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

Author:

Lyu Jinyang1,Wang Dongzhi2ORCID,Sun Na1,Yang Fan1,Li Xuepeng1,Mu Junyi1,Zhou Runxiang1,Zheng Guolan1,Yang Xin1,Zhang Chenxuan1,Han Chao1,Xia Guang‐Min1,Li Genying3ORCID,Fan Min1,Xiao Jun245ORCID,Bai Ming‐Yi1ORCID

Affiliation:

1. The Key Laboratory of Plant Development and Environmental Adaptation Biology, Ministry of Education, School of Life Sciences Shandong University Qingdao China

2. State Key Laboratory of Plant Cell and Chromosome Engineering, Institute of Genetics and Developmental Biology Chinese Academy of Sciences Beijing China

3. Crop Research Institute Shandong Academy of Agricultural Sciences Jinan China

4. University of Chinese Academy of Sciences Beijing China

5. Centre of Excellence for Plant and Microbial Science (CEPAMS) JIC‐CAS Beijing China

Abstract

SummaryRegulation 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.

Funder

National Key Research and Development Program of China

Natural Science Foundation of Shandong Province

Agricultural Variety Improvement Project of Shandong Province

Publisher

Wiley

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