PAM1 regulates meiosis by coupling RNA processing to the chromosome axis

减数分裂 生物 遗传学 染色体分离 前期 基因 细胞生物学 同源重组 转录组 RNA结合蛋白 突触 遗传重组 染色体 同源染色体 减数分裂细胞 基因表达 选择性拼接 RNA剪接 康德星 核糖核酸 基因表达调控 有性生殖 染色体交叉 减数分裂驱动 功能(生物学)
作者
Qian Du,Minghui Wang,Choon-Lin Tiang,Moira J. Sheehan,Paul Altendorf,Ju‐Kyung Yu,Otto Hudecz,Elisabeth Roitinger,Rachel Wang,Robert Bukowski,Robert Meeley,Clint Ko,Inna Golubovskaya,Wojciech P. Pawlowski
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:123 (20): e2535316123-e2535316123
标识
DOI:10.1073/pnas.2535316123
摘要

Meiosis is a fundamental process responsible for sexual reproduction and generating genetic diversity in the progeny. Its successful completion requires fine-tuning of expression programs of many genes: promoting expression of genes involved in meiotic processes and suppressing genes whose expression may interfere with meiosis. Molecular mechanisms involved in meiotic transcriptome regulation and controlling meiosis progression vary between plants, animals, and fungi and remain elusive. We found that the Plural abnormalities of meiosis1 ( Pam1 ) gene in maize controls meiosis progression by tethering transcriptome processing to the meiosis-specific chromosome axis. Pam1 encodes an RNA binding protein that becomes associated with chromosomes during early meiotic prophase I, binds transcripts of a large number of meiosis-related genes, and affects their splicing by interacting with the CCR4-NOT RNA processing protein complex. Disrupting Pam1 function results in a wide array of severe meiosis defects affecting chromosome condensation and dynamics, nuclear envelope and cytoskeleton organization, as well as the overall meiosis progression. Pam1 controls only a subset of meiotic genes and processes, indicating that several programs directing transcriptome architecture collectively regulate meiosis. RNA-binding proteins have been found to control meiosis progression in fungi and animals, and it is now shown to be also the case in plants. Interestingly, these proteins all exhibit distinct modes of action and evolutionary origins, presenting a remarkable case of convergent evolution. Uncovering mechanisms controlling meiosis progression should enable engineering meiosis to benefit crop improvement efforts.
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