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Tiller Angle Control 1 Is Essential for the Dynamic Changes in Plant Architecture in Rice

Plant architecture is dynamic as plants develop. Although many genes associated with specific plant architecture components have been identified in rice, genes related to underlying dynamic changes in plant architecture remain largely unknown. Here, we identified two highly similar recombinant inbre...

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Autores principales: Wang, Hong, Tu, Ranran, Sun, Lianping, Wang, Dongfei, Ruan, Zheyan, Zhang, Yue, Peng, Zequn, Zhou, Xingpeng, Fu, Junlin, Liu, Qunen, Wu, Weixun, Zhan, Xiaodeng, Shen, Xihong, Zhang, Yingxin, Cao, Liyong, Cheng, Shihua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9105778/
https://www.ncbi.nlm.nih.gov/pubmed/35563391
http://dx.doi.org/10.3390/ijms23094997
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author Wang, Hong
Tu, Ranran
Sun, Lianping
Wang, Dongfei
Ruan, Zheyan
Zhang, Yue
Peng, Zequn
Zhou, Xingpeng
Fu, Junlin
Liu, Qunen
Wu, Weixun
Zhan, Xiaodeng
Shen, Xihong
Zhang, Yingxin
Cao, Liyong
Cheng, Shihua
author_facet Wang, Hong
Tu, Ranran
Sun, Lianping
Wang, Dongfei
Ruan, Zheyan
Zhang, Yue
Peng, Zequn
Zhou, Xingpeng
Fu, Junlin
Liu, Qunen
Wu, Weixun
Zhan, Xiaodeng
Shen, Xihong
Zhang, Yingxin
Cao, Liyong
Cheng, Shihua
author_sort Wang, Hong
collection PubMed
description Plant architecture is dynamic as plants develop. Although many genes associated with specific plant architecture components have been identified in rice, genes related to underlying dynamic changes in plant architecture remain largely unknown. Here, we identified two highly similar recombinant inbred lines (RILs) with different plant architecture: RIL-Dynamic (D) and RIL-Compact (C). The dynamic plant architecture of RIL-D is characterized by ‘loose(tiller angle) (tillering stage)–compact (heading stage)–loose(curved stem) (maturing stage)’ under natural long-day (NLD) conditions, and ‘loose(tiller angle) (tillering and heading stages)–loose(tiller angle and curved stem) (maturing stage)’ under natural short-day (NSD) conditions, while RIL-C exhibits a compact plant architecture both under NLD and NSD conditions throughout growth. The candidate locus was mapped to the chromosome 9 tail via the rice 8K chip assay and map-based cloning. Sequencing, complementary tests, and gene knockout tests demonstrated that Tiller Angle Control 1 (TAC1) is responsible for dynamic plant architecture in RIL-D. Moreover, TAC1 positively regulates loose plant architecture, and high TAC1 expression cannot influence the expression of tested tiller-angle-related genes. Our results reveal that TAC1 is necessary for the dynamic changes in plant architecture, which can guide improvements in plant architecture during the modern super rice breeding.
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spelling pubmed-91057782022-05-14 Tiller Angle Control 1 Is Essential for the Dynamic Changes in Plant Architecture in Rice Wang, Hong Tu, Ranran Sun, Lianping Wang, Dongfei Ruan, Zheyan Zhang, Yue Peng, Zequn Zhou, Xingpeng Fu, Junlin Liu, Qunen Wu, Weixun Zhan, Xiaodeng Shen, Xihong Zhang, Yingxin Cao, Liyong Cheng, Shihua Int J Mol Sci Article Plant architecture is dynamic as plants develop. Although many genes associated with specific plant architecture components have been identified in rice, genes related to underlying dynamic changes in plant architecture remain largely unknown. Here, we identified two highly similar recombinant inbred lines (RILs) with different plant architecture: RIL-Dynamic (D) and RIL-Compact (C). The dynamic plant architecture of RIL-D is characterized by ‘loose(tiller angle) (tillering stage)–compact (heading stage)–loose(curved stem) (maturing stage)’ under natural long-day (NLD) conditions, and ‘loose(tiller angle) (tillering and heading stages)–loose(tiller angle and curved stem) (maturing stage)’ under natural short-day (NSD) conditions, while RIL-C exhibits a compact plant architecture both under NLD and NSD conditions throughout growth. The candidate locus was mapped to the chromosome 9 tail via the rice 8K chip assay and map-based cloning. Sequencing, complementary tests, and gene knockout tests demonstrated that Tiller Angle Control 1 (TAC1) is responsible for dynamic plant architecture in RIL-D. Moreover, TAC1 positively regulates loose plant architecture, and high TAC1 expression cannot influence the expression of tested tiller-angle-related genes. Our results reveal that TAC1 is necessary for the dynamic changes in plant architecture, which can guide improvements in plant architecture during the modern super rice breeding. MDPI 2022-04-30 /pmc/articles/PMC9105778/ /pubmed/35563391 http://dx.doi.org/10.3390/ijms23094997 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
Wang, Hong
Tu, Ranran
Sun, Lianping
Wang, Dongfei
Ruan, Zheyan
Zhang, Yue
Peng, Zequn
Zhou, Xingpeng
Fu, Junlin
Liu, Qunen
Wu, Weixun
Zhan, Xiaodeng
Shen, Xihong
Zhang, Yingxin
Cao, Liyong
Cheng, Shihua
Tiller Angle Control 1 Is Essential for the Dynamic Changes in Plant Architecture in Rice
title Tiller Angle Control 1 Is Essential for the Dynamic Changes in Plant Architecture in Rice
title_full Tiller Angle Control 1 Is Essential for the Dynamic Changes in Plant Architecture in Rice
title_fullStr Tiller Angle Control 1 Is Essential for the Dynamic Changes in Plant Architecture in Rice
title_full_unstemmed Tiller Angle Control 1 Is Essential for the Dynamic Changes in Plant Architecture in Rice
title_short Tiller Angle Control 1 Is Essential for the Dynamic Changes in Plant Architecture in Rice
title_sort tiller angle control 1 is essential for the dynamic changes in plant architecture in rice
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9105778/
https://www.ncbi.nlm.nih.gov/pubmed/35563391
http://dx.doi.org/10.3390/ijms23094997
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