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首页> 外文期刊>Journal of Molecular Biology >Structure and thermodynamics of metal binding in the P5 helix of a group I intron ribozyme.
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Structure and thermodynamics of metal binding in the P5 helix of a group I intron ribozyme.

机译:I组内含子核酶P5螺旋中金属结合的结构和热力学。

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The solution structure of an RNA hairpin modelling the P5 helix of a group I intron, complexed with Co(NH3)63+, has been determined by nuclear magnetic resonance. Co(NH3)63+, which possesses a geometry very close to Mg(H2O)62+, was used to identify and characterize a Mg2+binding site in the RNA. Strong and positive intermolecular nuclear Overhauser effect (NOE) cross-peaks define a specific complex in which the Co(NH3)63+molecule is in the major groove of tandem G.U base-pairs. The structure of the RNA is characterized by a very low twist angle between the two G.U base-pairs, providing a flat and narrowed major groove. The Co(NH3)63+, although highly localized, is free to rotate to hydrogen bond in several ways to the O4 atoms of the uracil bases and to N7 and O6 of the guanine bases. Negative and small NOE cross-peaks to other protons in the sequence reveal a non-specific or delocalized interaction, characterized by a high mobility of the cobalt ion. Mn2+titrations of P5 show specific broadening of protons of the G.U base-pairs that form the metal ion binding site, in agreement with the NOE data from Co(NH3)63+. Binding constants for the interaction of Co(NH3)63+and of Mg2+to P5 were determined by monitoring imino proton chemical shifts during titration of the RNA with the metal ions. Dissociation constants are on the order of 0.1 mM for Co(NH3)63+and 1 mM for Mg2+. Binding studies were done on mutants with sequences corresponding to the three orientations of tandem G.U base-pairs. The affinities of Co(NH3)63+and Mg2+for the tandem G.U base-pairs depend strongly on their sequences; the differences can be understood in terms of the different structures of the corresponding metal ion-RNA complexes. Substitution of G.C or A.U for G.U pairs also affected the binding, as expected. These structural and thermodynamic results provide systematic new information about major groove metal ion binding in RNA. Copyright 1999 Academic Press.
机译:已通过核磁共振确定了模拟I型内含子的P5螺旋与Co(NH3)63+复合的RNA发夹的溶液结构。 Co(NH3)63+具有非常接近Mg(H2O)62+的几何形状,用于鉴定和表征RNA中的Mg2 +结合位点。强而正的分子间核Overhauser效应(NOE)交叉峰定义了一个特定的复合物,其中Co(NH3)63+分子位于串联G.U碱基对的主要凹槽中。 RNA的结构特征是两个G.U碱基对之间的扭曲角非常低,从而提供了一个平坦而狭窄的主沟。 Co(NH3)63+虽然高度局限,但可以自由旋转以几种方式与尿嘧啶碱基的O4原子以及鸟嘌呤碱基的N7和O6形成氢键。与序列中其他质子相反且较小的NOE交叉峰显示出非特异性或非定域相互作用,其特征在于钴离子的高迁移率。与来自Co(NH3)63+的NOE数据一致,P5的Mn2 +滴定显示形成金属离子结合位点的G.U碱基对的质子的特定增宽。 Co(NH3)63+和Mg2 +与P5相互作用的结合常数是通过监测在用金属离子滴定RNA的过程中亚氨基质子化学位移来确定的。离解常数对于Co(NH3)63+约为0.1 mM,对于Mg2 +约为1 mM。在突变体上进行了结合研究,该突变体的序列对应于串联G.U碱基对的三个方向。 Co(NH3)63+和Mg2 +对串联G.U碱基对的亲和力在很大程度上取决于其序列。可以根据相应的金属离子-RNA复合物的不同结构来理解差异。正如预期的那样,用G.C或A.U替换G.U对也影响了结合。这些结构和热力学结果提供了有关RNA中主要沟金属离子结合的系统新信息。版权所有1999,学术出版社。

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