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Photosynthesis Mediated by RBOH-Dependent Signaling Is Essential for Cold Stress Memory

Cold tolerance is improved by cold stress acclimation (CS-ACC), and the cold tolerance level is ‘remembered’ by plants. However, the underlying signaling mechanisms remain largely unknown. Here, the CS memory mechanism was studied by bioinformation, plant physiological and photosynthetic parameters,...

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Autores principales: Di, Qinghua, Li, Yansu, Li, Shuzhen, Shi, Aokun, Zhou, Mengdi, Ren, Huazhong, Yan, Yan, He, Chaoxing, Wang, Jun, Sun, Mintao, Yu, Xianchang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9137663/
https://www.ncbi.nlm.nih.gov/pubmed/35624833
http://dx.doi.org/10.3390/antiox11050969
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author Di, Qinghua
Li, Yansu
Li, Shuzhen
Shi, Aokun
Zhou, Mengdi
Ren, Huazhong
Yan, Yan
He, Chaoxing
Wang, Jun
Sun, Mintao
Yu, Xianchang
author_facet Di, Qinghua
Li, Yansu
Li, Shuzhen
Shi, Aokun
Zhou, Mengdi
Ren, Huazhong
Yan, Yan
He, Chaoxing
Wang, Jun
Sun, Mintao
Yu, Xianchang
author_sort Di, Qinghua
collection PubMed
description Cold tolerance is improved by cold stress acclimation (CS-ACC), and the cold tolerance level is ‘remembered’ by plants. However, the underlying signaling mechanisms remain largely unknown. Here, the CS memory mechanism was studied by bioinformation, plant physiological and photosynthetic parameters, and gene expression. We found that CS-ACC induced the acquisition of CS memory and enhanced the maintenance of acquired cold tolerance (MACT) in cucumber seedlings. The H(2)O(2) content and NADPH oxidase activity encoded by CsRBOH was maintained at higher levels during recovery after CS-ACC and inhibition of RBOH-dependent signaling after CS-ACC resulted in a decrease in the H(2)O(2) content, NADPH oxidase activity, and MACT. CsRBOH2, 3, 4, and 5 showed high expression during recovery after CS-ACC. Many BZR-binding sites were identified in memory-responsive CsRBOHs promoters, and CsBZR1 and 3 showed high expression during recovery after CS-ACC. Inhibition of RBOH-dependent signaling or brassinosteroids affected the maintenance of the expression of these memory-responsive CsRBOHs and CsBZRs. The photosynthetic efficiency (PE) decreased but then increased with the prolonged recovery after CS-ACC, and was higher than the control at 48 h of recovery; however, inhibition of RBOH-dependent signaling resulted in a lower PE. Further etiolated seedlings experiments showed that a photosynthetic capacity was necessary for CS memory. Therefore, photosynthesis mediated by RBOH-dependent signaling is essential for CS memory.
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spelling pubmed-91376632022-05-28 Photosynthesis Mediated by RBOH-Dependent Signaling Is Essential for Cold Stress Memory Di, Qinghua Li, Yansu Li, Shuzhen Shi, Aokun Zhou, Mengdi Ren, Huazhong Yan, Yan He, Chaoxing Wang, Jun Sun, Mintao Yu, Xianchang Antioxidants (Basel) Article Cold tolerance is improved by cold stress acclimation (CS-ACC), and the cold tolerance level is ‘remembered’ by plants. However, the underlying signaling mechanisms remain largely unknown. Here, the CS memory mechanism was studied by bioinformation, plant physiological and photosynthetic parameters, and gene expression. We found that CS-ACC induced the acquisition of CS memory and enhanced the maintenance of acquired cold tolerance (MACT) in cucumber seedlings. The H(2)O(2) content and NADPH oxidase activity encoded by CsRBOH was maintained at higher levels during recovery after CS-ACC and inhibition of RBOH-dependent signaling after CS-ACC resulted in a decrease in the H(2)O(2) content, NADPH oxidase activity, and MACT. CsRBOH2, 3, 4, and 5 showed high expression during recovery after CS-ACC. Many BZR-binding sites were identified in memory-responsive CsRBOHs promoters, and CsBZR1 and 3 showed high expression during recovery after CS-ACC. Inhibition of RBOH-dependent signaling or brassinosteroids affected the maintenance of the expression of these memory-responsive CsRBOHs and CsBZRs. The photosynthetic efficiency (PE) decreased but then increased with the prolonged recovery after CS-ACC, and was higher than the control at 48 h of recovery; however, inhibition of RBOH-dependent signaling resulted in a lower PE. Further etiolated seedlings experiments showed that a photosynthetic capacity was necessary for CS memory. Therefore, photosynthesis mediated by RBOH-dependent signaling is essential for CS memory. MDPI 2022-05-14 /pmc/articles/PMC9137663/ /pubmed/35624833 http://dx.doi.org/10.3390/antiox11050969 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Di, Qinghua
Li, Yansu
Li, Shuzhen
Shi, Aokun
Zhou, Mengdi
Ren, Huazhong
Yan, Yan
He, Chaoxing
Wang, Jun
Sun, Mintao
Yu, Xianchang
Photosynthesis Mediated by RBOH-Dependent Signaling Is Essential for Cold Stress Memory
title Photosynthesis Mediated by RBOH-Dependent Signaling Is Essential for Cold Stress Memory
title_full Photosynthesis Mediated by RBOH-Dependent Signaling Is Essential for Cold Stress Memory
title_fullStr Photosynthesis Mediated by RBOH-Dependent Signaling Is Essential for Cold Stress Memory
title_full_unstemmed Photosynthesis Mediated by RBOH-Dependent Signaling Is Essential for Cold Stress Memory
title_short Photosynthesis Mediated by RBOH-Dependent Signaling Is Essential for Cold Stress Memory
title_sort photosynthesis mediated by rboh-dependent signaling is essential for cold stress memory
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9137663/
https://www.ncbi.nlm.nih.gov/pubmed/35624833
http://dx.doi.org/10.3390/antiox11050969
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