Deciphering the Transcriptional Regulatory Network Governing Starch and Storage Protein Biosynthesis in Wheat for Breeding Improvement

Author:

Zhao Long12,Chen Jinchao12,Zhang Zhaoheng12,Wu Wenying12,Lin Xuelei1,Gao Mingxiang3,Yang Yiman14,Zhao Peng15,Xu Shengbao5,Yang Changfeng6,Yao Yingyin6,Zhang Aimin13,Liu Dongcheng3,Wang Dongzhi1ORCID,Xiao Jun127ORCID

Affiliation:

1. Key Laboratory of Plant Cell and Chromosome Engineering Institute of Genetics and Developmental Biology Chinese Academy of Sciences Beijing 100101 China

2. College of Advanced Agricultural Sciences University of Chinese Academy of Sciences Beijing 100049 China

3. State Key Laboratory of North China Crop Improvement and Regulation Hebei Agricultural University Baoding Hebei 071001 China

4. State Key Laboratory of Crop Genetics & Germplasm Enhancement and Utilization Nanjing Agricultural University Nanjing Jiangsu 210095 China

5. State Key Laboratory for Crop Stress Resistance and High‐Efficiency Production College of Agronomy Northwest A&F University Yangling 712100 China

6. State Key Laboratory for Agrobiotechnology, Key Laboratory of Crop Heterosis Utilization (MOE) China Agricultural University Beijing 100193 China

7. Centre of Excellence for Plant and Microbial Science (CEPAMS) JIC‐CAS Beijing 100101 China

Abstract

AbstractStarch and seed storage protein (SSP) composition profoundly impact wheat grain yield and quality. To unveil regulatory mechanisms governing their biosynthesis, transcriptome, and epigenome profiling is conducted across key endosperm developmental stages, revealing that chromatin accessibility, H3K27ac, and H3K27me3 collectively regulate SSP and starch genes with varying impact. Population transcriptome and phenotype analyses highlight accessible promoter regions’ crucial role as a genetic variation resource, influencing grain yield and quality in a core collection of wheat accessions. Integration of time‐serial RNA‐seq and ATAC‐seq enables the construction of a hierarchical transcriptional regulatory network governing starch and SSP biosynthesis, identifying 42 high‐confidence novel candidates. These candidates exhibit overlap with genetic regions associated with grain size and quality traits, and their functional significance is validated through expression‐phenotype association analysis among wheat accessions and loss‐of‐function mutants. Functional analysis of wheat abscisic acid insensitive 3‐A1 (TaABI3‐A1) with genome editing knock‐out lines demonstrates its role in promoting SSP accumulation while repressing starch biosynthesis through transcriptional regulation. Excellent TaABI3‐A1Hap1 with enhanced grain weight is selected during the breeding process in China, linked to altered expression levels. This study unveils key regulators, advancing understanding of SSP and starch biosynthesis regulation and contributing to breeding enhancement.

Funder

National Key Research and Development Program of China

Publisher

Wiley

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