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首页> 外文期刊>Molecular and Cellular Biology >A Novel Yeast U2 snRNP Protein, Snu17p, Is Required for the First Catalytic Step of Splicing and for Progression of Spliceosome Assembly
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A Novel Yeast U2 snRNP Protein, Snu17p, Is Required for the First Catalytic Step of Splicing and for Progression of Spliceosome Assembly

机译:一个新颖的酵母U2 snRNP蛋白,Snu17p,是拼接的第一步催化步骤和剪接体组装的进展所必需的

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We have isolated and microsequenced Snu17p, a novel yeast protein with a predicted molecular mass of 17 kDa that contains an RNA recognition motif. We demonstrate that Snu17p binds specifically to the U2 small nuclear ribonucleoprotein (snRNP) and that it is part of the spliceosome, since the pre-mRNA and the lariat-exon 2 are specifically coprecipitated with Snu17p. Although the SNU17gene is not essential, its knockout leads to a slow-growth phenotype and to a pre-mRNA splicing defect in vivo. In addition, the first step of splicing is dramatically decreased in extracts prepared from thesnu17 deletion (snu17Δ) mutant. This defect is efficiently reversed by the addition of recombinant Snu17p. To investigate the step of spliceosome assembly at which Snu17p acts, we have used nondenaturing gel electrophoresis. In Snu17p-deficient extracts, the spliceosome runs as a single slowly migrating complex. In wild-type extracts, usually at least two distinct complexes are observed: the prespliceosome, or B complex, containing the U2 but not the U1 snRNP, and the catalytically active spliceosome, or A complex, containing the U2, U6, and U5 snRNPs. Northern blot analysis and affinity purification of the snu17Δ spliceosome showed that it contains the U1, U2, U6, U5, and U4 snRNPs. The unexpected stabilization of the U1 snRNP and the lack of dissociation of the U4 snRNP suggest that loss of Snu17p inhibits the progression of spliceosome assembly prior to U1 snRNP release and after [U4/U6.U5] tri-snRNP addition.
机译:我们已分离出Snu17p并进行了微测序,Snu17p是一种新型酵母蛋白,具有17 kDa的预测分子量,包含RNA识别基序。我们证明Snu17p特异性结合U2小核糖核糖核蛋白(snRNP),它是剪接体的一部分,因为pre-mRNA和套索外显子2与Snu17p特异性共沉淀。尽管 SNU17 基因不是必需的,但其敲除会导致体内缓慢生长的表型和前mRNA剪接缺陷。此外,从 snu17 缺失( snu17 Δ)突变体制备的提取物中,剪接的第一步显着减少。通过添加重组Snu17p可有效逆转此缺陷。为了研究Snu17p起作用的剪接体组装步骤,我们使用了非变性凝胶电泳。在缺乏Snu17p的提取物中,剪接体作为单个缓慢迁移的复合体运行。在野生型提取物中,通常观察到至少两种不同的复合物:含有U2但不含U1 snRNP的前剪接体或B复合体,以及含有U2,U6和U5 snRNP的催化活性剪接体或A复合体。 Northern印迹分析和 snu17 Δ剪接体的亲和纯化表明,它包含U1,U2,U6,U5和U4 snRNP。 U1 snRNP的意外稳定和U4 snRNP缺乏解离提示Snu17p的缺失抑制了U1 snRNP释放之前和[U4 / U6.U5] tri-snRNP加入后剪接体组装的进程。

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