tRNA selectivity during ribosome-associated quality control regulates the critical sterility-inducing temperature in two-line hybrid rice
Abstract
The two-line hybrid rice system, a cutting-edge hybrid rice breeding technology, has greatly boosted global food security. In thermo-sensitive genic male sterile (TGMS) lines, the critical sterility-inducing temperature (CSIT; the temperature at which TGMS lines change from male fertile to complete male sterile) acts as a key threshold. We recently uncovered that thermo-sensitive genic male sterility 5 ( tms5 ), a sterile locus presenting in over 95% of TGMS lines, leads to the overaccumulation of 2′,3′-cyclic phosphate (cP)-ΔCCA-tRNAs and a deficiency of mature tRNAs, which underlies the molecular mechanism of tms5 -mediated TGMS. However, there are a few reports on the regulatory mechanism controlling CSIT. Here, we identified a suppressor of tms5 , an amino acid substitution (T552I) in the rice Rqc2 (ribosome-associated quality control 2), increases the CSIT in tms5 lines through its C-terminal alanine and threonine modification (CATylation) activity. This substitution alters tRNA selectivity, leading to the recruitment of different tRNAs to the A-site of ribosome and CATylation rate by OsRqc2 during ribosome-associated quality control (RQC), a process that rescues stalled ribosomes and degrades abnormal nascent chains during translational elongation. Further, the mutation restores the levels of mature tRNA-Ser/Ile to increase the CSIT of tms5 lines. Our findings reveal the origin of overaccumulated cP-ΔCCA-tRNAs in tms5 lines, further deepening our understanding of the regulatory network in governing CSIT of TGMS lines containing tms5.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (20)
Can Zhou
Laboratory of Advanced Breeding Technologies, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences
Chunyan Liu
Laboratory of Advanced Materials, College of Smart Materials and Future Energy (iCOME)
Bin Yan
Institute of Genetics and Developmental Biology, Chinese Academy of Sciences
Jing Sun
Shengdong Li
Institute of Genetics and Developmental Biology, Chinese Academy of Sciences
Ji Li
Jia Wang
Xiahe Huang
Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, University of Chinese Academy of Sciences
Wei Yan
Shuying Yang
Institute of Genetics and Developmental Biology, Chinese Academy of Sciences
Chenjian Fu
Yuan Longping High-tech Agriculture Co., Ltd.
Peng Qin
Xingxue Fu
Yuan Longping High-tech Agriculture Co., Ltd.
Xinghui Zhao
Yuan Longping High-tech Agriculture Co., Ltd.
Yaxian Wu
Yuan Longping High-tech Agriculture Co., Ltd.
Xianwei Song
Institute of Genetics and Developmental Biology, Chinese Academy of Sciences
Yingchun Wang
Wenfeng Qian
Institute of Genetics and Developmental Biology, Chinese Academy of Sciences
Yuanzhu Yang
Yuan Longping High-tech Agriculture Co., Ltd.
Xiaofeng Cao
Laboratory of Advanced Breeding Technologies, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences