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Accumulation of noncoding RNA due to an RNase P defect in Saccharomyces cerevisiae.

机译:由于酿酒酵母中RNase P缺陷而导致非编码RNA的积累。

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摘要

Ribonuclease P (RNase P) is an essential endoribonuclease that catalyzes the cleavage of the 5' leader of pre-tRNAs. In addition, a growing number of non-tRNA substrates have been identified in various organisms. RNase P varies in composition, as bacterial RNase P contains a catalytic RNA core and one protein subunit, while eukaryotic nuclear RNase P retains the catalytic RNA but has at least nine protein subunits. The additional eukaryotic protein subunits most likely provide additional functionality to RNase P, with one possibility being additional RNA recognition capabilities. To investigate the possible range of additional RNase P substrates in vivo, a strand-specific, high-density microarray was used to analyze what RNA accumulates with a mutation in the catalytic RNA subunit of nuclear RNase P in Saccharomyces cerevisiae. A wide variety of noncoding RNAs were shown to accumulate, suggesting that nuclear RNase P participates in the turnover of normally unstable nuclear RNAs. In some cases, the accumulated noncoding RNAs were shown to be antisense to transcripts that commensurately decreased in abundance. Pre-mRNAs containing introns also accumulated broadly, consistent with either compromised splicing or failure to efficiently turn over pre-mRNAs that do not enter the splicing pathway. Taken together with the high complexity of the nuclear RNase P holoenzyme and its relatively nonspecific capacity to bind and cleave mixed sequence RNAs, these data suggest that nuclear RNase P facilitates turnover of nuclear RNAs in addition to its role in pre-tRNA biogenesis.
机译:核糖核酸酶P(RNase P)是一种必不可少的核糖核酸内切酶,可催化前tRNA的5'前导序列的切割。另外,在各种生物中已经鉴定出越来越多的非tRNA底物。 RNase P的组成各不相同,因为细菌RNase P包含催化性RNA核心和一个蛋白质亚基,而真核核RNase P保留了催化性RNA,但至少具有9个蛋白质亚基。额外的真核蛋白质亚基极有可能为RNase P提供额外的功能,其中一种可能是额外的RNA识别功能。为了研究体内其他RNase P底物的可能范围,使用链特异性高密度微阵列分析了酿酒酵母中RNA积聚的RNA核糖核酸酶P催化RNA亚基中的突变。大量非编码RNA积累起来,表明核RNase P参与了正常不稳定核RNA的转换。在某些情况下,累积的非编码RNA被证明与相应地丰度降低的转录本是反义的。含有内含子的pre-mRNA也在广泛积累,这与剪接受损或无法有效翻转未进入剪接途径的pre-mRNA一致。连同核糖核酸酶P全酶的高度复杂性及其结合和切割混合序列RNA的相对非特异性能力,这些数据表明,核糖核酸酶P除了在tRNA前生物发生中的作用外,还促进了核糖核酸的更新。

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