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Kinetic analysis of the role of the tyrosine 13, phenylalanine 56 and glutamine 54 network in the U1A/U1 hairpin II interaction

机译:动力学分析酪氨酸13,苯丙氨酸56和谷氨酰胺54网络在U1A / U1发夹II相互作用中的作用

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摘要

The A protein of the U1 small nuclear ribonucleoprotein particle, interacting with its stem-loop RNA target ( U1hpII), is frequently used as a paradigm for RNA binding by recognition motif domains (RRMs). U1A/ U1hpII complex formation has been proposed to consist of at least two steps: electrostatically mediated alignment of both molecules followed by locking into place, based on the establishment of close-range interactions. The sequence of events between alignment and locking remains obscure. Here we examine the roles of three critical residues, Tyr13, Phe56 and Gln54, in complex formation and stability using Biacore. Our mutational and kinetic data suggest that Tyr13 plays a more important role than Phe56 in complex formation. Mutational analysis of Gln54, combined with molecular dynamics studies, points to Arg52 as another key residue in association. Based on our data and previous structural and modeling studies, we propose that electrostatic alignment of the molecules is followed by hydrogen bond formation between the RNA and Arg52, and the sequential establishment of interactions with loop bases ( including Tyr13). Aquadruple stack, sandwiching two bases between Phe56 and Asp92, would occur last and coincide with the rearrangement of a C-terminal helix that partially occludes the RRM surface in the free protein.
机译:U1小核糖核蛋白颗粒的A蛋白与其茎环RNA靶标(U1hpII)相互作用,经常被用作识别基序域(RRM)与RNA结合的范例。 U1A / U1hpII复合物的形成已建议包括至少两个步骤:基于近距离相互作用的建立,两个分子的静电介导比对,然后锁定到位。对准和锁定之间的事件顺序仍然不清楚。在这里,我们检查了三个关键残基Tyr13,Phe56和Gln54在使用Biacore的复合物形成和稳定性中的作用。我们的突变和动力学数据表明,Tyr13在复合物形成中起着比Phe56更重要的作用。 Gln54的突变分析,结合分子动力学研究,指出Arg52是另一个重要的残基。根据我们的数据以及先前的结构和模型研究,我们建议分子的静电排列后,是在RNA和Arg52之间形成氢键,以及与环碱基(包括Tyr13)的相互作用的顺序建立。在Phe56和Asp92之间夹着两个碱基的四联体堆叠会最后出现,并且与C末端螺旋的重排一致,该重排部分阻塞了游离蛋白质中的RRM表面。

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