Synergy and anti-cooperativity in allostery: Molecular dynamics study of WT and oncogenic KRAS-RGL1.

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
ACS Applied Electronic Materials Pub Date : 2024-05-01 Epub Date: 2023-12-28 DOI:10.1002/prot.26657
Aysima Hacisuleyman, Burak Erman
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引用次数: 0

Abstract

This study focuses on investigating the effects of an oncogenic mutation (G12V) on the stability and interactions within the KRAS-RGL1 protein complex. The KRAS-RGL1 complex is of particular interest due to its relevance to KRAS-associated cancers and the potential for developing targeted drugs against the KRAS system. The stability of the complex and the allosteric effects of specific residues are examined to understand their roles as modulators of complex stability and function. Using molecular dynamics simulations, we calculate the mutual information, MI, between two neighboring residues at the interface of the KRAS-RGL1 complex, and employ the concept of interaction information, II, to measure the contribution of a third residue to the interaction between interface residue pairs. Negative II indicates synergy, where the presence of the third residue strengthens the interaction, while positive II suggests anti-cooperativity. Our findings reveal that MI serves as a dominant factor in determining the results, with the G12V mutation increasing the MI between interface residues, indicating enhanced correlations due to the formation of a more compact structure in the complex. Interestingly, although II plays a role in understanding three-body interactions and the impact of distant residues, it is not significant enough to outweigh the influence of MI in determining the overall stability of the complex. Nevertheless, II may nonetheless be a relevant factor to consider in future drug design efforts. This study provides valuable insights into the mechanisms of complex stability and function, highlighting the significance of three-body interactions and the impact of distant residues on the binding stability of the complex. Additionally, our findings demonstrate that constraining the fluctuations of a third residue consistently increases the stability of the G12V variant, making it challenging to weaken complex formation of the mutated species through allosteric manipulation. The novel perspective offered by this approach on protein dynamics, function, and allostery has potential implications for understanding and targeting other protein complexes involved in vital cellular processes. The results contribute to our understanding of the effects of oncogenic mutations on protein-protein interactions and provide a foundation for future therapeutic interventions in the context of KRAS-associated cancers and beyond.

异构中的协同与反协同:WT 和致癌 KRAS-RGL1 的分子动力学研究。
这项研究的重点是调查致癌突变(G12V)对 KRAS-RGL1 蛋白复合物内部稳定性和相互作用的影响。由于 KRAS-RGL1 复合物与 KRAS 相关癌症的相关性以及开发针对 KRAS 系统的靶向药物的潜力,该复合物尤其引人关注。我们研究了复合物的稳定性和特定残基的异构效应,以了解它们作为复合物稳定性和功能调节剂的作用。利用分子动力学模拟,我们计算了 KRAS-RGL1 复合物界面上两个相邻残基之间的相互信息 MI,并采用相互作用信息 II 的概念来衡量第三个残基对界面残基对之间相互作用的贡献。负的 II 表示协同作用,即第三个残基的存在加强了相互作用,而正的 II 则表示反协同作用。我们的研究结果表明,MI 是决定结果的主要因素,G12V 突变增加了界面残基之间的 MI,表明由于在复合物中形成了更紧凑的结构,相关性增强。有趣的是,虽然 II 在理解三体相互作用和远处残基的影响方面发挥了作用,但它在决定复合物整体稳定性方面的重要性还不足以超过 MI 的影响。尽管如此,II 仍可能是未来药物设计工作中需要考虑的一个相关因素。这项研究为了解复合物的稳定性和功能机制提供了宝贵的见解,突出了三体相互作用的重要性以及远端残基对复合物结合稳定性的影响。此外,我们的研究结果表明,限制第三个残基的波动会持续增加 G12V 变体的稳定性,这使得通过异构操纵来削弱变异物种的复合物形成具有挑战性。这种方法为蛋白质动力学、功能和异构提供了新的视角,对于理解和瞄准参与重要细胞过程的其他蛋白质复合物具有潜在的意义。这些结果有助于我们理解致癌突变对蛋白质-蛋白质相互作用的影响,并为未来针对 KRAS 相关癌症及其他癌症的治疗干预奠定了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.20
自引率
4.30%
发文量
567
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