An E3 ubiquitin ligase CSIT2 controls critical sterility‐inducing temperature of thermo‐sensitive genic male sterile rice

Author:

Peng Guoqing12ORCID,Liu Minglong1ORCID,Luo Ziliang3ORCID,Deng Shuangfan1ORCID,Wang Qinghua1ORCID,Wang Mumei1ORCID,Chen Huiqiong1ORCID,Xiao Yueping1ORCID,Zhang Yongjie1ORCID,Hong Haona1ORCID,Zhu Liya1ORCID,Liu Zhenlan1ORCID,Zhou Lingyan2ORCID,Wang Yingxiang1ORCID,Zhuang Chuxiong1ORCID,Zhou Hai1ORCID

Affiliation:

1. State Key Laboratory for Conservation and Utilization of Subtropical Agro‐bioresources, Guangdong Laboratory for Lingnan Modern Agriculture, Key Laboratory for Enhancing Resource Use Efficiency of Crops in South China, Ministry of Agriculture and Rural Affairs College of Life Sciences, South China Agricultural University Guangzhou 510642 China

2. College of Agriculture & Biology Zhongkai University of Agriculture and Engineering Guangzhou 510225 China

3. Agronomy Department University of Florida Gainesville FL 32610 USA

Abstract

Summary Thermo‐sensitive genic male sterile (TGMS) lines are the core of two‐line hybrid rice (Oryza sativa). However, elevated or unstable critical sterility‐inducing temperatures (CSITs) of TGMS lines are bottlenecks that restrict the development of two‐line hybrid rice. However, the genes and molecular mechanisms controlling CSIT remain unknown. Here, we report the CRITICAL STERILITY‐INDUCING TEMPERATURE 2 (CSIT2) that encodes a really interesting new gene (RING) type E3 ligase, controlling the CSIT of thermo‐sensitive male sterility 5 (tms5)‐based TGMS lines through ribosome‐associated protein quality control (RQC). CSIT2 binds to the large and small ribosomal subunits and ubiquitinates 80S ribosomes for dissociation, and may also ubiquitinate misfolded proteins for degradation. Mutation of CSIT2 inhibits the possible damage to ubiquitin system and protein translation, which allows more proteins such as catalases to accumulate for anther development and inhibits abnormal accumulation of reactive oxygen species (ROS) and premature programmed cell death (PCD) in anthers, partly rescuing male sterility and raised the CSIT of tms5‐based TGMS lines. These findings reveal a mechanism controlling CSIT and provide a strategy for solving the elevated or unstable CSITs of tms5‐based TGMS lines in two‐line hybrid rice.

Funder

Natural Science Foundation of Guangdong Province

National Natural Science Foundation of China

China Postdoctoral Science Foundation

Publisher

Wiley

Subject

Plant Science,Physiology

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