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Early splicing functions of fission yeast Prp16 and its unexpected requirement for gene Silencing is governed by intronic features

机译:裂变酵母PRP16的早期剪接功能及其对基因沉默的意外要求受内文特征的管辖

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Prp16 is a DEAH box pre-mRNA splicing factor that triggers a key spliceosome conformational switch to facilitate second step splicing in Saccharomyces cerevisiae. However, Prp16 functions are largely unexplored in Schizosaccharomyces pombe, an attractive model with exon-intron architecture more relevant to several other eukaryotes. Here, we generated mis-sense alleles in SpPrp16 whose consequences on genome-wide splicing uncover its nearly global splicing role with only a small subset of unaffected introns. Prp16 dependent and independent intron categories displayed a striking difference in the strength of intronic 5MODIFIER LETTER PRIME splice site (5'SS)-U6 snRNA and branch site (BS)-U2 snRNA interactions. Selective weakening of these interactions could convert a Prp16 dependent intron into an independent one. These results point to the role of SpPrp16 in destabilizing 5'SS-U6snRNA and BS-U2snRNA interactions which plausibly trigger structural alterations in the spliceosome to facilitate first step catalysis. Our data suggest that SpPrp16 interactions with early acting factors, its enzymatic activities and association with intronic elements collectively account for efficient and accurate first step catalysis. In addition to splicing derangements in the spprp16F528S mutant, we show that SpPrp16 influences cell cycle progression and centromeric heterochromatinization. We propose that strong 5'SS-U6 snRNA and BS-U2 snRNA complementarity of intron-like elements in non-coding RNAs which lead to complete splicing arrest and impaired Seb1 functions at the pericentromeric loci may cumulatively account for the heterochromatin defects in spprp16F528S cells. These findings suggest that the diverse Prp16 functions within a genome are likely governed by its intronic features that influence splice site-snRNA interaction strength.
机译:PRP16是一种DEAH盒前mRNA剪接因子,触发键抗磷瘤组构象开关,以促进酿酒酵母中的第二步剪接。然而,PRP16功能在Schizosaccharomyces Pombe中大部分是未开发的,这是一个有吸引力的模型,其中外显子系统的建筑与其他几种真核生物更相关。在这里,我们在SPPRP16中产生了错误感觉等位基因,其对基因组的剪接后果揭示了其几乎全球拼接作用,只有小的未受影响内含子的小子。 PRP16依赖和独立的内含子类别呈现出inntrone 5modifier字母的强度引人注目的差异,PRIME剪接位点(5's)-u6 SNRNA和分支位点(BS)-u2 SNRNA相互作用。这些相互作用的选择性弱化可以将PRP16依赖的内含子转换为独立的。这些结果指出了SPPRP16在不稳定的5'S-U6SNRNA和BS-U2SNRNA相互作用中的作用,这些相互作用在抗乳头组中触发结构改变以促进第一步催化。我们的数据表明,SPPRP16与早期代理因素的相互作用,其酶活性和内肾内容结合共同占高效准确的第一步催化。除了SPPRP16F528S突变体中的剪接紊乱外,我们还表明SPPRP16影响细胞周期进展和浓缩异质体化。我们提出了在非编码RNA中的Intron-u6 SnRNA和BS-U2 SnRNA和BS-U2 SnRNA互补性,所述内含子样元素导致脑大致基因座的完全剪接捕获和受损的SEB1功能可以累积占SPPRP16F528S细胞中的异铬胺缺陷。这些发现表明,基因组内的多样化PRP16功能可能受其影响接头位点-SnRNA相互作用强度的内血清特征来治理。

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