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Increasing cyclic electron flow is related to Na(+) sequestration into vacuoles for salt tolerance in soybean

In land plants, the NAD(P)H dehydrogenase (NDH) complex reduces plastoquinones and drives cyclic electron flow (CEF) around PSI. It also produces extra ATP for photosynthesis and improves plant fitness under conditions of abiotic environmental stress. To elucidate the role of CEF in salt tolerance o...

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Autores principales: He, Yi, Fu, Junliang, Yu, Chenliang, Wang, Xiaoman, Jiang, Qinsu, Hong, Jian, Lu, Kaixing, Xue, Gangping, Yan, Chengqi, James, Andrew, Xu, Ligen, Chen, Jianping, Jiang, Dean
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4623694/
https://www.ncbi.nlm.nih.gov/pubmed/26276865
http://dx.doi.org/10.1093/jxb/erv392
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author He, Yi
Fu, Junliang
Yu, Chenliang
Wang, Xiaoman
Jiang, Qinsu
Hong, Jian
Lu, Kaixing
Xue, Gangping
Yan, Chengqi
James, Andrew
Xu, Ligen
Chen, Jianping
Jiang, Dean
author_facet He, Yi
Fu, Junliang
Yu, Chenliang
Wang, Xiaoman
Jiang, Qinsu
Hong, Jian
Lu, Kaixing
Xue, Gangping
Yan, Chengqi
James, Andrew
Xu, Ligen
Chen, Jianping
Jiang, Dean
author_sort He, Yi
collection PubMed
description In land plants, the NAD(P)H dehydrogenase (NDH) complex reduces plastoquinones and drives cyclic electron flow (CEF) around PSI. It also produces extra ATP for photosynthesis and improves plant fitness under conditions of abiotic environmental stress. To elucidate the role of CEF in salt tolerance of the photosynthetic apparatus, Na(+) concentration, chlorophyll fluorescence, and expression of NDH B and H subunits, as well as of genes related to cellular and vacuolar Na(+) transport, were monitored. The salt-tolerant Glycine max (soybean) variety S111-9 exhibited much higher CEF activity and ATP accumulation in light than did the salt-sensitive variety Melrose, but similar leaf Na(+) concentrations under salt stress. In S111-9 plants, ndhB and ndhH were highly up-regulated under salt stress and their corresponding proteins were maintained at high levels or increased significantly. Under salt stress, S111-9 plants accumulated Na(+) in the vacuole, but Melrose plants accumulated Na(+) in the chloroplast. Compared with Melrose, S111-9 plants also showed higher expression of some genes associated with Na(+) transport into the vacuole and/or cell, such as genes encoding components of the CBL10 (calcineurin B-like protein 10)–CIPK24 (CBL-interacting protein kinase 24)–NHX (Na(+)/H(+) antiporter) and CBL4 (calcineurin B-like protein 4)–CIPK24–SOS1 (salt overly sensitive 1) complexes. Based on the findings, it is proposed that enhanced NDH-dependent CEF supplies extra ATP used to sequester Na(+) in the vacuole. This reveals an important mechanism for salt tolerance in soybean and provides new insights into plant resistance to salt stress.
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spelling pubmed-46236942015-10-29 Increasing cyclic electron flow is related to Na(+) sequestration into vacuoles for salt tolerance in soybean He, Yi Fu, Junliang Yu, Chenliang Wang, Xiaoman Jiang, Qinsu Hong, Jian Lu, Kaixing Xue, Gangping Yan, Chengqi James, Andrew Xu, Ligen Chen, Jianping Jiang, Dean J Exp Bot Research Paper In land plants, the NAD(P)H dehydrogenase (NDH) complex reduces plastoquinones and drives cyclic electron flow (CEF) around PSI. It also produces extra ATP for photosynthesis and improves plant fitness under conditions of abiotic environmental stress. To elucidate the role of CEF in salt tolerance of the photosynthetic apparatus, Na(+) concentration, chlorophyll fluorescence, and expression of NDH B and H subunits, as well as of genes related to cellular and vacuolar Na(+) transport, were monitored. The salt-tolerant Glycine max (soybean) variety S111-9 exhibited much higher CEF activity and ATP accumulation in light than did the salt-sensitive variety Melrose, but similar leaf Na(+) concentrations under salt stress. In S111-9 plants, ndhB and ndhH were highly up-regulated under salt stress and their corresponding proteins were maintained at high levels or increased significantly. Under salt stress, S111-9 plants accumulated Na(+) in the vacuole, but Melrose plants accumulated Na(+) in the chloroplast. Compared with Melrose, S111-9 plants also showed higher expression of some genes associated with Na(+) transport into the vacuole and/or cell, such as genes encoding components of the CBL10 (calcineurin B-like protein 10)–CIPK24 (CBL-interacting protein kinase 24)–NHX (Na(+)/H(+) antiporter) and CBL4 (calcineurin B-like protein 4)–CIPK24–SOS1 (salt overly sensitive 1) complexes. Based on the findings, it is proposed that enhanced NDH-dependent CEF supplies extra ATP used to sequester Na(+) in the vacuole. This reveals an important mechanism for salt tolerance in soybean and provides new insights into plant resistance to salt stress. Oxford University Press 2015-09 2015-08-14 /pmc/articles/PMC4623694/ /pubmed/26276865 http://dx.doi.org/10.1093/jxb/erv392 Text en © The Author 2015. Published by Oxford University Press on behalf of the Society for Experimental Biology. 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 Research Paper
He, Yi
Fu, Junliang
Yu, Chenliang
Wang, Xiaoman
Jiang, Qinsu
Hong, Jian
Lu, Kaixing
Xue, Gangping
Yan, Chengqi
James, Andrew
Xu, Ligen
Chen, Jianping
Jiang, Dean
Increasing cyclic electron flow is related to Na(+) sequestration into vacuoles for salt tolerance in soybean
title Increasing cyclic electron flow is related to Na(+) sequestration into vacuoles for salt tolerance in soybean
title_full Increasing cyclic electron flow is related to Na(+) sequestration into vacuoles for salt tolerance in soybean
title_fullStr Increasing cyclic electron flow is related to Na(+) sequestration into vacuoles for salt tolerance in soybean
title_full_unstemmed Increasing cyclic electron flow is related to Na(+) sequestration into vacuoles for salt tolerance in soybean
title_short Increasing cyclic electron flow is related to Na(+) sequestration into vacuoles for salt tolerance in soybean
title_sort increasing cyclic electron flow is related to na(+) sequestration into vacuoles for salt tolerance in soybean
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4623694/
https://www.ncbi.nlm.nih.gov/pubmed/26276865
http://dx.doi.org/10.1093/jxb/erv392
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