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计算和生化分析两个部分重叠界面和多个弱亲和力 K-Ras 二聚体。

Computational and biochemical characterization of two partially overlapping interfaces and multiple weak-affinity K-Ras dimers.

机构信息

University of Texas Health Science Center at Houston, Department of Integrative Biology and Pharmacology, 6431 Fannin St., Houston, Texas, 77030, USA.

University of Michigan Medical School, Department of Computational Medicine and Bioinformatics, Ann Arbor, Michigan, USA.

出版信息

Sci Rep. 2017 Jan 9;7:40109. doi: 10.1038/srep40109.

Abstract

Recent studies found that membrane-bound K-Ras dimers are important for biological function. However, the structure and thermodynamic stability of these complexes remained unknown because they are hard to probe by conventional approaches. Combining data from a wide range of computational and experimental approaches, here we describe the structure, dynamics, energetics and mechanism of assembly of multiple K-Ras dimers. Utilizing a range of techniques for the detection of reactive surfaces, protein-protein docking and molecular simulations, we found that two largely polar and partially overlapping surfaces underlie the formation of multiple K-Ras dimers. For validation we used mutagenesis, electron microscopy and biochemical assays under non-denaturing conditions. We show that partial disruption of a predicted interface through charge reversal mutation of apposed residues reduces oligomerization while introduction of cysteines at these positions enhanced dimerization likely through the formation of an intermolecular disulfide bond. Free energy calculations indicated that K-Ras dimerization involves direct but weak protein-protein interactions in solution, consistent with the notion that dimerization is facilitated by membrane binding. Taken together, our atomically detailed analyses provide unique mechanistic insights into K-Ras dimer formation and membrane organization as well as the conformational fluctuations and equilibrium thermodynamics underlying these processes.

摘要

最近的研究发现,膜结合的 K-Ras 二聚体对于生物学功能很重要。然而,由于这些复合物很难通过传统方法进行探测,因此它们的结构和热力学稳定性仍然未知。本研究结合了来自广泛的计算和实验方法的数据,描述了多个 K-Ras 二聚体的结构、动力学、热力学和组装机制。利用一系列用于检测反应表面的技术、蛋白质-蛋白质对接和分子模拟,我们发现两个主要的极性和部分重叠的表面是形成多个 K-Ras 二聚体的基础。为了验证,我们在非变性条件下使用了诱变、电子显微镜和生化分析。我们表明,通过对立侧残基的电荷反转突变部分破坏预测的界面会减少寡聚化,而在这些位置引入半胱氨酸可能通过形成分子间二硫键增强二聚化。自由能计算表明,K-Ras 二聚化涉及溶液中直接但较弱的蛋白质-蛋白质相互作用,这与膜结合促进二聚化的观点一致。总之,我们详细的原子分析为 K-Ras 二聚体形成和膜组织以及这些过程的构象波动和平衡热力学提供了独特的机制见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a266/5220301/d88f52ef68bb/srep40109-f1.jpg

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