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使用木村补偿适应性相互作用模型分析脊椎动物内含子中RNA二级结构的演变。

Analyzing the evolution of RNA secondary structures in vertebrate introns using Kimura's model of compensatory fitness interactions.

作者信息

Piskol Robert, Stephan Wolfgang

机构信息

Department of Biology II, Section of Evolutionary Biology, Ludwig-Maximilians-University, Munich, Germany.

出版信息

Mol Biol Evol. 2008 Nov;25(11):2483-92. doi: 10.1093/molbev/msn195. Epub 2008 Sep 4.

Abstract

Previous studies have shown that splicing efficiency, and thus maturation of pre-mRNA, depends on the correct folding of the RNA molecule into a secondary or higher order structure. When disrupted by a mutation, aberrant folding may result in a lower splicing efficiency. However, the structure can be restored by a second, compensatory mutation. Here, we present a logistic regression approach to analyze the evolutionary dynamics of RNA secondary structures. We apply our approach to a set of computationally predicted RNA secondary structures in vertebrate introns. Our results are consistent with the hypothesis of a negative influence of the physical distance between pairing nucleotides on the occurrence of covariations, as predicted by Kimura's model of compensatory evolution. We also confirm the hypothesis that longer local secondary structure elements (helices) can accommodate a larger number of covariations, wobbles, and mismatches. Furthermore, we find that wobbles and mismatches are more frequent in the middle of a helix, whereas covariations occur preferentially at the helix ends. The GC content is a major determinant of this pattern.

摘要

先前的研究表明,剪接效率以及前体mRNA的成熟取决于RNA分子正确折叠成二级或更高级结构。当因突变而被破坏时,异常折叠可能导致较低的剪接效率。然而,该结构可通过第二个补偿性突变得以恢复。在此,我们提出一种逻辑回归方法来分析RNA二级结构的进化动力学。我们将我们的方法应用于一组脊椎动物内含子中通过计算预测的RNA二级结构。我们的结果与木村补偿进化模型所预测的配对核苷酸之间的物理距离对共变发生有负面影响的假设一致。我们还证实了以下假设:更长的局部二级结构元件(螺旋)能够容纳更多的共变、摆动和错配。此外,我们发现摆动和错配在螺旋中间更为频繁,而共变则优先出现在螺旋末端。GC含量是这种模式的主要决定因素。

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