数字农科院2.0

The F-box protein RCN127 enhances rice tillering and grain yield by mediating the degradation of OsTB1 and OsTCP19

文献类型: 外文期刊

作者: Miao, Rong;Wang, Xin;Feng, Miao;Cheng, Zhijun;Shao, Jiale;Zhou, Chunlei;Qian, Jinsheng;Luo, Yajing;Luo, Wenfan;Luo, Sheng;Lei, Bin;Liu, Xin;Li, Shuai;Ling, Yimin;Wang, Jian;Luo, Tong;Ren, Yulong;Lei, Cailin;Zhu, Shanshan;Zhao, Zhichao;Jiang, Ling;Lin, Qibing;Wan, Jianmin

作者机构:

关键词: rice (Oryza sativa L.);RCN127;tillering;grain yield;OsTB1;OsTCP19

期刊名称: PLANT BIOTECHNOLOGY JOURNAL

ISSN: 1467-7644

年卷期: 2025 年

页码:

收录情况: SCIE(2025版)

摘要: Tillering ability is a crucial agronomic trait that determines rice yield potential. OsTB1 (the rice ortholog of TEOSINTE BRANCHED 1) and OsTCP19 of the TCP protein family are two key repressors of rice tillering. Until now, their post-translational regulatory mechanisms have remained elusive. In this study, we identified the F-box protein RCN127 as a novel post-translational regulator that promotes rice tillering by targeting them for degradation. The rcn127 mutant exhibits reduced tillering. The target gene RCN127 encodes an F-box protein that localizes in both the nucleus and cytoplasm, with higher expression levels in roots, stem bases, and young panicles. We demonstrate that RCN127 physically interacts with both OsTB1 and OsTCP19, mediating their ubiquitination and subsequent degradation via the 26S proteasome pathway. This reduction in OsTB1 and OsTCP19 protein levels weakens their suppression on tillering, leading to significantly increased tiller numbers. Importantly, RCN127-mediated regulation enhances grain yield in both the model variety Nipponbare and the dominant cultivated variety LJ31, providing a promising strategy for yield improvement. Therefore, our study unveils a novel post-translational regulatory mechanism of TCP protein family, providing a new strategy to increase grain yield by enhancing rice tillering capacity.

分类号:

  • 相关文献

[1]Genetic Dissection for Leaf Correlative Traits of Rice (Oryza sativa L.)Under Drought Stress. Guo Longbiao,Qian Qian,Zeng Dali,Dong Guojun,Teng Sheng,Zhu Lihuang. 2004

[2]Ipa1 Functions As A Downstream T.ranscription Factor Repressed By D 53 In Strigolactone Signaling In Rice. Lu, Zefu,Song, Xiaoguang,Shao, Gaoneng,Xiong, Jinsong,Duan, Jingbo,Jing, Yanhui,Meng, Xiangbing,Xiong, Guosheng,Li, Jiayang,Lu, Zefu,Meng, Xiangbing,Xiong, Jinsong,Song, Xiaoguang,Wang, Yonghong,Yu, Hong,Shao, Gaoneng,Xiong, Jinsong,Xiong, Guosheng,Li, Jiayang,Yao, Xue-Feng,Jing, Yanhui,Xiong, Guosheng,Lu, Zefu,Liu, Guifu,Li, Jiayang,Duan, Jingbo,Liu, Guifu,Yu, Hong,Liu, Chun-Ming,Li, Hongqing,Wang, Yonghong,Shao, Gaoneng. 2017

[3]The PIN1 family gene PvPIN1 is involved in auxin-dependent root emergence and tillering in switchgrass. Kaijie Xu,Fengli Sun,Yongfeng Wang,Lili Shi,Shudong Liu,Yajun Xi. 2016

[4]De novo assembly and transcriptome analysis of two contrary tillering mutants to learn the mechanisms of tillers outgrowth in switchgrass (Panicum virgatum L.). Kaijie Xu,Fengli Sun,Guaiqiang Chai,Yongfeng Wang,Lili Shi,Shudong Liu,Yajun Xi. 2015

[5]Alteration of osa-miR156e expression affects rice plant architecture and strigolactones (SLs) pathway. Chen, Zhihui,Gao, Xinqiang,Zhang, Jian,Chen, Zhihui,Gao, Xinqiang,Zhang, Jian,Chen, Zhihui,Zhang, Jian.

[6]Identification and functional analysis of the MOC1 interacting protein 1. Fengli Sun , Weiping Zhang , Guosheng Xiong , Meixian Yan , Qian Qian , Jiayang Li , Yonghong Wang *. 2010

[7]MULTI-TILLERING DWARF1, a new allele of BRITTLE CULM 12, affects plant height and tiller in rice. Haiping Yu (2), Deyong Ren +, Yangzhou Zhu (2)+, Jiangmin Xu , Yuexing Wang , Ruifang Liu , Yunxia Fang , Zhenyuan Shi , Jiangjie Pan , Mei Lu , Bojun Ma , Jiang Hu *, Yuchun Rao (2)*. 2016

[8]The Carotenoid Cleavage Dioxygenase Gene CCD7-B, at Large, Is Associated with Tillering in Common Wheat. Wenlong Yang,Ameer Ahmed Mirbahar,Muhammad Shoaib,Xueyuan Lou,Linhe Sun,Jiazhu Sun,Kehui Zhan,Aimin Zhang. 2022

[9]Genome-Wide Association Analysis of Effective Tillers in Rice under Different Nitrogen Gradients. Yuzhuo Liu,Wei Xin,Liqiang Chen,Yuqi Liu,Xue Wang,Cheng Ma,Laiyuan Zhai,Yingying Feng,Jiping Gao,Wenzhong Zhang. 2024

[10]Influence of leaf inclination angle and tillering on population transpiration, soil evaporation, and yield in winter wheat near-isogenic lines. Huang, Guirong,Zhang, Xinying,Wang, Zhenzhao,Liu, Xiaoying,Guo, Rui,Gu, Fengxue,Liu, Enke,Li, Shuying,Zhong, Xiuli,Li, Qiaozhen,Mei, Xurong. 2024

[11]Strigolactones Regulate Sugar Allocation to Control Rice Tillering and Root Development via the OsSPL14-OsSHR1-OsSWEET16 Pathway. Feng, Miao,Luo, Wenfan,Luo, Sheng,Miao, Rong,Gu, Manpo,Li, Shuai,Xing, Xinxin,Zhang, Jinhui,Qian, Jinsheng,Liu, Xin,Zhou, Chunlei,Sun, Qi,Luo, Tong,Chen, Nuo,Ren, Yulong,Cheng, Zhijun,Lei, Cailin,Zhao, Zhichao,Zhu, Shanshan,Wang, Xin,Guo, Xiuping,Lin, Qibing,Wan, Jianmin. 2025

[12]Effects of inorganic fertilizer inputs on grain yields and soil properties in a long-term wheat-corn cropping system in south China. Zhang, Huimin,Wang, Boren,Xu, Minggang,Zhang, Huimin,Wang, Boren,Xu, Minggang,Zhang, Huimin. 2008

[13]Mitigating nitrous oxide emissions from a maize-cropping black soil in northeast China by a combination of reducing chemical N fertilizer application and applying manure in autumn. Guo, Yanling,Chen, Guanxiong,Kou, Yongping,Xu, Hui,Guo, Yanling,Kou, Yongping,Luo, Liangguo. 2013

[14]Regional distribution of nitrogen fertilizer use and N-saving potential for improvement of food production and nitrogen use efficiency in China. Wang, Xiaobin,Cai, Dianxiong,Cai, Dianxiong,Hoogmoed, Willem B.,Oenema, Oene. 2011

[15]Genome-wide meta-analysis of maize heterosis reveals the potential role of additive gene expression at pericentromeric loci. Thiemann, Alexander,Seifert, Felix,Scholten, Stefan,Fu, Junjie,Grant-Downton, Robert T.,Schrag, Tobias A.,Melchinger, Albrecht E.,Scholten, Stefan,Pospisil, Heike,Frisch, Matthias. 2014

[16]Growth, yield and quality of wheat and cotton in relay strip intercropping systems. z. 2007

[17]Genome-wide association for grain yield under rainfed conditions in historical wheat cultivars from Pakistan. Ain, Qurat-ul,Anwar, Alia,Mahmood, Tariq,Quraishi, Umar M.,Rasheed, Awais,Xia, Xianchun,He, Zhonghu,Rasheed, Awais,He, Zhonghu,Mahmood, Tariq,Imtiaz, Muhammad. 2015

[18]QTL Mapping for Grain Yield Conditioned on its Component Traits in Two RIL Populations of Bread Wheat. Ding, A. M.,Cui, F.,Li, J.,Zhao, C. H.,Qi, X. L.,Bao, Y. G.,Li, X. F.,Wang, H. G.,Ding, A. M.,Cui, F.,Li, J.,Wang, L.. 2013

[19]Molecular characterization and expression analysis of Triticum aestivum squamosa-promoter binding protein-box genes involved in ear development. Zhang, Bin,Liu, Xia,Zhao, Guangyao,Mao, Xinguo,Li, Ang,Jing, Ruilian,Liu, Xia. 2014

[20]Increased grain yield with improved photosynthetic characters in modern maize parental lines. Li Cong-feng,Tao Zhi-qiang,Zhao Ming,Liu Peng,Zhang Ji-wang,Dong Shu-ting,Zhuang Ke-zhang. 2015

作者其他论文 更多>>