The TaSnRK1‐TabHLH489 module integrates brassinosteroid and sugar signalling to regulate the grain length in bread wheat

油菜素甾醇 生物 信号 生物技术 遗传学 细胞生物学 农学 食品科学 基因 拟南芥 突变体
作者
Jinyang Lyu,Dongzhi Wang,Na Sun,Fan Yang,Xuepeng Li,Junyi Mu,Runxiang Zhou,Guolan Zheng,Xin Yang,Chenxuan Zhang,Chao Han,Guangmin Xia,Genying Li,Min Fan,Jun Xiao,Ming‐Yi Bai
出处
期刊:Plant Biotechnology Journal [Wiley]
卷期号:22 (7): 1989-2006 被引量:6
标识
DOI:10.1111/pbi.14319
摘要

Regulation of grain size is a crucial strategy for improving the crop yield and is also a fundamental aspect of developmental biology. However, the underlying molecular mechanisms governing grain development in wheat remain largely unknown. In this study, we identified a wheat atypical basic helix-loop-helix (bHLH) transcription factor, TabHLH489, which is tightly associated with grain length through genome-wide association study and map-based cloning. Knockout of TabHLH489 and its homologous genes resulted in increased grain length and weight, whereas the overexpression led to decreased grain length and weight. TaSnRK1α1, the α-catalytic subunit of plant energy sensor SnRK1, interacted with and phosphorylated TabHLH489 to induce its degradation, thereby promoting wheat grain development. Sugar treatment induced TaSnRK1α1 protein accumulation while reducing TabHLH489 protein levels. Moreover, brassinosteroid (BR) promotes grain development by decreasing TabHLH489 expression through the transcription factor BRASSINAZOLE RESISTANT1 (BZR1). Importantly, natural variations in the promoter region of TabHLH489 affect the TaBZR1 binding ability, thereby influencing TabHLH489 expression. Taken together, our findings reveal that the TaSnRK1α1-TabHLH489 regulatory module integrates BR and sugar signalling to regulate grain length, presenting potential targets for enhancing grain size in wheat.
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