数字农科院2.0

BTA2 regulates tiller angle and the shoot gravity response through controlling auxin content and distribution in rice

文献类型: 外文期刊

作者: Li, Zhen;Ye, Junhua;Yuan, Qiaoling;Zhang, Mengchen;Wang, Xingyu;Wang, Jing;Wang, Tianyi;Qian, Hongge;Wei, Xinghua;Yang, Yaolong;Shang, Lianguang;Feng, Yue

作者机构:

关键词: auxin;domestication;gravity response;rice;tiller angle

期刊名称: JOURNAL OF INTEGRATIVE PLANT BIOLOGY

ISSN: 1672-9072

年卷期: 2024 年

页码:

收录情况: SCIE(2024版) ; ; CSCD(2023-2024年度) ; ; 科技核心(2024版)

摘要: Tiller angle is a key agricultural trait that establishes plant architecture, which in turn strongly affects grain yield by influencing planting density in rice. The shoot gravity response plays a crucial role in the regulation of tiller angle in rice, but the underlying molecular mechanism is largely unknown. Here, we report the identification of the BIG TILLER ANGLE2 (BTA2), which regulates tiller angle by controlling the shoot gravity response in rice. Loss-of-function mutation of BTA2 dramatically reduced auxin content and affected auxin distribution in rice shoot base, leading to impaired gravitropism and therefore a big tiller angle. BTA2 interacted with AUXIN RESPONSE FACTOR7 (ARF7) to modulate rice tiller angle through the gravity signaling pathway. The BTA2 protein was highly conserved during evolution. Sequence variation in the BTA2 promoter of indica cultivars harboring a less expressed BTA2 allele caused lower BTA2 expression in shoot base and thus wide tiller angle during rice domestication. Overexpression of BTA2 significantly increased grain yield in the elite rice cultivar Huanghuazhan under appropriate dense planting conditions. Our findings thus uncovered the BTA2-ARF7 module that regulates tiller angle by mediating the shoot gravity response. Our work offers a target for genetic manipulation of plant architecture and valuable information for crop improvement by producing the ideal plant type.

分类号:

  • 相关文献

[1]Precise tiller angle control by manipulating TAC1 expression in rice. Yin, Tao,Tai, Yuxin,Sun, Yao,Cheng, Zixiang,Wu, Chuanyin,Sui, Yi. 2025

[2]水稻淡褐斑叶突变体lbsll的遗传分析与基因定位. 奉保华,杨杨,施勇烽,林璐,陈洁,黄奇娜,魏彦林,HeiLEUNG,吴建利. 2012

[3]OsBTF3转基因水稻对病原茵侵染的反应和防卫基因的表达分析. 陈华民,吴茂森,何晨阳. 2012

[4]Auxin regulates source-sink carbohydrate partitioning and reproductive organ development in rice. Zhao Z.,Wang C.,Yu X.,Tian Y.,Wang W.,Zhang Y.,Bai W.,Yang N.,Zhang T.,Zheng H.,Wang Q.,Lu J.,Lei D.,He X.,Chen K.,Gao J.,Liu X.,Liu S.,Jiang L.,Wang H.,Wan J.. 2022

[5]Auxin Transporter OsPIN1b, a Novel Regulator of Leaf Inclination in Rice (Oryza sativa L.). Zhang Y.,Han S.,Lin Y.,Qiao J.,Han N.,Li Y.,Feng Y.,Li D.,Qi Y.. 2023

[6]NLG1, encoding a mitochondrial membrane protein, controls leaf and grain development in rice. Yi Wen,Kaixiong Wu,Bingze Chai,Yunxia Fang,Peng Hu,Yiqing Tan,Yueying Wang,Hao Wu,Junge Wang,Li Zhu,Guangheng Zhang,Zhenyu Gao,Deyong Ren,Dali Zeng,Lan Shen,Guojun Dong,Qiang Zhang,Qing Li,Qian Qian,Jiang Hu. 2023

[7]Increased expression of OsSAUR23 and OsRR9 regulates rice plant and organ size. Suhua Huang,Baoyuan Zhou,Zhuohan Gao,Hao Li,Zaisong Ding. 2025

[8]Characterization of the genome expression trends in the heading-stage panicle of six rice lineages. Zhi-Yu Peng , Huiyong Zhang +, Tingting Liu , Katherine M. Dzikiewicz , Songgang Li , Xiangfeng Wang , Guocheng Hu , Zhengge Zhu , Xinghua Wei , Qi-Hui Zhu , Zongxiu Sun , Song Ge , Ligeng Ma , Lei Li *, Xing-Wang Deng *. 2009

[9]Comparative analysis of the transcriptomes of two rice subspecies during domestication. 逄洪波,,陈强,,李悦莹,,王泽,,吴龙坤杨庆文,,郑晓明. 2021

[10]Advances in Rice Seed Shattering. Hao Wu,Qi He,Quan Wang. 2023

[11]Genome-Wide Identification and Characterization of the PPPDE Gene Family in Rice. Wangmin Lian,Xiaodeng Zhan,Daibo Chen,Weixun Wu,Qunen Liu,Yinxing Zhang,Shihua Cheng,Xiangyang Lou,Liyong Cao,Yongbo Hong. 2024

[12]COLD6-OSM1 module senses chilling for cold tolerance via 2′,3′-cAMP signaling in rice. Wei Luo,Yunyuan Xu,Jie Cao,Xiaoyu Guo,Jingdan Han,Yuanyuan Zhang,Yuda Niu,Meiling Zhang,Yi Wang,Guohua Liang,Qian Qian,Song Ge,Kang Chong. 2024

[13]Mapping and characterization of a tiller-spreading mutant lazy-2 in rice. Li, PJ,Zeng, DL,Liu, XF,Xu, D,Gu, D,Li, JY,Qian, Q.

[14]LAZY1 controls rice shoot gravitropism through regulating polar auxin transport. Peijin Li , Yonghong Wang +, Qian Qian +, Zhiming Fu , Mei Wang , Dali Zeng (2), Baohua Li , Xiujie Wang , Jiayang Li *. 2007

[15]Genetic basis underlying tiller angle in rice (Oryza sativa L.) by genome-wide association study. Bai, Shaoxing,Hong, Jun,Su, Su,Li, Zhikang,Wang, Wensheng,Shi, Jianxin,Liang, Wanqi,Zhang, Dabing. 2022

[16]Fine Mapping of Major qTAC8c for Tiller Angle in Oryza rufipogon. Fan, Yongyi,Chen, Hongmei,Wang, Hong,Xue, Pao,Lian, Wangmin,Wu, Weixun,Liu, Qunen,Zhan, Xiaodeng,Cheng, Shihua,Cao, Liyong,Zhang, Yingxin. 2024

[17]Genetic regulation of wheat plant architecture and future prospects for its improvement. Aaqib Shaheen,Zheng Li,Yingying Yang,Jinjin Xie,Lele Zhu,Can Li,Fang Nie,Meng Wang,Yixian Wang,Awais Rasheed,Hao Li,Yun Zhou,Chun Peng Song. 2024

[18]Genetic diversity within Oryza rufipogon germplasms preserved in Chinese field gene banks of wild rice as revealed by microsatellite markers. Zhang, Chi-Hong,Li, Dao-Yuan,Pan, Da-Jian,Jia, Ji-Zeng,Dong, Yu-Shen.

[19]Identification of natural allelic variation in TTL1 controlling thermotolerance and grain size by a rice super pan-genome. Lin, Yarong,Zhu, Yiwang,Cui, Yuchao,Qian, Hongge,Yuan, Qiaoling,Chen, Rui,Lin, Yan,Chen, Jianmin,Zhou, Xishi,Shi, Chuanlin,He, Huiying,Hu, Taijiao,Gu, Chenbo,Yu, Xiaoman,Zhu, Xiying,Wang, Yuexing,Qian, Qian,Zhang, Cuijun,Wang, Feng,Shang, Lianguang. 2023

[20]Auxin Controlled By Ethylene Steers R.oot Development. Qin, Hua,Qin, Hua,Huang, Rongfeng,Huang, Rongfeng. 2018

作者其他论文 更多>>