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Mutations in an essential U2 small nuclear RNA structure cause cold-sensitive U2 small nuclear ribonucleoprotein function by favoring competing alternative U2 RNA structures.

机译:必需的U2小核RNA结构中的突变通过促进竞争性替代性U2 RNA结构而引起冷敏感的U2小核核糖核蛋白功能。

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摘要

Mutations in stem-loop IIa of yeast U2 RNA cause cold-sensitive growth and cold-sensitive U2 small nuclear ribonucleoprotein function in vitro. Cold-sensitive U2 small nuclear RNA adopts an alternative conformation that occludes the loop and disrupts the stem but does so at both restrictive and permissive temperatures. To determine whether alternative U2 RNA structure causes the defects, we tested second-site mutations in U2 predicted to disrupt the alternative conformation. We find that such mutations efficiently suppress the cold-sensitive phenotypes and partially restore correct U2 RNA folding. A genetic search for additional suppressors of cold sensitivity revealed two unexpected mutations in the base of an adjacent stem-loop. Direct probing of RNA structure in vivo indicates that the suppressors of cold sensitivity act to improve the stability of the essential stem relative to competing alternative structures by disrupting the alternative structures. We suggest that many of the numerous cold-sensitive mutations in a variety of RNAs and RNA-binding proteins could be a result of changes in the stability of a functional RNA conformation relative to a competing structure. The presence of an evolutionarily conserved U2 sequence positioned to form an alternative structure argues that this region of U2 is dynamic during the assembly or function of the U2 small nuclear ribonucleoprotein.
机译:酵母U2 RNA的茎环IIa中的突变导致冷敏感的生长和冷敏感的U2小核核糖核蛋白功能在体外。对冷敏感的U2小核RNA采取了另一种构象,即闭环并破坏茎,但在限制性温度和允许温度下均如此。为了确定替代的U2 RNA结构是否引起缺陷,我们测试了预期会破坏替代构象的U2中的第二位点突变。我们发现,这种突变有效地抑制了冷敏感的表型,并部分恢复了正确的U2 RNA折叠。通过基因搜索寻找其他的冷敏感抑制因子,发现相邻茎环基部有两个意想不到的突变。体内RNA结构的直接探测表明,相对于竞争性替代结构,冷敏感性抑制剂通过破坏替代结构来提高必需茎的稳定性。我们建议,在各种RNA和RNA结合蛋白中的众多冷敏感突变中的许多可能是功能性RNA构象相对于竞争结构的稳定性变化的结果。定位为形成替代结构的进化保守的U2序列的存在表明,U2的这一区域在U2小核糖核糖蛋白的装配或功能过程中是动态的。

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