首页> 美国卫生研究院文献>International Journal of Molecular Sciences >Molecular Dynamics Simulations and Dynamic Network Analysis Reveal the Allosteric Unbinding of Monobody to H-Ras Triggered by R135K Mutation
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Molecular Dynamics Simulations and Dynamic Network Analysis Reveal the Allosteric Unbinding of Monobody to H-Ras Triggered by R135K Mutation

机译:分子动力学模拟和动态网络分析揭示了单体与R135K突变触发的H-Ras的变构解键。

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摘要

Ras proteins, as small GTPases, mediate cell proliferation, survival and differentiation. Ras mutations have been associated with a broad spectrum of human cancers and thus targeting Ras represents a potential way forward for cancer therapy. A recently reported monobody NS1 allosterically disrupts the Ras-mediated signaling pathway, but its efficacy is reduced by R135K mutation in H-Ras. However, the detailed mechanism is unresolved. Here, using molecular dynamics (MD) simulations and dynamic network analysis, we explored the molecular mechanism for the unbinding of NS1 to H-Ras and shed light on the underlying allosteric network in H-Ras. MD simulations revealed that the overall structures of the two complexes did not change significantly, but the H-Ras–NS1 interface underwent significant conformational alteration in the mutant Binding free energy analysis showed that NS1 binding was unfavored after R135K mutation, which resulted in the unfavorable binding of NS1. Furthermore, the critical residues on H-Ras responsible for the loss of binding of NS1 were identified. Importantly, the allosteric networks for these important residues were revealed, which yielded a novel insight into the allosteric regulatory mechanism of H-Ras.
机译:Ras蛋白(如小GTP酶)介导细胞增殖,存活和分化。 Ras突变与广泛的人类癌症相关,因此靶向Ras代表了癌症治疗的潜在方法。最近报道的单体NS1变构破坏Ras介导的信号传导途径,但其功效因H-Ras中的R135K突变而降低。但是,详细的机制尚未解决。在这里,我们使用分子动力学(MD)模拟和动态网络分析,探索了NS1与H-Ras解除结合的分子机制,并阐明了H-Ras中潜在的变构网络。 MD模拟显示,两个复合物的整体结构没有明显变化,但H-Ras–NS1界面在突变体中发生了显着的构象变化。结合自由能分析表明,R135K突变后NS1结合受到不利影响,从而导致了不利的影响。结合NS1。此外,鉴定了导致NS1结合丧失的H-Ras上的关键残基。重要的是,揭示了这些重要残基的变构网络,这对H-Ras的变构调控机制产生了新颖的见解。

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