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力诱导的RNA错误折叠

Force-induced misfolding in RNA.

作者信息

Manosas M, Junier I, Ritort F

机构信息

Departament de Física Fonamental, Facultat de Física, Universitat de Barcelona, Diagonal 647, 08028 Barcelona, Spain.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2008 Dec;78(6 Pt 1):061925. doi: 10.1103/PhysRevE.78.061925. Epub 2008 Dec 31.

Abstract

RNA folding is a kinetic process governed by the competition of a large number of structures stabilized by the transient formation of base pairs that may induce complex folding pathways and the formation of misfolded structures. Despite its importance in modern biophysics, the current understanding of RNA folding kinetics is limited by the complex interplay between the weak base pair interactions that stabilize the native structure and the disordering effect of thermal forces. The possibility of mechanically pulling individual molecules offers a new perspective to understand the folding of nucleic acids. Here we investigate the folding and misfolding mechanism in RNA secondary structures pulled by mechanical forces. We introduce a model based on the identification of the minimal set of structures that reproduce the patterns of force-extension curves obtained in single molecule experiments. The model requires only two fitting parameters: the attempt frequency at the level of individual base pairs and a parameter associated to a free-energy correction that accounts for the configurational entropy of an exponentially large number of neglected secondary structures. We apply the model to interpret results recently obtained in pulling experiments in the three-helix junction S15 RNA molecule (RNAS15). We show that RNAS15 undergoes force-induced misfolding where force favors the formation of a stable non-native hairpin. The model reproduces the pattern of unfolding and refolding force-extension curves, the distribution of breakage forces, and the misfolding probability obtained in the experiments.

摘要

RNA折叠是一个动力学过程,由大量通过碱基对瞬时形成而稳定的结构之间的竞争所支配,这些碱基对可能诱导复杂的折叠途径并形成错误折叠的结构。尽管其在现代生物物理学中很重要,但目前对RNA折叠动力学的理解受到稳定天然结构的弱碱基对相互作用与热力的无序效应之间复杂相互作用的限制。机械拉伸单个分子的可能性为理解核酸折叠提供了一个新视角。在这里,我们研究了机械力作用下RNA二级结构中的折叠和错误折叠机制。我们引入了一个基于识别最小结构集的模型,该模型能重现单分子实验中获得的力-伸长曲线模式。该模型仅需要两个拟合参数:单个碱基对水平的尝试频率和一个与自由能校正相关的参数,该参数考虑了大量被忽略的二级结构的构象熵。我们应用该模型来解释最近在三螺旋连接S15 RNA分子(RNAS15)的拉伸实验中获得的结果。我们表明,RNAS15会发生力诱导的错误折叠,其中力有利于形成稳定的非天然发夹结构。该模型重现了展开和重新折叠的力-伸长曲线模式、断裂力分布以及实验中获得的错误折叠概率。

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