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Electron and proton transport in wheat exposed to salt stress: is the increase of the thylakoid membrane proton conductivity responsible for decreasing the photosynthetic activity in sensitive genotypes?

Effects of salinity caused by 150 mM NaCl on primary photochemical reactions and some physiological and biochemical parameters (K(+)/Na(+) ratio, soluble sugars, proline, MDA) have been studied in five Triticum aestivum L. genotypes with contrasting salt tolerance. It was found that 150 mM NaCl sign...

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Autores principales: Ibrahimova, Ulkar, Zivcak, Marek, Gasparovic, Kristina, Rastogi, Anshu, Allakhverdiev, Suleyman I., Yang, Xinghong, Brestic, Marian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Netherlands 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8556197/
https://www.ncbi.nlm.nih.gov/pubmed/34125427
http://dx.doi.org/10.1007/s11120-021-00853-z
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author Ibrahimova, Ulkar
Zivcak, Marek
Gasparovic, Kristina
Rastogi, Anshu
Allakhverdiev, Suleyman I.
Yang, Xinghong
Brestic, Marian
author_facet Ibrahimova, Ulkar
Zivcak, Marek
Gasparovic, Kristina
Rastogi, Anshu
Allakhverdiev, Suleyman I.
Yang, Xinghong
Brestic, Marian
author_sort Ibrahimova, Ulkar
collection PubMed
description Effects of salinity caused by 150 mM NaCl on primary photochemical reactions and some physiological and biochemical parameters (K(+)/Na(+) ratio, soluble sugars, proline, MDA) have been studied in five Triticum aestivum L. genotypes with contrasting salt tolerance. It was found that 150 mM NaCl significantly decreased the photosynthetic efficiency of two sensitive genotypes. The K(+)/Na(+) ratio decreased in all genotypes exposed to salinity stress when compared with the control. Salinity stress also caused lipid peroxidation and accumulation of soluble sugars and proline. The amounts of soluble sugars and proline were higher in tolerant genotypes than sensitive ones, and lipid peroxidation was higher in sensitive genotypes. The noninvasive measurements of photosynthesis-related parameters indicated the genotype-dependent effects of salinity stress on the photosynthetic apparatus. The significant decrease of chlorophyll content (SPAD values) or adverse effects on photosynthetic functions at the PSII level (measured by the chlorophyll fluorescence parameters) were observed in the two sensitive genotypes only. Although the information obtained by different fast noninvasive techniques were consistent, the correlation analyses identified the highest correlation of the noninvasive records with MDA, K(+)/Na(+) ratio, and free proline content. The lower correlation levels were found for chlorophyll content (SPAD) and F(v)/F(m) values derived from chlorophyll fluorescence. Performance index (PI(abs)) derived from fast fluorescence kinetics, and F(735)/F(685) ratio correlated well with MDA and Na(+) content. The most promising were the results of linear electron flow measured by MultispeQ sensor, in which we found a highly significant correlation with all parameters assessed. Moreover, the noninvasive simultaneous measurements of chlorophyll fluorescence and electrochromic band shift using this sensor indicated the apparent proton leakage at the thylakoid membranes resulting in a high proton conductivity (gH(+)), present in sensitive genotypes only. The possible consequences for the photosynthetic functions and the photoprotection are discussed.
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spelling pubmed-85561972021-11-04 Electron and proton transport in wheat exposed to salt stress: is the increase of the thylakoid membrane proton conductivity responsible for decreasing the photosynthetic activity in sensitive genotypes? Ibrahimova, Ulkar Zivcak, Marek Gasparovic, Kristina Rastogi, Anshu Allakhverdiev, Suleyman I. Yang, Xinghong Brestic, Marian Photosynth Res Original Article Effects of salinity caused by 150 mM NaCl on primary photochemical reactions and some physiological and biochemical parameters (K(+)/Na(+) ratio, soluble sugars, proline, MDA) have been studied in five Triticum aestivum L. genotypes with contrasting salt tolerance. It was found that 150 mM NaCl significantly decreased the photosynthetic efficiency of two sensitive genotypes. The K(+)/Na(+) ratio decreased in all genotypes exposed to salinity stress when compared with the control. Salinity stress also caused lipid peroxidation and accumulation of soluble sugars and proline. The amounts of soluble sugars and proline were higher in tolerant genotypes than sensitive ones, and lipid peroxidation was higher in sensitive genotypes. The noninvasive measurements of photosynthesis-related parameters indicated the genotype-dependent effects of salinity stress on the photosynthetic apparatus. The significant decrease of chlorophyll content (SPAD values) or adverse effects on photosynthetic functions at the PSII level (measured by the chlorophyll fluorescence parameters) were observed in the two sensitive genotypes only. Although the information obtained by different fast noninvasive techniques were consistent, the correlation analyses identified the highest correlation of the noninvasive records with MDA, K(+)/Na(+) ratio, and free proline content. The lower correlation levels were found for chlorophyll content (SPAD) and F(v)/F(m) values derived from chlorophyll fluorescence. Performance index (PI(abs)) derived from fast fluorescence kinetics, and F(735)/F(685) ratio correlated well with MDA and Na(+) content. The most promising were the results of linear electron flow measured by MultispeQ sensor, in which we found a highly significant correlation with all parameters assessed. Moreover, the noninvasive simultaneous measurements of chlorophyll fluorescence and electrochromic band shift using this sensor indicated the apparent proton leakage at the thylakoid membranes resulting in a high proton conductivity (gH(+)), present in sensitive genotypes only. The possible consequences for the photosynthetic functions and the photoprotection are discussed. Springer Netherlands 2021-06-14 2021 /pmc/articles/PMC8556197/ /pubmed/34125427 http://dx.doi.org/10.1007/s11120-021-00853-z Text en © The Author(s) 2021 https://creativecommons.org/licenses/by/4.0/Open AccessThis article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Original Article
Ibrahimova, Ulkar
Zivcak, Marek
Gasparovic, Kristina
Rastogi, Anshu
Allakhverdiev, Suleyman I.
Yang, Xinghong
Brestic, Marian
Electron and proton transport in wheat exposed to salt stress: is the increase of the thylakoid membrane proton conductivity responsible for decreasing the photosynthetic activity in sensitive genotypes?
title Electron and proton transport in wheat exposed to salt stress: is the increase of the thylakoid membrane proton conductivity responsible for decreasing the photosynthetic activity in sensitive genotypes?
title_full Electron and proton transport in wheat exposed to salt stress: is the increase of the thylakoid membrane proton conductivity responsible for decreasing the photosynthetic activity in sensitive genotypes?
title_fullStr Electron and proton transport in wheat exposed to salt stress: is the increase of the thylakoid membrane proton conductivity responsible for decreasing the photosynthetic activity in sensitive genotypes?
title_full_unstemmed Electron and proton transport in wheat exposed to salt stress: is the increase of the thylakoid membrane proton conductivity responsible for decreasing the photosynthetic activity in sensitive genotypes?
title_short Electron and proton transport in wheat exposed to salt stress: is the increase of the thylakoid membrane proton conductivity responsible for decreasing the photosynthetic activity in sensitive genotypes?
title_sort electron and proton transport in wheat exposed to salt stress: is the increase of the thylakoid membrane proton conductivity responsible for decreasing the photosynthetic activity in sensitive genotypes?
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8556197/
https://www.ncbi.nlm.nih.gov/pubmed/34125427
http://dx.doi.org/10.1007/s11120-021-00853-z
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