tRNA selectivity during ribosome-associated quality control regulates the critical sterility-inducing temperature in two-line hybrid rice

C Can Zhou (Laboratory of Advanced Breeding Technologies, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences) C Chunyan Liu (Laboratory of Advanced Materials, College of Smart Materials and Future Energy (iCOME)) B Bin Yan (Institute of Genetics and Developmental Biology, Chinese Academy of Sciences) J Jing Sun S Shengdong Li (Institute of Genetics and Developmental Biology, Chinese Academy of Sciences) J Ji Li J Jia Wang X Xiahe Huang (Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, University of Chinese Academy of Sciences) W Wei Yan S Shuying Yang (Institute of Genetics and Developmental Biology, Chinese Academy of Sciences) C Chenjian Fu (Yuan Longping High-tech Agriculture Co., Ltd.) P Peng Qin X Xingxue Fu (Yuan Longping High-tech Agriculture Co., Ltd.) X Xinghui Zhao (Yuan Longping High-tech Agriculture Co., Ltd.) Y Yaxian Wu (Yuan Longping High-tech Agriculture Co., Ltd.) X Xianwei Song (Institute of Genetics and Developmental Biology, Chinese Academy of Sciences) Y Yingchun Wang W Wenfeng Qian (Institute of Genetics and Developmental Biology, Chinese Academy of Sciences) Y Yuanzhu Yang (Yuan Longping High-tech Agriculture Co., Ltd.) X Xiaofeng Cao (Laboratory of Advanced Breeding Technologies, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences)

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

Volume / Issue Vol. 122, Issue 6
Published February 11, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (20)

C

Can Zhou

Laboratory of Advanced Breeding Technologies, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences

C

Chunyan Liu

Laboratory of Advanced Materials, College of Smart Materials and Future Energy (iCOME)

B

Bin Yan

Institute of Genetics and Developmental Biology, Chinese Academy of Sciences

J

Jing Sun

S

Shengdong Li

Institute of Genetics and Developmental Biology, Chinese Academy of Sciences

J

Ji Li

J

Jia Wang

X

Xiahe Huang

Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, University of Chinese Academy of Sciences

W

Wei Yan

S

Shuying Yang

Institute of Genetics and Developmental Biology, Chinese Academy of Sciences

C

Chenjian Fu

Yuan Longping High-tech Agriculture Co., Ltd.

P

Peng Qin

X

Xingxue Fu

Yuan Longping High-tech Agriculture Co., Ltd.

X

Xinghui Zhao

Yuan Longping High-tech Agriculture Co., Ltd.

Y

Yaxian Wu

Yuan Longping High-tech Agriculture Co., Ltd.

X

Xianwei Song

Institute of Genetics and Developmental Biology, Chinese Academy of Sciences

Y

Yingchun Wang

W

Wenfeng Qian

Institute of Genetics and Developmental Biology, Chinese Academy of Sciences

Y

Yuanzhu Yang

Yuan Longping High-tech Agriculture Co., Ltd.

X

Xiaofeng Cao

Laboratory of Advanced Breeding Technologies, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences