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The Alleviation of Photosynthetic Damage in Tomato under Drought and Cold Stress by High CO(2) and Melatonin

The atmospheric CO(2) concentration (a[CO(2)]) is increasing at an unprecedented pace. Exogenous melatonin plays positive roles in the response of plants to abiotic stresses, including drought and cold. The effect of elevated CO(2) concentration (e[CO(2)]) accompanied by exogenous melatonin on plant...

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Autores principales: Zhou, Rong, Wan, Hongjian, Jiang, Fangling, Li, Xiangnan, Yu, Xiaqing, Rosenqvist, Eva, Ottosen, Carl-Otto
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7432885/
https://www.ncbi.nlm.nih.gov/pubmed/32759822
http://dx.doi.org/10.3390/ijms21155587
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author Zhou, Rong
Wan, Hongjian
Jiang, Fangling
Li, Xiangnan
Yu, Xiaqing
Rosenqvist, Eva
Ottosen, Carl-Otto
author_facet Zhou, Rong
Wan, Hongjian
Jiang, Fangling
Li, Xiangnan
Yu, Xiaqing
Rosenqvist, Eva
Ottosen, Carl-Otto
author_sort Zhou, Rong
collection PubMed
description The atmospheric CO(2) concentration (a[CO(2)]) is increasing at an unprecedented pace. Exogenous melatonin plays positive roles in the response of plants to abiotic stresses, including drought and cold. The effect of elevated CO(2) concentration (e[CO(2)]) accompanied by exogenous melatonin on plants under drought and cold stresses remains unknown. Here, tomato plants were grown under a[CO(2)] and e[CO(2)], with half of the plants pre-treated with melatonin. The plants were subsequently treated with drought stress followed by cold stress. The results showed that a decreased net photosynthetic rate (P(N)) was aggravated by a prolonged water deficit. The P(N) was partially restored after recovery from drought but stayed low under a successive cold stress. Starch content was downregulated by drought but upregulated by cold. The e[CO(2)] enhanced P(N) of the plants under non-stressed conditions, and moderate drought and recovery but not severe drought. Stomatal conductance (g(s)) and the transpiration rate (E) was less inhibited by drought under e[CO(2)] than under a[CO(2)]. Tomato grown under e[CO(2)] had better leaf cooling than under a[CO(2)] when subjected to drought. Moreover, melatonin enhanced P(N) during recovery from drought and cold stress, and enhanced biomass accumulation in tomato under e[CO(2)]. The chlorophyll a content in plants treated with melatonin was higher than in non-treated plants under e[CO(2)] during cold stress. Our findings will improve the knowledge on plant responses to abiotic stresses in a future [CO(2)]-rich environment accompanied by exogenous melatonin.
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spelling pubmed-74328852020-08-28 The Alleviation of Photosynthetic Damage in Tomato under Drought and Cold Stress by High CO(2) and Melatonin Zhou, Rong Wan, Hongjian Jiang, Fangling Li, Xiangnan Yu, Xiaqing Rosenqvist, Eva Ottosen, Carl-Otto Int J Mol Sci Article The atmospheric CO(2) concentration (a[CO(2)]) is increasing at an unprecedented pace. Exogenous melatonin plays positive roles in the response of plants to abiotic stresses, including drought and cold. The effect of elevated CO(2) concentration (e[CO(2)]) accompanied by exogenous melatonin on plants under drought and cold stresses remains unknown. Here, tomato plants were grown under a[CO(2)] and e[CO(2)], with half of the plants pre-treated with melatonin. The plants were subsequently treated with drought stress followed by cold stress. The results showed that a decreased net photosynthetic rate (P(N)) was aggravated by a prolonged water deficit. The P(N) was partially restored after recovery from drought but stayed low under a successive cold stress. Starch content was downregulated by drought but upregulated by cold. The e[CO(2)] enhanced P(N) of the plants under non-stressed conditions, and moderate drought and recovery but not severe drought. Stomatal conductance (g(s)) and the transpiration rate (E) was less inhibited by drought under e[CO(2)] than under a[CO(2)]. Tomato grown under e[CO(2)] had better leaf cooling than under a[CO(2)] when subjected to drought. Moreover, melatonin enhanced P(N) during recovery from drought and cold stress, and enhanced biomass accumulation in tomato under e[CO(2)]. The chlorophyll a content in plants treated with melatonin was higher than in non-treated plants under e[CO(2)] during cold stress. Our findings will improve the knowledge on plant responses to abiotic stresses in a future [CO(2)]-rich environment accompanied by exogenous melatonin. MDPI 2020-08-04 /pmc/articles/PMC7432885/ /pubmed/32759822 http://dx.doi.org/10.3390/ijms21155587 Text en © 2020 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
Zhou, Rong
Wan, Hongjian
Jiang, Fangling
Li, Xiangnan
Yu, Xiaqing
Rosenqvist, Eva
Ottosen, Carl-Otto
The Alleviation of Photosynthetic Damage in Tomato under Drought and Cold Stress by High CO(2) and Melatonin
title The Alleviation of Photosynthetic Damage in Tomato under Drought and Cold Stress by High CO(2) and Melatonin
title_full The Alleviation of Photosynthetic Damage in Tomato under Drought and Cold Stress by High CO(2) and Melatonin
title_fullStr The Alleviation of Photosynthetic Damage in Tomato under Drought and Cold Stress by High CO(2) and Melatonin
title_full_unstemmed The Alleviation of Photosynthetic Damage in Tomato under Drought and Cold Stress by High CO(2) and Melatonin
title_short The Alleviation of Photosynthetic Damage in Tomato under Drought and Cold Stress by High CO(2) and Melatonin
title_sort alleviation of photosynthetic damage in tomato under drought and cold stress by high co(2) and melatonin
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7432885/
https://www.ncbi.nlm.nih.gov/pubmed/32759822
http://dx.doi.org/10.3390/ijms21155587
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