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Salt Priming Protects Photosynthetic Electron Transport against Low-Temperature-Induced Damage in Wheat

Low temperature limits the photochemical efficiency of photosystems in wheat plants. To test the effect of salt priming on the photosynthetic electron transport in wheat under low temperature, the germinating seeds of a winter wheat cv. Jimai44 were primed with varying concentrations of NaCl solutio...

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Autores principales: Li, Hui, Li, Huawei, Lv, Yanjie, Wang, Yongjun, Wang, Zongshuai, Xin, Caiyun, Liu, Shengqun, Zhu, Xiancan, Song, Fengbin, Li, Xiangnan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6982750/
https://www.ncbi.nlm.nih.gov/pubmed/31877640
http://dx.doi.org/10.3390/s20010062
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author Li, Hui
Li, Huawei
Lv, Yanjie
Wang, Yongjun
Wang, Zongshuai
Xin, Caiyun
Liu, Shengqun
Zhu, Xiancan
Song, Fengbin
Li, Xiangnan
author_facet Li, Hui
Li, Huawei
Lv, Yanjie
Wang, Yongjun
Wang, Zongshuai
Xin, Caiyun
Liu, Shengqun
Zhu, Xiancan
Song, Fengbin
Li, Xiangnan
author_sort Li, Hui
collection PubMed
description Low temperature limits the photochemical efficiency of photosystems in wheat plants. To test the effect of salt priming on the photosynthetic electron transport in wheat under low temperature, the germinating seeds of a winter wheat cv. Jimai44 were primed with varying concentrations of NaCl solutions (0, 10, 30, and 50 mM NaCl, indicated by S0, S10, S30, and S50, respectively) for 6 d, and after 11 d of recovery, the seedlings were subsequently exposed to 24-h low-temperature stress (2 °C). Under low temperature, the S30 plants possessed the highest absorption flux per reaction center and higher density of reaction center per cross-section among the treatments. In addition, S30 plants had higher trapped energy flux for reducing Q(A) and fraction of Q(A)-reducing reaction centers and non-Q(B) reducing center than the non-primed plants under low temperature, indicating that S30 plants could maintain the energy balance of photosystems and a relatively higher maximum quantum efficiency of photosystem II under low temperature. In addition, the low temperature-induced MDA accumulation and cell death were alleviated by salt priming in S30 plants. It was suggested that salt priming with an optimal concentration of NaCl solution (30 mM) during seed germination enhanced the photochemical efficiency of photosystems in wheat seedlings, which could be a potential approach to improve cold tolerance in wheat at an early stage.
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spelling pubmed-69827502020-02-28 Salt Priming Protects Photosynthetic Electron Transport against Low-Temperature-Induced Damage in Wheat Li, Hui Li, Huawei Lv, Yanjie Wang, Yongjun Wang, Zongshuai Xin, Caiyun Liu, Shengqun Zhu, Xiancan Song, Fengbin Li, Xiangnan Sensors (Basel) Article Low temperature limits the photochemical efficiency of photosystems in wheat plants. To test the effect of salt priming on the photosynthetic electron transport in wheat under low temperature, the germinating seeds of a winter wheat cv. Jimai44 were primed with varying concentrations of NaCl solutions (0, 10, 30, and 50 mM NaCl, indicated by S0, S10, S30, and S50, respectively) for 6 d, and after 11 d of recovery, the seedlings were subsequently exposed to 24-h low-temperature stress (2 °C). Under low temperature, the S30 plants possessed the highest absorption flux per reaction center and higher density of reaction center per cross-section among the treatments. In addition, S30 plants had higher trapped energy flux for reducing Q(A) and fraction of Q(A)-reducing reaction centers and non-Q(B) reducing center than the non-primed plants under low temperature, indicating that S30 plants could maintain the energy balance of photosystems and a relatively higher maximum quantum efficiency of photosystem II under low temperature. In addition, the low temperature-induced MDA accumulation and cell death were alleviated by salt priming in S30 plants. It was suggested that salt priming with an optimal concentration of NaCl solution (30 mM) during seed germination enhanced the photochemical efficiency of photosystems in wheat seedlings, which could be a potential approach to improve cold tolerance in wheat at an early stage. MDPI 2019-12-20 /pmc/articles/PMC6982750/ /pubmed/31877640 http://dx.doi.org/10.3390/s20010062 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Li, Hui
Li, Huawei
Lv, Yanjie
Wang, Yongjun
Wang, Zongshuai
Xin, Caiyun
Liu, Shengqun
Zhu, Xiancan
Song, Fengbin
Li, Xiangnan
Salt Priming Protects Photosynthetic Electron Transport against Low-Temperature-Induced Damage in Wheat
title Salt Priming Protects Photosynthetic Electron Transport against Low-Temperature-Induced Damage in Wheat
title_full Salt Priming Protects Photosynthetic Electron Transport against Low-Temperature-Induced Damage in Wheat
title_fullStr Salt Priming Protects Photosynthetic Electron Transport against Low-Temperature-Induced Damage in Wheat
title_full_unstemmed Salt Priming Protects Photosynthetic Electron Transport against Low-Temperature-Induced Damage in Wheat
title_short Salt Priming Protects Photosynthetic Electron Transport against Low-Temperature-Induced Damage in Wheat
title_sort salt priming protects photosynthetic electron transport against low-temperature-induced damage in wheat
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6982750/
https://www.ncbi.nlm.nih.gov/pubmed/31877640
http://dx.doi.org/10.3390/s20010062
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