LAZY3 interacts with LAZY2 to regulate tiller angle by modulating shoot gravity perception in rice

Author:

Cai Yueyue12ORCID,Huang Linzhou3ORCID,Song Yuqi4ORCID,Yuan Yundong4ORCID,Xu Shuo12ORCID,Wang Xueping12ORCID,Liang Yan4ORCID,Zhou Jie1ORCID,Liu Guifu1ORCID,Li Jiayang12ORCID,Wang Wenguang4ORCID,Wang Yonghong124ORCID

Affiliation:

1. Institute of Genetics and Developmental Biology, Chinese Academy of Sciences Beijing China

2. University of Chinese Academy of Sciences Beijing China

3. College of Advanced Agricultural Sciences Zhejiang A&F University Hangzhou China

4. State Key Laboratory of Crop Biology, College of Life Sciences Shandong Agricultural University Tai’an China

Abstract

SummaryStarch biosynthesis in gravity‐sensing tissues of rice shoot determines the magnitude of rice shoot gravitropism and thus tiller angle. However, the molecular mechanism underlying starch biosynthesis in rice gravity‐sensing tissues is still unclear. We characterized a novel tiller angle gene LAZY3 (LA3) in rice through map‐based cloning. Biochemical, molecular and genetic studies further demonstrated the essential roles of LA3 in gravity perception of rice shoot and tiller angle control. The shoot gravitropism and lateral auxin transport were defective in la3 mutant upon gravistimulation. We showed that LA3 encodes a chloroplast‐localized tryptophan‐rich protein associated with starch granules via Tryptophan‐rich region (TRR) domain. Moreover, LA3 could interact with the starch biosynthesis regulator LA2, determining starch granule formation in shoot gravity‐sensing tissues. LA3 and LA2 negatively regulate tiller angle in the same pathway acting upstream of LA1 to mediate asymmetric distribution of auxin. Our study defined LA3 as an indispensable factor of starch biosynthesis in rice gravity‐sensing tissues that greatly broadens current understanding in the molecular mechanisms underlying the starch granule formation in gravity‐sensing tissues, and provides new insights into the regulatory mechanism of shoot gravitropism and rice tiller angle.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Plant Science,Agronomy and Crop Science,Biotechnology

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