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Genome-wide mRNA processing in methanogenic archaea reveals post-transcriptional regulation of ribosomal protein synthesis

机译:甲烷型古代的基因组 - 宽mRNA加工显示核糖体蛋白合成的转录后调节

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Unlike stable RNAs that require processing for maturation, prokaryotic cellular mRNAs generally follow an 'all-or-none' pattern. Herein, we used a 5' monophosphate transcript sequencing (5'P-seq) that specifically captured the 5'-end of processed transcripts and mapped the genome-wide RNA processing sites (PSSs) in a methanogenic archaeon. Following statistical analysis and stringent filtration, we identified 1429 PSSs, among which 23.5% and 5.4% were located in 5' untranslated region (uPSS) and intergenic region (iPSS), respectively. A predominant uridine downstream PSSs served as a processing signature. Remarkably, 5'P-seq detected overrepresented uPSS and iPSS in the polycistronic operons encoding ribosomal proteins, and the majority upstream and proximal ribosome binding sites, suggesting a regulatory role of processing on translation initiation. The processed transcripts showed increased stability and translation efficiency. Particularly, processing within the tricistronic transcript of rplA-rplJ-rplL enhanced the translation of rplL, which can provide a driving force for the 1:4 stoichiometry of L10 to L12 in the ribosome. Growth-associated mRNA processing intensities were also correlated with the cellular ribosomal protein levels, thereby suggesting that mRNA processing is involved in tuning growth-dependent ribosome synthesis. In conclusion, our findings suggest that mRNA processing-mediated post-transcriptional regulation is a potential mechanism of ribosomal protein synthesis and stoichiometry.
机译:与需要处理成熟的稳定RNA不同,原核蜂窝MRNA通常遵循“全部或无”模式。在此,我们使用了5'单磷酸盐转录物测序(5'P-SEQ),其特异性地捕获了加工转录物的5'-末端,并在甲状腺原酸甲基中映射了基因组的RNA加工位点(PSS)。在统计分析和严格过滤之后,我们鉴定了1429 pss,其中23.5%和5.4%分别位于5'未翻译区(UPS)和非基因区域(IPS)中。主要尿苷下游PSS作为处理签名。值得注意的是,5'P-SEQ检测到编码核科蛋白质的多函减子和IPS的超人血液和IPS,以及大多数上游和近端核糖体结合位点,表明加工在翻译引起的调节作用。加工的转录物表现出增加的稳定性和翻译效率。特别地,RPLA-RPLJ-RPL1的三分泌转录物内的处理增强了RPL的平移,其可以为核糖体中的L10至L12的1:4化学计量提供驱动力。生长相关的mRNA处理强度也与细胞核糖体蛋白水平相关,从而表明mRNA加工参与调节生长依赖性核糖体合成。总之,我们的研究结果表明mRNA加工介导的转录后调节是核糖体蛋白合成和化学计量的潜在机制。

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