Cargando…

Oligomeric Proanthocyanidins Confer Cold Tolerance in Rice through Maintaining Energy Homeostasis

Oligomeric proanthocyanidins (OPCs) are abundant polyphenols found in foods and botanicals that benefit human health, but our understanding of the functions of OPCs in rice plants is limited, particularly under cold stress. Two rice genotypes, named Zhongzao39 (ZZ39) and its recombinant inbred line...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Juncai, Feng, Baohua, Yu, Pinghui, Fu, Weimeng, Wang, Wenting, Lin, Jie, Qin, Yebo, Li, Hubo, Chen, Tingting, Xu, Chunmei, Tao, Longxing, Wu, Zhihai, Fu, Guanfu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9854629/
https://www.ncbi.nlm.nih.gov/pubmed/36670941
http://dx.doi.org/10.3390/antiox12010079
_version_ 1784873168527163392
author Li, Juncai
Feng, Baohua
Yu, Pinghui
Fu, Weimeng
Wang, Wenting
Lin, Jie
Qin, Yebo
Li, Hubo
Chen, Tingting
Xu, Chunmei
Tao, Longxing
Wu, Zhihai
Fu, Guanfu
author_facet Li, Juncai
Feng, Baohua
Yu, Pinghui
Fu, Weimeng
Wang, Wenting
Lin, Jie
Qin, Yebo
Li, Hubo
Chen, Tingting
Xu, Chunmei
Tao, Longxing
Wu, Zhihai
Fu, Guanfu
author_sort Li, Juncai
collection PubMed
description Oligomeric proanthocyanidins (OPCs) are abundant polyphenols found in foods and botanicals that benefit human health, but our understanding of the functions of OPCs in rice plants is limited, particularly under cold stress. Two rice genotypes, named Zhongzao39 (ZZ39) and its recombinant inbred line RIL82, were subjected to cold stress. More damage was caused to RIL82 by cold stress than to ZZ39 plants. Transcriptome analysis suggested that OPCs were involved in regulating cold tolerance in the two genotypes. A greater increase in OPCs content was detected in ZZ39 than in RIL82 plants under cold stress compared to their respective controls. Exogenous OPCs alleviated cold damage of rice plants by increasing antioxidant capacity. ATPase activity was higher and poly (ADP-ribose) polymerase (PARP) activity was lower under cold stress in ZZ39 than in RIL82 plants. Importantly, improvements in cold tolerance were observed in plants treated with the OPCs and 3-aminobenzamide (PARP inhibitor, 3ab) combination compared to the seedling plants treated with H(2)O, OPCs, or 3ab alone. Therefore, OPCs increased ATPase activity and inhibited PARP activity to provide sufficient energy for rice seedling plants to develop antioxidant capacity against cold stress.
format Online
Article
Text
id pubmed-9854629
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-98546292023-01-21 Oligomeric Proanthocyanidins Confer Cold Tolerance in Rice through Maintaining Energy Homeostasis Li, Juncai Feng, Baohua Yu, Pinghui Fu, Weimeng Wang, Wenting Lin, Jie Qin, Yebo Li, Hubo Chen, Tingting Xu, Chunmei Tao, Longxing Wu, Zhihai Fu, Guanfu Antioxidants (Basel) Article Oligomeric proanthocyanidins (OPCs) are abundant polyphenols found in foods and botanicals that benefit human health, but our understanding of the functions of OPCs in rice plants is limited, particularly under cold stress. Two rice genotypes, named Zhongzao39 (ZZ39) and its recombinant inbred line RIL82, were subjected to cold stress. More damage was caused to RIL82 by cold stress than to ZZ39 plants. Transcriptome analysis suggested that OPCs were involved in regulating cold tolerance in the two genotypes. A greater increase in OPCs content was detected in ZZ39 than in RIL82 plants under cold stress compared to their respective controls. Exogenous OPCs alleviated cold damage of rice plants by increasing antioxidant capacity. ATPase activity was higher and poly (ADP-ribose) polymerase (PARP) activity was lower under cold stress in ZZ39 than in RIL82 plants. Importantly, improvements in cold tolerance were observed in plants treated with the OPCs and 3-aminobenzamide (PARP inhibitor, 3ab) combination compared to the seedling plants treated with H(2)O, OPCs, or 3ab alone. Therefore, OPCs increased ATPase activity and inhibited PARP activity to provide sufficient energy for rice seedling plants to develop antioxidant capacity against cold stress. MDPI 2022-12-29 /pmc/articles/PMC9854629/ /pubmed/36670941 http://dx.doi.org/10.3390/antiox12010079 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
Li, Juncai
Feng, Baohua
Yu, Pinghui
Fu, Weimeng
Wang, Wenting
Lin, Jie
Qin, Yebo
Li, Hubo
Chen, Tingting
Xu, Chunmei
Tao, Longxing
Wu, Zhihai
Fu, Guanfu
Oligomeric Proanthocyanidins Confer Cold Tolerance in Rice through Maintaining Energy Homeostasis
title Oligomeric Proanthocyanidins Confer Cold Tolerance in Rice through Maintaining Energy Homeostasis
title_full Oligomeric Proanthocyanidins Confer Cold Tolerance in Rice through Maintaining Energy Homeostasis
title_fullStr Oligomeric Proanthocyanidins Confer Cold Tolerance in Rice through Maintaining Energy Homeostasis
title_full_unstemmed Oligomeric Proanthocyanidins Confer Cold Tolerance in Rice through Maintaining Energy Homeostasis
title_short Oligomeric Proanthocyanidins Confer Cold Tolerance in Rice through Maintaining Energy Homeostasis
title_sort oligomeric proanthocyanidins confer cold tolerance in rice through maintaining energy homeostasis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9854629/
https://www.ncbi.nlm.nih.gov/pubmed/36670941
http://dx.doi.org/10.3390/antiox12010079
work_keys_str_mv AT lijuncai oligomericproanthocyanidinsconfercoldtoleranceinricethroughmaintainingenergyhomeostasis
AT fengbaohua oligomericproanthocyanidinsconfercoldtoleranceinricethroughmaintainingenergyhomeostasis
AT yupinghui oligomericproanthocyanidinsconfercoldtoleranceinricethroughmaintainingenergyhomeostasis
AT fuweimeng oligomericproanthocyanidinsconfercoldtoleranceinricethroughmaintainingenergyhomeostasis
AT wangwenting oligomericproanthocyanidinsconfercoldtoleranceinricethroughmaintainingenergyhomeostasis
AT linjie oligomericproanthocyanidinsconfercoldtoleranceinricethroughmaintainingenergyhomeostasis
AT qinyebo oligomericproanthocyanidinsconfercoldtoleranceinricethroughmaintainingenergyhomeostasis
AT lihubo oligomericproanthocyanidinsconfercoldtoleranceinricethroughmaintainingenergyhomeostasis
AT chentingting oligomericproanthocyanidinsconfercoldtoleranceinricethroughmaintainingenergyhomeostasis
AT xuchunmei oligomericproanthocyanidinsconfercoldtoleranceinricethroughmaintainingenergyhomeostasis
AT taolongxing oligomericproanthocyanidinsconfercoldtoleranceinricethroughmaintainingenergyhomeostasis
AT wuzhihai oligomericproanthocyanidinsconfercoldtoleranceinricethroughmaintainingenergyhomeostasis
AT fuguanfu oligomericproanthocyanidinsconfercoldtoleranceinricethroughmaintainingenergyhomeostasis