Cargando…

OsCOMT, encoding a caffeic acid O‐methyltransferase in melatonin biosynthesis, increases rice grain yield through dual regulation of leaf senescence and vascular development

Melatonin, a natural phytohormone in plants, plays multiple critical roles in plant growth and stress responses. Although melatonin biosynthesis‐related genes have been suggested to possess diverse biological functions, their roles and functional mechanisms in regulating rice grain yield remain larg...

Descripción completa

Detalles Bibliográficos
Autores principales: Huangfu, Liexiang, Chen, Rujia, Lu, Yue, Zhang, Enying, Miao, Jun, Zuo, Zhihao, Zhao, Yu, Zhu, Minyan, Zhang, Zihui, Li, Pengcheng, Xu, Yang, Yao, Youli, Liang, Guohua, Xu, Chenwu, Zhou, Yong, Yang, Zefeng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9129082/
https://www.ncbi.nlm.nih.gov/pubmed/35189026
http://dx.doi.org/10.1111/pbi.13794
_version_ 1784712686187053056
author Huangfu, Liexiang
Chen, Rujia
Lu, Yue
Zhang, Enying
Miao, Jun
Zuo, Zhihao
Zhao, Yu
Zhu, Minyan
Zhang, Zihui
Li, Pengcheng
Xu, Yang
Yao, Youli
Liang, Guohua
Xu, Chenwu
Zhou, Yong
Yang, Zefeng
author_facet Huangfu, Liexiang
Chen, Rujia
Lu, Yue
Zhang, Enying
Miao, Jun
Zuo, Zhihao
Zhao, Yu
Zhu, Minyan
Zhang, Zihui
Li, Pengcheng
Xu, Yang
Yao, Youli
Liang, Guohua
Xu, Chenwu
Zhou, Yong
Yang, Zefeng
author_sort Huangfu, Liexiang
collection PubMed
description Melatonin, a natural phytohormone in plants, plays multiple critical roles in plant growth and stress responses. Although melatonin biosynthesis‐related genes have been suggested to possess diverse biological functions, their roles and functional mechanisms in regulating rice grain yield remain largely unexplored. Here, we uncovered the roles of a caffeic acid O‐methyltransferase (OsCOMT) gene in mediating rice grain yield through dual regulation of leaf senescence and vascular development. In vitro and in vivo evidence revealed that OsCOMT is involved in melatonin biosynthesis. Transgenic assays suggested that OsCOMT significantly delays leaf senescence at the grain filling stage by inhibiting degradation of chlorophyll and chloroplast, which, in turn, improves photosynthesis efficiency. In addition, the number and size of vascular bundles in the culms and leaves were significantly increased in the OsCOMT‐overexpressing plants, while decreased in the knockout plants, suggesting that OsCOMT plays a positive role in vascular development of rice. Further evidence indicated that OsCOMT‐mediated vascular development might owe to the crosstalk between melatonin and cytokinin. More importantly, we found that OsCOMT is a positive regulator of grain yield, and overexpression of OsCOMT increase grain yield per plant even in a high‐yield variety background, suggesting that OsCOMT can be used as an important target for enhancing rice yield. Our findings shed novel insights into melatonin‐mediated leaf senescence and vascular development and provide a possible strategy for genetic improvement of rice grain yield.
format Online
Article
Text
id pubmed-9129082
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-91290822022-05-26 OsCOMT, encoding a caffeic acid O‐methyltransferase in melatonin biosynthesis, increases rice grain yield through dual regulation of leaf senescence and vascular development Huangfu, Liexiang Chen, Rujia Lu, Yue Zhang, Enying Miao, Jun Zuo, Zhihao Zhao, Yu Zhu, Minyan Zhang, Zihui Li, Pengcheng Xu, Yang Yao, Youli Liang, Guohua Xu, Chenwu Zhou, Yong Yang, Zefeng Plant Biotechnol J Research Articles Melatonin, a natural phytohormone in plants, plays multiple critical roles in plant growth and stress responses. Although melatonin biosynthesis‐related genes have been suggested to possess diverse biological functions, their roles and functional mechanisms in regulating rice grain yield remain largely unexplored. Here, we uncovered the roles of a caffeic acid O‐methyltransferase (OsCOMT) gene in mediating rice grain yield through dual regulation of leaf senescence and vascular development. In vitro and in vivo evidence revealed that OsCOMT is involved in melatonin biosynthesis. Transgenic assays suggested that OsCOMT significantly delays leaf senescence at the grain filling stage by inhibiting degradation of chlorophyll and chloroplast, which, in turn, improves photosynthesis efficiency. In addition, the number and size of vascular bundles in the culms and leaves were significantly increased in the OsCOMT‐overexpressing plants, while decreased in the knockout plants, suggesting that OsCOMT plays a positive role in vascular development of rice. Further evidence indicated that OsCOMT‐mediated vascular development might owe to the crosstalk between melatonin and cytokinin. More importantly, we found that OsCOMT is a positive regulator of grain yield, and overexpression of OsCOMT increase grain yield per plant even in a high‐yield variety background, suggesting that OsCOMT can be used as an important target for enhancing rice yield. Our findings shed novel insights into melatonin‐mediated leaf senescence and vascular development and provide a possible strategy for genetic improvement of rice grain yield. John Wiley and Sons Inc. 2022-03-01 2022-06 /pmc/articles/PMC9129082/ /pubmed/35189026 http://dx.doi.org/10.1111/pbi.13794 Text en © 2022 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-nd/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) License, which permits use and distribution in any medium, provided the original work is properly cited, the use is non‐commercial and no modifications or adaptations are made.
spellingShingle Research Articles
Huangfu, Liexiang
Chen, Rujia
Lu, Yue
Zhang, Enying
Miao, Jun
Zuo, Zhihao
Zhao, Yu
Zhu, Minyan
Zhang, Zihui
Li, Pengcheng
Xu, Yang
Yao, Youli
Liang, Guohua
Xu, Chenwu
Zhou, Yong
Yang, Zefeng
OsCOMT, encoding a caffeic acid O‐methyltransferase in melatonin biosynthesis, increases rice grain yield through dual regulation of leaf senescence and vascular development
title OsCOMT, encoding a caffeic acid O‐methyltransferase in melatonin biosynthesis, increases rice grain yield through dual regulation of leaf senescence and vascular development
title_full OsCOMT, encoding a caffeic acid O‐methyltransferase in melatonin biosynthesis, increases rice grain yield through dual regulation of leaf senescence and vascular development
title_fullStr OsCOMT, encoding a caffeic acid O‐methyltransferase in melatonin biosynthesis, increases rice grain yield through dual regulation of leaf senescence and vascular development
title_full_unstemmed OsCOMT, encoding a caffeic acid O‐methyltransferase in melatonin biosynthesis, increases rice grain yield through dual regulation of leaf senescence and vascular development
title_short OsCOMT, encoding a caffeic acid O‐methyltransferase in melatonin biosynthesis, increases rice grain yield through dual regulation of leaf senescence and vascular development
title_sort oscomt, encoding a caffeic acid o‐methyltransferase in melatonin biosynthesis, increases rice grain yield through dual regulation of leaf senescence and vascular development
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9129082/
https://www.ncbi.nlm.nih.gov/pubmed/35189026
http://dx.doi.org/10.1111/pbi.13794
work_keys_str_mv AT huangfuliexiang oscomtencodingacaffeicacidomethyltransferaseinmelatoninbiosynthesisincreasesricegrainyieldthroughdualregulationofleafsenescenceandvasculardevelopment
AT chenrujia oscomtencodingacaffeicacidomethyltransferaseinmelatoninbiosynthesisincreasesricegrainyieldthroughdualregulationofleafsenescenceandvasculardevelopment
AT luyue oscomtencodingacaffeicacidomethyltransferaseinmelatoninbiosynthesisincreasesricegrainyieldthroughdualregulationofleafsenescenceandvasculardevelopment
AT zhangenying oscomtencodingacaffeicacidomethyltransferaseinmelatoninbiosynthesisincreasesricegrainyieldthroughdualregulationofleafsenescenceandvasculardevelopment
AT miaojun oscomtencodingacaffeicacidomethyltransferaseinmelatoninbiosynthesisincreasesricegrainyieldthroughdualregulationofleafsenescenceandvasculardevelopment
AT zuozhihao oscomtencodingacaffeicacidomethyltransferaseinmelatoninbiosynthesisincreasesricegrainyieldthroughdualregulationofleafsenescenceandvasculardevelopment
AT zhaoyu oscomtencodingacaffeicacidomethyltransferaseinmelatoninbiosynthesisincreasesricegrainyieldthroughdualregulationofleafsenescenceandvasculardevelopment
AT zhuminyan oscomtencodingacaffeicacidomethyltransferaseinmelatoninbiosynthesisincreasesricegrainyieldthroughdualregulationofleafsenescenceandvasculardevelopment
AT zhangzihui oscomtencodingacaffeicacidomethyltransferaseinmelatoninbiosynthesisincreasesricegrainyieldthroughdualregulationofleafsenescenceandvasculardevelopment
AT lipengcheng oscomtencodingacaffeicacidomethyltransferaseinmelatoninbiosynthesisincreasesricegrainyieldthroughdualregulationofleafsenescenceandvasculardevelopment
AT xuyang oscomtencodingacaffeicacidomethyltransferaseinmelatoninbiosynthesisincreasesricegrainyieldthroughdualregulationofleafsenescenceandvasculardevelopment
AT yaoyouli oscomtencodingacaffeicacidomethyltransferaseinmelatoninbiosynthesisincreasesricegrainyieldthroughdualregulationofleafsenescenceandvasculardevelopment
AT liangguohua oscomtencodingacaffeicacidomethyltransferaseinmelatoninbiosynthesisincreasesricegrainyieldthroughdualregulationofleafsenescenceandvasculardevelopment
AT xuchenwu oscomtencodingacaffeicacidomethyltransferaseinmelatoninbiosynthesisincreasesricegrainyieldthroughdualregulationofleafsenescenceandvasculardevelopment
AT zhouyong oscomtencodingacaffeicacidomethyltransferaseinmelatoninbiosynthesisincreasesricegrainyieldthroughdualregulationofleafsenescenceandvasculardevelopment
AT yangzefeng oscomtencodingacaffeicacidomethyltransferaseinmelatoninbiosynthesisincreasesricegrainyieldthroughdualregulationofleafsenescenceandvasculardevelopment