages=853-858&amp;doi=10.1524/ract.2001.89.11-12.853&amp;"/></mixed-citation></ref><ref id="CR20"><label>20.</label><mixed-citation><named-content content-type="citation-string">Erenoglu EB, Kutman UB, Ceylan Y, Yildiz B, Cakmak I. Improved nitrogen nutrition enhances root uptake, root-to-shoot translocation and remobilization of zinc (65Zn) in wheat. New Phytol. 2011;189:438–448. doi: 10.1111/j.1469-8137.2010.03488.x.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1111/j.1469-8137.2010.03488.x"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="21029104"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=New Phytol&amp;title=Improved nitrogen nutrition enhances root uptake, root-to-shoot translocation and remobilization of zinc (65Zn) in wheat&amp;author=EB Erenoglu&amp;author=UB Kutman&amp;author=Y Ceylan&amp;author=B Yildiz&amp;author=I Cakmak&amp;volume=189&amp;publication_year=2011&amp;pages=438-448&amp;pmid=21029104&amp;doi=10.1111/j.1469-8137.2010.03488.x&amp;"/></mixed-citation></ref><ref id="CR21"><label>21.</label><mixed-citation><named-content content-type="citation-string">Claassen N, Barber SA. A method for characterizing the relation between nutrient concentration and flux into roots of intact plants. Plant Physiol. 1974;54:564–568. doi: 10.1104/pp.54.4.564.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1104/pp.54.4.564"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC367454"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="16658929"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant Physiol&amp;title=A method for characterizing the relation between nutrient concentration and flux into roots of intact plants&amp;author=N Claassen&amp;author=SA Barber&amp;volume=54&amp;publication_year=1974&amp;pages=564-568&amp;pmid=16658929&amp;doi=10.1104/pp.54.4.564&amp;"/></mixed-citation></ref><ref id="CR22"><label>22.</label><mixed-citation><named-content content-type="citation-string">Izumi K, Nakagawa S, Kobayashi M, Oshio H, Sakurai A, Takahashi N. Levels of IAA, cytokinins, ABA and ethylene in rice plants as affected by a gibberellin biosynthesis inhibitor, Uniconazole-P. Plant Cell Physiol. 1988;29:97–104.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant Cell Physiol&amp;title=Levels of IAA, cytokinins, ABA and ethylene in rice plants as affected by a gibberellin biosynthesis inhibitor, Uniconazole-P&amp;author=K Izumi&amp;author=S Nakagawa&amp;author=M Kobayashi&amp;author=H Oshio&amp;author=A Sakurai&amp;volume=29&amp;publication_year=1988&amp;pages=97-104&amp;"/></mixed-citation></ref><ref id="CR23"><label>23.</label><mixed-citation><named-content content-type="citation-string">Satoh-Nagasawa N, Mori M, Nakazawa N, Kawamoto T, Nagato Y, Sakurai K, Takahashi H, Watanabe A, Akagi H. Mutations in rice (Oryza sativa) heavy metal ATPase 2 (OsHMA2) restrict the translocation of zinc and cadmium. Plant Cell Physiol. 2012;53:213–224. doi: 10.1093/pcp/pcr166.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1093/pcp/pcr166"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="22123790"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant Cell Physiol&amp;title=Mutations in rice (Oryza sativa) heavy metal ATPase 2 (OsHMA2) restrict the translocation of zinc and cadmium&amp;author=N Satoh-Nagasawa&amp;author=M Mori&amp;author=N Nakazawa&amp;author=T Kawamoto&amp;author=Y Nagato&amp;volume=53&amp;publication_year=2012&amp;pages=213-224&amp;pmid=22123790&amp;doi=10.1093/pcp/pcr166&amp;"/></mixed-citation></ref><ref id="CR24"><label>24.</label><mixed-citation><named-content content-type="citation-string">Yamaji N, Xia J, Mitani-Ueno N, Yokosho K, Feng Ma J. Preferential delivery of zinc to developing tissues in rice is mediated by P-type heavy metal ATPase OsHMA2. Plant Physiol. 2013;162:927–939. doi: 10.1104/pp.113.216564.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1104/pp.113.216564"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC3668081"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="23575418"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Plant Physiol&amp;title=Preferential delivery of zinc to developing tissues in rice is mediated by P-type heavy metal ATPase OsHMA2&amp;author=N Yamaji&amp;author=J Xia&amp;author=N Mitani-Ueno&amp;author=K Yokosho&amp;author=J Feng Ma&amp;volume=162&amp;publication_year=2013&amp;pages=927-939&amp;pmid=23575418&amp;doi=10.1104/pp.113.216564&amp;"/></mixed-citation></ref><ref id="CR25"><label>25.</label><mixed-citation><named-content content-type="citation-string">Yoneyama T, Ishikawa S, Fujimaki S. Route and regulation of zinc, cadmium, and iron transport in rice plants (Oryza sativa L.) during vegetative growth and grain filling: metal transporters, metal speciation, grain Cd reduction and Zn and Fe biofortification. Int J Mol Sci. 2015;16:19111. doi: 10.3390/ijms160819111.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.3390/ijms160819111"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmcid" xlink:href="PMC4581289"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="26287170"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Int J Mol Sci&amp;title=Route and regulation of zinc, cadmium, and iron transport in rice plants (Oryza sativa L.) during vegetative growth and grain filling: metal transporters, metal speciation, grain Cd reduction and Zn and Fe biofortification&amp;author=T Yoneyama&amp;author=S Ishikawa&amp;author=S Fujimaki&amp;volume=16&amp;publication_year=2015&amp;pages=19111&amp;pmid=26287170&amp;doi=10.3390/ijms160819111&amp;"/></mixed-citation></ref><ref id="CR26"><label>26.</label><mixed-citation><named-content content-type="citation-string">Homma Y, Hirata H. Kinetics of cadmium and zinc absorption by rice seedling roots. Soil Sci Plant Nutr. 1984;30:527–532. doi: 10.1080/00380768.1984.10434720.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1080/00380768.1984.10434720"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Soil Sci Plant Nutr&amp;title=Kinetics of cadmium and zinc absorption by rice seedling roots&amp;author=Y Homma&amp;author=H Hirata&amp;volume=30&amp;publication_year=1984&amp;pages=527-532&amp;doi=10.1080/00380768.1984.10434720&amp;"/></mixed-citation></ref><ref id="CR27"><label>27.</label><mixed-citation><named-content content-type="citation-string">Tamura M, Matsui H, Hirohara S, Kakiuchi K, Tanihara M, Takahashi N, Nakai K, Kanai Y, Watabe H, Hatazawa J. Selective accumulation of [62Zn]-labeled glycoconjugated porphyrins as multi-functional positron emission tomography tracers in cancer cells. Bioorg Med Chem. 2014;22:2563–2570. doi: 10.1016/j.bmc.2014.02.021.</named-content><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="doi" xlink:href="10.1016/j.bmc.2014.02.021"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="pmid" xlink:href="24656799"/><ext-link xmlns:xlink="http://www.w3.org/1999/xlink" ext-link-type="google-scholar" xlink:href="journal=Bioorg Med Chem&amp;title=Selective accumulation of [62Zn]-labeled glycoconjugated porphyrins as multi-functional positron emission tomography tracers in cancer cells&amp;author=M Tamura&amp;author=H Matsui&amp;author=S Hirohara&amp;author=K Kakiuchi&amp;author=M Tanihara&amp;volume=22&amp;publication_year=2014&amp;pages=2563-2570&amp;pmid=24656799&amp;doi=10.1016/j.bmc.2014.02.021&amp;"/></mixed-citation></ref></ref-list></sec></sec><sec id="_ad93_" xml:lang="en" sec-type="associated-data" disp-level="1"><title>Associated Data</title><sec id="_adda93_" xml:lang="en" sec-type="data-availability-statement" disp-level="2"><title>Data Availability Statement</title><p>All data generated or analysed during this study are included in this published article.</p></sec></sec></body></article>