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Photoperiod Genes Contribute to Daylength-Sensing and Breeding in Rice

Rice (Oryza sativa L.), one of the most important food crops worldwide, is a facultative short-day (SD) plant in which flowering is modulated by seasonal and temperature cues. The photoperiodic molecular network is the core network for regulating flowering in rice, and is composed of photoreceptors,...

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Autores principales: Qiu, Leilei, Zhou, Peng, Wang, Hao, Zhang, Cheng, Du, Chengxing, Tian, Shujun, Wu, Qinqin, Wei, Litian, Wang, Xiaoying, Zhou, Yiming, Huang, Rongyu, Huang, Xi, Ouyang, Xinhao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9959395/
https://www.ncbi.nlm.nih.gov/pubmed/36840246
http://dx.doi.org/10.3390/plants12040899
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author Qiu, Leilei
Zhou, Peng
Wang, Hao
Zhang, Cheng
Du, Chengxing
Tian, Shujun
Wu, Qinqin
Wei, Litian
Wang, Xiaoying
Zhou, Yiming
Huang, Rongyu
Huang, Xi
Ouyang, Xinhao
author_facet Qiu, Leilei
Zhou, Peng
Wang, Hao
Zhang, Cheng
Du, Chengxing
Tian, Shujun
Wu, Qinqin
Wei, Litian
Wang, Xiaoying
Zhou, Yiming
Huang, Rongyu
Huang, Xi
Ouyang, Xinhao
author_sort Qiu, Leilei
collection PubMed
description Rice (Oryza sativa L.), one of the most important food crops worldwide, is a facultative short-day (SD) plant in which flowering is modulated by seasonal and temperature cues. The photoperiodic molecular network is the core network for regulating flowering in rice, and is composed of photoreceptors, a circadian clock, a photoperiodic flowering core module, and florigen genes. The Hd1-DTH8-Ghd7-PRR37 module, a photoperiodic flowering core module, improves the latitude adaptation through mediating the multiple daylength-sensing processes in rice. However, how the other photoperiod-related genes regulate daylength-sensing and latitude adaptation remains largely unknown. Here, we determined that mutations in the photoreceptor and circadian clock genes can generate different daylength-sensing processes. Furthermore, we measured the yield-related traits in various mutants, including the main panicle length, grains per panicle, seed-setting rate, hundred-grain weight, and yield per panicle. Our results showed that the prr37, elf3-1 and ehd1 mutants can change the daylength-sensing processes and exhibit longer main panicle lengths and more grains per panicle. Hence, the PRR37, ELF3-1 and Ehd1 locus has excellent potential for latitude adaptation and production improvement in rice breeding. In summary, this study systematically explored how vital elements of the photoperiod network regulate daylength sensing and yield traits, providing critical information for their breeding applications.
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spelling pubmed-99593952023-02-26 Photoperiod Genes Contribute to Daylength-Sensing and Breeding in Rice Qiu, Leilei Zhou, Peng Wang, Hao Zhang, Cheng Du, Chengxing Tian, Shujun Wu, Qinqin Wei, Litian Wang, Xiaoying Zhou, Yiming Huang, Rongyu Huang, Xi Ouyang, Xinhao Plants (Basel) Article Rice (Oryza sativa L.), one of the most important food crops worldwide, is a facultative short-day (SD) plant in which flowering is modulated by seasonal and temperature cues. The photoperiodic molecular network is the core network for regulating flowering in rice, and is composed of photoreceptors, a circadian clock, a photoperiodic flowering core module, and florigen genes. The Hd1-DTH8-Ghd7-PRR37 module, a photoperiodic flowering core module, improves the latitude adaptation through mediating the multiple daylength-sensing processes in rice. However, how the other photoperiod-related genes regulate daylength-sensing and latitude adaptation remains largely unknown. Here, we determined that mutations in the photoreceptor and circadian clock genes can generate different daylength-sensing processes. Furthermore, we measured the yield-related traits in various mutants, including the main panicle length, grains per panicle, seed-setting rate, hundred-grain weight, and yield per panicle. Our results showed that the prr37, elf3-1 and ehd1 mutants can change the daylength-sensing processes and exhibit longer main panicle lengths and more grains per panicle. Hence, the PRR37, ELF3-1 and Ehd1 locus has excellent potential for latitude adaptation and production improvement in rice breeding. In summary, this study systematically explored how vital elements of the photoperiod network regulate daylength sensing and yield traits, providing critical information for their breeding applications. MDPI 2023-02-16 /pmc/articles/PMC9959395/ /pubmed/36840246 http://dx.doi.org/10.3390/plants12040899 Text en © 2023 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
Qiu, Leilei
Zhou, Peng
Wang, Hao
Zhang, Cheng
Du, Chengxing
Tian, Shujun
Wu, Qinqin
Wei, Litian
Wang, Xiaoying
Zhou, Yiming
Huang, Rongyu
Huang, Xi
Ouyang, Xinhao
Photoperiod Genes Contribute to Daylength-Sensing and Breeding in Rice
title Photoperiod Genes Contribute to Daylength-Sensing and Breeding in Rice
title_full Photoperiod Genes Contribute to Daylength-Sensing and Breeding in Rice
title_fullStr Photoperiod Genes Contribute to Daylength-Sensing and Breeding in Rice
title_full_unstemmed Photoperiod Genes Contribute to Daylength-Sensing and Breeding in Rice
title_short Photoperiod Genes Contribute to Daylength-Sensing and Breeding in Rice
title_sort photoperiod genes contribute to daylength-sensing and breeding in rice
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9959395/
https://www.ncbi.nlm.nih.gov/pubmed/36840246
http://dx.doi.org/10.3390/plants12040899
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