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Photoassimilation, Assimilate Translocation and Plasmodesmal Biogenesis in the Source Leaves of Arabidopsis thaliana Grown Under an Increased Atmospheric CO(2) Concentration

Using 18-day-old Arabidopsis thaliana seedlings grown under increased (780 p.p.m., experimental plants) or ambient (390 p.p.m., control plants) CO(2) conditions, we evaluated (14)CO(2) photoassimilation in and translocation from representative source leaves. The total (14)CO(2) photoassimilation amo...

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Autores principales: Duan, Zhongrui, Homma, Ayumi, Kobayashi, Megumi, Nagata, Noriko, Kaneko, Yasuko, Fujiki, Yuki, Nishida, Ikuo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3913446/
https://www.ncbi.nlm.nih.gov/pubmed/24406629
http://dx.doi.org/10.1093/pcp/pcu004
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author Duan, Zhongrui
Homma, Ayumi
Kobayashi, Megumi
Nagata, Noriko
Kaneko, Yasuko
Fujiki, Yuki
Nishida, Ikuo
author_facet Duan, Zhongrui
Homma, Ayumi
Kobayashi, Megumi
Nagata, Noriko
Kaneko, Yasuko
Fujiki, Yuki
Nishida, Ikuo
author_sort Duan, Zhongrui
collection PubMed
description Using 18-day-old Arabidopsis thaliana seedlings grown under increased (780 p.p.m., experimental plants) or ambient (390 p.p.m., control plants) CO(2) conditions, we evaluated (14)CO(2) photoassimilation in and translocation from representative source leaves. The total (14)CO(2) photoassimilation amounts increased in the third leaves of the experimental plants in comparison with that found for the third leaves of the control plants, but the rates were comparable for the first leaves of the two groups. In contrast, translocation of labeled assimilates doubled in the first leaves of the experimental group, whereas translocation was, at best, passively enhanced even though photoassimilation increased in their third leaves. The transcript levels of the companion cell-specific sucrose:H(+) symporter gene SUC2 were not significantly affected in the two groups of plants, whereas those of the sucrose effluxer gene SWEET12 and the sieve element-targeted sucrose:H(+) symporter gene SUT4 were up-regulated in the experimental plants, suggesting up-regulation of SUT4-dependent apoplastic phloem loading. Compared with SUC2, SUT4 is a minor component that is expressed in companion cells but functions in sieve elements after transfer through plasmodesmata. The number of aniline blue-stained spots for plasmodesma-associated callose in the midrib wall increased in the first leaf of the experimental plants but was comparable in the third leaf between the experimental and control plants. These results suggest that A. thaliana responds to greater than normal concentrations of CO(2) differentially in the first and third leaves in regards to photoassimilation, assimilate translocation and plasmodesmal biogenesis.
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spelling pubmed-39134462014-02-05 Photoassimilation, Assimilate Translocation and Plasmodesmal Biogenesis in the Source Leaves of Arabidopsis thaliana Grown Under an Increased Atmospheric CO(2) Concentration Duan, Zhongrui Homma, Ayumi Kobayashi, Megumi Nagata, Noriko Kaneko, Yasuko Fujiki, Yuki Nishida, Ikuo Plant Cell Physiol Special Focus Issue – Regular Papers Using 18-day-old Arabidopsis thaliana seedlings grown under increased (780 p.p.m., experimental plants) or ambient (390 p.p.m., control plants) CO(2) conditions, we evaluated (14)CO(2) photoassimilation in and translocation from representative source leaves. The total (14)CO(2) photoassimilation amounts increased in the third leaves of the experimental plants in comparison with that found for the third leaves of the control plants, but the rates were comparable for the first leaves of the two groups. In contrast, translocation of labeled assimilates doubled in the first leaves of the experimental group, whereas translocation was, at best, passively enhanced even though photoassimilation increased in their third leaves. The transcript levels of the companion cell-specific sucrose:H(+) symporter gene SUC2 were not significantly affected in the two groups of plants, whereas those of the sucrose effluxer gene SWEET12 and the sieve element-targeted sucrose:H(+) symporter gene SUT4 were up-regulated in the experimental plants, suggesting up-regulation of SUT4-dependent apoplastic phloem loading. Compared with SUC2, SUT4 is a minor component that is expressed in companion cells but functions in sieve elements after transfer through plasmodesmata. The number of aniline blue-stained spots for plasmodesma-associated callose in the midrib wall increased in the first leaf of the experimental plants but was comparable in the third leaf between the experimental and control plants. These results suggest that A. thaliana responds to greater than normal concentrations of CO(2) differentially in the first and third leaves in regards to photoassimilation, assimilate translocation and plasmodesmal biogenesis. Oxford University Press 2014-02 2014-01-30 /pmc/articles/PMC3913446/ /pubmed/24406629 http://dx.doi.org/10.1093/pcp/pcu004 Text en © The Author 2014. Published by Oxford University Press on behalf of Japanese Society of Plant Physiologists. http://creativecommons.org/licenses/by/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Special Focus Issue – Regular Papers
Duan, Zhongrui
Homma, Ayumi
Kobayashi, Megumi
Nagata, Noriko
Kaneko, Yasuko
Fujiki, Yuki
Nishida, Ikuo
Photoassimilation, Assimilate Translocation and Plasmodesmal Biogenesis in the Source Leaves of Arabidopsis thaliana Grown Under an Increased Atmospheric CO(2) Concentration
title Photoassimilation, Assimilate Translocation and Plasmodesmal Biogenesis in the Source Leaves of Arabidopsis thaliana Grown Under an Increased Atmospheric CO(2) Concentration
title_full Photoassimilation, Assimilate Translocation and Plasmodesmal Biogenesis in the Source Leaves of Arabidopsis thaliana Grown Under an Increased Atmospheric CO(2) Concentration
title_fullStr Photoassimilation, Assimilate Translocation and Plasmodesmal Biogenesis in the Source Leaves of Arabidopsis thaliana Grown Under an Increased Atmospheric CO(2) Concentration
title_full_unstemmed Photoassimilation, Assimilate Translocation and Plasmodesmal Biogenesis in the Source Leaves of Arabidopsis thaliana Grown Under an Increased Atmospheric CO(2) Concentration
title_short Photoassimilation, Assimilate Translocation and Plasmodesmal Biogenesis in the Source Leaves of Arabidopsis thaliana Grown Under an Increased Atmospheric CO(2) Concentration
title_sort photoassimilation, assimilate translocation and plasmodesmal biogenesis in the source leaves of arabidopsis thaliana grown under an increased atmospheric co(2) concentration
topic Special Focus Issue – Regular Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3913446/
https://www.ncbi.nlm.nih.gov/pubmed/24406629
http://dx.doi.org/10.1093/pcp/pcu004
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