Natural variation of WBR7 confers rice high yield and quality by modulating sucrose supply in sink organs

Author:

Shi Huan1,Yun Peng2,Zhu Yun1,Wang Lu1,Wang Yipei1,Li Pingbo3,Zhou Hao4ORCID,Cheng Shiyuan1,Liu Rongjia1,Gao Guanjun1,Zhang Qinglu1,Xiao Jinghua1,Li Yibo1ORCID,Xiong Lizhong1ORCID,You Aiqing5,He Yuqing1ORCID

Affiliation:

1. National Key Laboratory of Crop Genetic Improvement, Hubei Hongshan Laboratory Huazhong Agricultural University Wuhan China

2. Rice Research Institute, Anhui Academy of Agricultural Sciences Hefei China

3. Institute of Wetland Agriculture and Ecology, Shandong Academy of Agricultural Sciences Jinan China

4. State Key Laboratory of Crop Gene Exploration and Utilization in Southwest China Rice Research Institute, Sichuan Agricultural University Chengdu China

5. Institute of Food Crop, Hubei Academy of Agricultural Science Wuhan China

Abstract

SummaryGrain chalkiness is an undesirable trait that negatively regulates grain yield and quality in rice. However, the regulatory mechanism underlying chalkiness is complex and remains unclear. We identified a positive regulator of white‐belly rate (WBR). The WBR7 gene encodes sucrose synthase 3 (SUS3). A weak functional allele of WBR7 is beneficial in increasing grain yield and quality. During the domestication of indica rice, a functional G/A variation in the coding region of WBR7 resulted in an E541K amino acid substitution in the GT‐4 glycosyltransferase domain, leading to a significant decrease in decomposition activity of WBR7A (allele in cultivar Jin23B) compared with WBR7G (allele in cultivar Beilu130). The NIL(J23B) and knockout line NIL(BL130)KO exhibited lower WBR7 decomposition activity than that of NIL(BL130) and NIL(J23B)COM, resulting in less sucrose decomposition and metabolism in the conducting organs. This caused more sucrose transportation to the endosperm, enhancing the synthesis of storage components in the endosperm and leading to decreased WBR. More sucrose was also transported to the anthers, providing sufficient substrate and energy supply for pollen maturation and germination, ultimately leading to an increase rate of seed setting and increased grain yield. Our findings elucidate a mechanism for enhancing rice yield and quality by modulating sucrose metabolism and allocation, and provides a valuable allele for improved rice quality.

Funder

Earmarked Fund for China Agriculture Research System

National Natural Science Foundation of China

Publisher

Wiley

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