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Dual function of clock component OsLHY sets critical day length for photoperiodic flowering in rice

Circadian clock, an endogenous time‐setting mechanism, allows plants to adapt to unstable photoperiod conditions and induces flowering with proper timing. In Arabidopsis, the central clock oscillator was formed by a series of interlocked transcriptional feedback loops, but little is known in rice so...

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Autores principales: Sun, Changhui, Zhang, Kuan, Zhou, Yi, Xiang, Lin, He, Changcai, Zhong, Chao, Li, Ke, Wang, Qiuxia, Yang, Chuanpeng, Wang, Qian, Chen, Congping, Chen, Dan, Wang, Yang, Liu, Chuanqiang, Yang, Bin, Wu, Hualin, Chen, Xiaoqiong, Li, Weitao, Wang, Jing, Xu, Peizhou, Wang, Pingrong, Fang, Jun, Chu, Chengcai, Deng, Xiaojian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8384598/
https://www.ncbi.nlm.nih.gov/pubmed/33740293
http://dx.doi.org/10.1111/pbi.13580
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author Sun, Changhui
Zhang, Kuan
Zhou, Yi
Xiang, Lin
He, Changcai
Zhong, Chao
Li, Ke
Wang, Qiuxia
Yang, Chuanpeng
Wang, Qian
Chen, Congping
Chen, Dan
Wang, Yang
Liu, Chuanqiang
Yang, Bin
Wu, Hualin
Chen, Xiaoqiong
Li, Weitao
Wang, Jing
Xu, Peizhou
Wang, Pingrong
Fang, Jun
Chu, Chengcai
Deng, Xiaojian
author_facet Sun, Changhui
Zhang, Kuan
Zhou, Yi
Xiang, Lin
He, Changcai
Zhong, Chao
Li, Ke
Wang, Qiuxia
Yang, Chuanpeng
Wang, Qian
Chen, Congping
Chen, Dan
Wang, Yang
Liu, Chuanqiang
Yang, Bin
Wu, Hualin
Chen, Xiaoqiong
Li, Weitao
Wang, Jing
Xu, Peizhou
Wang, Pingrong
Fang, Jun
Chu, Chengcai
Deng, Xiaojian
author_sort Sun, Changhui
collection PubMed
description Circadian clock, an endogenous time‐setting mechanism, allows plants to adapt to unstable photoperiod conditions and induces flowering with proper timing. In Arabidopsis, the central clock oscillator was formed by a series of interlocked transcriptional feedback loops, but little is known in rice so far. By MutMap technique, we identified the candidate gene OsLHY from a later flowering mutant lem1 and further confirmed it through genetic complementation, RNA interference knockdown, and CRISPR/Cas9‐knockout. Global transcriptome profiling and expression analyses revealed that OsLHY might be a vital circadian rhythm component. Interestingly, oslhy flowered later under ≥12 h day length but headed earlier under ≤11 h day length. qRT‐PCR results exhibited that OsLHY might function through OsGI‐Hd1 pathway. Subsequent one‐hybrid assays in yeast, DNA affinity purification qPCR, and electrophoretic mobility shift assays confirmed OsLHY could directly bind to the CBS element in OsGI promoter. Moreover, the critical day length (CDL) for function reversal of OsLHY in oslhy (11–12 h) was prolonged in the double mutant oslhy osgi (about 13.5 h), indicating that the CDL set by OsLHY was OsGI dependent. Additionally, the dual function of OsLHY entirely relied on Hd1, as the double mutant oslhy hd1 showed the same heading date with hd1 under about 11.5, 13.5, and 14 h day lengths. Together, OsLHY could fine‐tune the CDL by directly regulating OsGI, and Hd1 acts as the final effector of CDL downstream of OsLHY. Our study illustrates a new regulatory mechanism between the circadian clock and photoperiodic flowering.
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spelling pubmed-83845982021-08-30 Dual function of clock component OsLHY sets critical day length for photoperiodic flowering in rice Sun, Changhui Zhang, Kuan Zhou, Yi Xiang, Lin He, Changcai Zhong, Chao Li, Ke Wang, Qiuxia Yang, Chuanpeng Wang, Qian Chen, Congping Chen, Dan Wang, Yang Liu, Chuanqiang Yang, Bin Wu, Hualin Chen, Xiaoqiong Li, Weitao Wang, Jing Xu, Peizhou Wang, Pingrong Fang, Jun Chu, Chengcai Deng, Xiaojian Plant Biotechnol J Research Articles Circadian clock, an endogenous time‐setting mechanism, allows plants to adapt to unstable photoperiod conditions and induces flowering with proper timing. In Arabidopsis, the central clock oscillator was formed by a series of interlocked transcriptional feedback loops, but little is known in rice so far. By MutMap technique, we identified the candidate gene OsLHY from a later flowering mutant lem1 and further confirmed it through genetic complementation, RNA interference knockdown, and CRISPR/Cas9‐knockout. Global transcriptome profiling and expression analyses revealed that OsLHY might be a vital circadian rhythm component. Interestingly, oslhy flowered later under ≥12 h day length but headed earlier under ≤11 h day length. qRT‐PCR results exhibited that OsLHY might function through OsGI‐Hd1 pathway. Subsequent one‐hybrid assays in yeast, DNA affinity purification qPCR, and electrophoretic mobility shift assays confirmed OsLHY could directly bind to the CBS element in OsGI promoter. Moreover, the critical day length (CDL) for function reversal of OsLHY in oslhy (11–12 h) was prolonged in the double mutant oslhy osgi (about 13.5 h), indicating that the CDL set by OsLHY was OsGI dependent. Additionally, the dual function of OsLHY entirely relied on Hd1, as the double mutant oslhy hd1 showed the same heading date with hd1 under about 11.5, 13.5, and 14 h day lengths. Together, OsLHY could fine‐tune the CDL by directly regulating OsGI, and Hd1 acts as the final effector of CDL downstream of OsLHY. Our study illustrates a new regulatory mechanism between the circadian clock and photoperiodic flowering. John Wiley and Sons Inc. 2021-05-05 2021-08 /pmc/articles/PMC8384598/ /pubmed/33740293 http://dx.doi.org/10.1111/pbi.13580 Text en © 2021 The Authors. Plant Biotechnology Journal published by Society for Experimental Biology and The Association of Applied Biologists and John Wiley & Sons Ltd. https://creativecommons.org/licenses/by-nc/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc/4.0/ (https://creativecommons.org/licenses/by-nc/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Research Articles
Sun, Changhui
Zhang, Kuan
Zhou, Yi
Xiang, Lin
He, Changcai
Zhong, Chao
Li, Ke
Wang, Qiuxia
Yang, Chuanpeng
Wang, Qian
Chen, Congping
Chen, Dan
Wang, Yang
Liu, Chuanqiang
Yang, Bin
Wu, Hualin
Chen, Xiaoqiong
Li, Weitao
Wang, Jing
Xu, Peizhou
Wang, Pingrong
Fang, Jun
Chu, Chengcai
Deng, Xiaojian
Dual function of clock component OsLHY sets critical day length for photoperiodic flowering in rice
title Dual function of clock component OsLHY sets critical day length for photoperiodic flowering in rice
title_full Dual function of clock component OsLHY sets critical day length for photoperiodic flowering in rice
title_fullStr Dual function of clock component OsLHY sets critical day length for photoperiodic flowering in rice
title_full_unstemmed Dual function of clock component OsLHY sets critical day length for photoperiodic flowering in rice
title_short Dual function of clock component OsLHY sets critical day length for photoperiodic flowering in rice
title_sort dual function of clock component oslhy sets critical day length for photoperiodic flowering in rice
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8384598/
https://www.ncbi.nlm.nih.gov/pubmed/33740293
http://dx.doi.org/10.1111/pbi.13580
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