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不同类型RNA识别基序的热力学RNA结合特征的比较分析。

Comparative analyses of the thermodynamic RNA binding signatures of different types of RNA recognition motifs.

作者信息

Samatanga Brighton, Cléry Antoine, Barraud Pierre, Allain Frédéric H-T, Jelesarov Ilian

机构信息

Institute of Molecular Biology and Biophysics, Swiss Federal Institute of Technology, CH-8093 Zurich, Switzerland.

Department of Biochemistry, University of Zürich, Wintherthurerstrasse 190, CH-8057 Zurich, Switzerland.

出版信息

Nucleic Acids Res. 2017 Jun 2;45(10):6037-6050. doi: 10.1093/nar/gkx136.

DOI:10.1093/nar/gkx136
PMID:28334819
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5449602/
Abstract

RNA recognition motifs (RRMs) are structurally versatile domains important in regulation of alternative splicing. Structural mechanisms of sequence-specific recognition of single-stranded RNAs (ssRNAs) by RRMs are well understood. The thermodynamic strategies are however unclear. Therefore, we utilized microcalorimetry and semi-empirical analyses to comparatively analyze the cognate ssRNA binding thermodynamics of four different RRM domains, each with a different RNA binding mode. The different binding modes are: canonical binding to the β-sheet surface; canonical binding with involvement of N- and C-termini; binding to conserved loops; and binding to an α-helix. Our results identify enthalpy as the sole and general force driving association at physiological temperatures. Also, networks of weak interactions are a general feature regulating stability of the different RRM-ssRNA complexes. In agreement, non-polyelectrolyte effects contributed between ∼75 and 90% of the overall free energy of binding in the considered complexes. The various RNA binding modes also displayed enormous heat capacity differences, that upon dissection revealed large differential changes in hydration, conformations and dynamics upon binding RNA. Altogether, different modes employed by RRMs to bind cognate ssRNAs utilize various thermodynamics strategies during the association process.

摘要

RNA识别基序(RRMs)是在可变剪接调控中起重要作用的结构多样的结构域。RRMs对单链RNA(ssRNAs)进行序列特异性识别的结构机制已得到充分了解。然而,其热力学策略尚不清楚。因此,我们利用微量热法和半经验分析,对四个不同的RRM结构域与同源ssRNA结合的热力学进行了比较分析,每个结构域都有不同的RNA结合模式。不同的结合模式为:与β-折叠表面的典型结合;涉及N端和C端的典型结合;与保守环的结合;以及与α-螺旋的结合。我们的结果表明,在生理温度下,焓是驱动结合的唯一和普遍力量。此外,弱相互作用网络是调节不同RRM-ssRNA复合物稳定性的一个普遍特征。与此一致的是,在所考虑的复合物中,非聚电解质效应贡献了约75%至90%的总结合自由能。各种RNA结合模式还表现出巨大的热容差异,经剖析发现,结合RNA时在水合、构象和动力学方面存在很大的差异变化。总之,RRMs结合同源ssRNAs的不同模式在结合过程中利用了各种热力学策略。

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