Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing, China.
Beijing Key Laboratory of Agricultural Genetic Resources and Biotechnology, Institute of Biotechnology, Beijing Academy of Agriculture and Forestry Sciences, Beijing, China.
Cell Res. 2024 Nov;34(11):763-775. doi: 10.1038/s41422-024-01012-4. Epub 2024 Sep 9.
Hybrid rice, widely planted in Asia, is pathogen resistant and has superior yields, making it a major contributor to global food security. The two-line hybrid rice system, which utilizes mutants exhibiting photo-/thermo-sensitive genic male sterility (P/TGMS), is the leading hybrid rice breeding technology. Mutations in THERMO-SENSITIVE GENIC MALE STERILE 5 (TMS5) accounts for over 95% of current TGMS lines. We previously found that tms5 carries a mutation in ribonuclease Z. Despite its importance for breeding robust rice lines, the mechanism underlying tms5-mediated TGMS remains elusive. Here, we demonstrate that TMS5 is a tRNA 2',3'-cyclic phosphatase. The tms5 mutation leads to accumulation of 2',3'-cyclic phosphate (cP)-ΔCCA-tRNAs (tRNAs without 3' CCA ended with cP), which is exacerbated by high temperatures, and reduction in the abundance of mature tRNAs, particularly alanine tRNAs (tRNA-Alas). Overexpression of tRNA-Alas in the tms5 mutant restores male fertility to 70%. Remarkably, male fertility of tms5 mutant is completely restored at high temperatures by knocking out OsVms1 which encodes the enzyme for cP-ΔCCA-tRNA generation. Our study reveals the mechanism underlying tms5-mediated TGMS in rice and provides mechanistic insight into the further improvement of TGMS in hybrid crop development.
杂交水稻在亚洲广泛种植,具有抗病原体和高产的特点,是全球粮食安全的主要贡献者。两系杂交水稻系统利用表现出光/温敏基因雄性不育(P/TGMS)的突变体,是领先的杂交水稻育种技术。THERMO-SENSITIVE GENIC MALE STERILE 5(TMS5)中的突变占当前 TGMS 系的 95%以上。我们之前发现 tms5 携带核糖核酸酶 Z 的突变。尽管它对于培育强壮的水稻品种很重要,但 tms5 介导的 TGMS 的机制仍不清楚。在这里,我们证明 TMS5 是一种 tRNA 2',3'-环磷酸酶。tms5 突变导致 2',3'-环磷酸(cP)-ΔCCA-tRNAs(没有 3'CCA 端被 cP 终止的 tRNA)的积累,这在高温下加剧,并减少成熟 tRNA 的丰度,特别是丙氨酸 tRNA(tRNA-Alas)。在 tms5 突变体中过量表达 tRNA-Alas 将雄性育性恢复到 70%。值得注意的是,通过敲除编码 cP-ΔCCA-tRNA 生成酶的 OsVms1,可使 tms5 突变体在高温下完全恢复雄性育性。我们的研究揭示了水稻中 tms5 介导的 TGMS 的机制,并为进一步改进 TGMS 在杂交作物发展中的机制提供了深入的见解。