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复杂多途径反应动力学分析:胰岛素二聚体解离

Analysis of the Dynamics of a Complex, Multipathway Reaction: Insulin Dimer Dissociation.

作者信息

Jeong Kwanghoon, Guo Spencer C, Allaw Sammy, Dinner Aaron R

机构信息

Department of Chemistry, the University of Chicago, Chicago, Illinois 60637, United States.

James Franck Institute, the University of Chicago, Chicago, Illinois 60637, United States.

出版信息

J Phys Chem B. 2024 Dec 26;128(51):12728-12740. doi: 10.1021/acs.jpcb.4c06933. Epub 2024 Dec 13.

Abstract

The protein hormone insulin forms a homodimer that must dissociate to bind to its receptor. Understanding the kinetics and mechanism of dissociation is essential for the rational design of therapeutic analogs. In addition to its physiological importance, this dissociation process serves as a paradigm for coupled (un)folding and (un)binding. Based on previous free energy simulations, insulin dissociation is thought to involve multiple pathways with comparable free energy barriers. Here, we analyze the mechanism of insulin dimer dissociation using a recently developed computational framework for estimating kinetic statistics from short-trajectory data. These statistics indicate that the likelihood of dissociation (the committor) closely tracks the decrease in the number of (native and nonnative) intermonomer contacts and the increase in the number of water contacts at the dimer interface; the transition state with equal likelihood of association and dissociation corresponds to an encounter complex with relatively few native contacts and many nonnative contacts. We identify four pathways out of the dimer state and quantify their contributions to the rate as well as their exchange by computing reactive fluxes. We show that both the pathways and their extents of exchange can be understood in terms of rotations around three axes of the dimer structure. Our results provide insights into the kinetics of insulin analogs and, more generally, how to characterize complex, multipathway processes.

摘要

蛋白质激素胰岛素形成一个同二聚体,该二聚体必须解离才能与它的受体结合。了解解离的动力学和机制对于合理设计治疗性类似物至关重要。除了其生理重要性外,这种解离过程还作为耦合(去)折叠和(去)结合的范例。基于先前的自由能模拟,胰岛素解离被认为涉及多个具有相当自由能垒的途径。在这里,我们使用最近开发的一种计算框架来分析胰岛素二聚体解离的机制,该框架用于从短轨迹数据估计动力学统计量。这些统计量表明,解离的可能性(反应坐标)紧密跟踪(天然和非天然)单体间接触数量的减少以及二聚体界面处水接触数量的增加;结合和解离可能性相等的过渡态对应于一个具有相对较少天然接触和许多非天然接触的相遇复合物。我们确定了从二聚体状态出发的四条途径,并通过计算反应通量来量化它们对速率的贡献以及它们之间的交换。我们表明,这些途径及其交换程度都可以通过围绕二聚体结构的三个轴的旋转来理解。我们的结果为胰岛素类似物的动力学提供了见解,更广泛地说,为如何表征复杂的多途径过程提供了见解。

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