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A long noncoding RNA regulates photoperiod-sensitive male sterility, an essential component of hybrid rice

机译:较长的非编码RNA调节对光周期敏感的雄性不育,这是杂交水稻的重要组成部分

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摘要

Hybrid rice has greatly contributed to the global increase of rice productivity. A major component that facilitated the development of hybrids was a mutant showing photoperiod-sensitive male sterility (PSMS) with its fertility regulated by day length. Transcriptome studies have shown that large portions of the eukaryotic genomic sequences are transcribed to long noncoding RNAs (lncRNAs). However, the potential roles for only a few lncRNAs have been brought to light at present. Thus, great efforts have to be invested to understand the biological functions of lncRNAs. Here we show that a lncRNA of 1,236 bases in length, referred to as long-day–specific male-fertility–associated RNA (LDMAR), regulates PSMS in rice. We found that sufficient amount of the LDMAR transcript is required for normal pollen development of plants grown under long-day conditions. A spontaneous mutation causing a single nucleotide polymorphism (SNP) between the wild-type and mutant altered the secondary structure of LDMAR. This change brought about increased methylation in the putative promoter region of LDMAR, which reduced the transcription of LDMAR specifically under long-day conditions, resulting in premature programmed cell death (PCD) in developing anthers, thus causing PSMS. Thus, a lncRNA could directly exert a major effect on a trait like a structure gene, and a SNP could alter the function of a lncRNA similar to amino acid substitution in structural genes. Molecular elucidating of PSMS has important implications for understanding molecular mechanisms of photoperiod regulation of many biological processes and also for developing male sterile germplasms for hybrid crop breeding.
机译:杂交水稻为全球水稻生产力的提高做出了巨大贡献。促进杂种发育的主要成分是突变体,其表现出对光周期敏感的雄性不育(PSMS),其受性受日长的调节。转录组研究表明,真核基因组序列的很大一部分被转录为长的非编码RNA(lncRNA)。然而,目前仅揭示了几种lncRNA的潜在作用。因此,必须付出巨大的努力来了解lncRNA的生物学功能。在这里,我们显示了长度为1,236个碱基的lncRNA(称为长日特异性雄性育性相关RNA(LDMAR))调节水稻的PSMS。我们发现,在长日照条件下生长的植物的正常花粉发育需要足够量的LDMAR转录本。导致野生型和突变体之间的单核苷酸多态性(SNP)的自发突变改变了LDMAR的二级结构。这种变化在LDMAR的推定启动子区域中引起了甲基化的增加,从而特别是在长期条件下降低了LDMAR的转录,导致发育中的花药中过早程序性细胞死亡(PCD),从而引起PSMS。因此,lncRNA可以直接对结构基因等性状产生重大影响,而SNP可以改变lncRNA的功能,类似于结构基因中的氨基酸替代。 PSMS的分子阐明对于理解许多生物过程的光周期调节的分子机制以及开发用于杂交作物育种的雄性不育种质具有重要意义。

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