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Helix-length compensation studies reveal the adaptability of the VS ribozyme architecture

机译:螺旋长度补偿研究揭示了VS核酶结构的适应性

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Compensatory mutations in RNA are generally regarded as those that maintain base pairing, and their identification forms the basis of phylogenetic predictions of RNA secondary structure. However, other types of compensatory mutations can provide higher-order structural and evolutionary information. Here, we present a helix-length compensation study for investigating structure-function relationships in RNA. The approach is demonstrated for stem-loop I and stem-loop V of the Neurospora VS ribozyme, which form a kissing-loop interaction important for substrate recognition. To rapidly characterize the substrate specificity (k(cat)/K-M) of several substrate/ribozyme pairs, a procedure was established for simultaneous kinetic characterization of multiple substrates. Several active substrate/ribozyme pairs were identified, indicating the presence of limited substrate promiscuity for stem Ib variants and helix-length compensation between stems Ib and V. 3D models of the I/V interaction were generated that are compatible with the kinetic data. These models further illustrate the adaptability of the VS ribozyme architecture for substrate cleavage and provide global structural information on the I/V kissing-loop interaction. By exploring higher-order compensatory mutations in RNA our approach brings a deeper understanding of the adaptability of RNA structure, while opening new avenues for RNA research.
机译:RNA的补偿性突变通常被认为是维持碱基配对的突变,它们的鉴定形成了RNA二级结构系统发育预测的基础。但是,其他类型的代偿性突变也可以提供更高阶的结构和进化信息。在这里,我们提出了螺旋长度补偿研究,用于研究RNA中的结构-功能关系。该方法针对Neurospora VS核酶的茎-环I和茎-环V进行了证明,它们形成了对底物识别很重要的亲吻-环相互作用。为了快速表征几种底物/核酶对的底物特异性(k(cat)/ K-M),建立了同时动力学表征多种底物的程序。确定了几个活性底物/核酶对,表明茎Ib变体存在有限的底物混杂,并且茎Ib和V之间存在螺旋长度补偿。生成了与动力学数据兼容的I / V相互作用的3D模型。这些模型进一步说明了VS核酶结构对底物裂解的适应性,并提供了有关I / V接环相互作用的整体结构信息。通过探索RNA的高阶补偿性突变,我们的方法对RNA结构的适应性有了更深入的了解,同时为RNA研究开辟了新途径。

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