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首页> 外文期刊>PLoS Computational Biology >Importance of Electrostatic Interactions in the Association of Intrinsically Disordered Histone Chaperone Chz1 and Histone H2A.Z-H2B
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Importance of Electrostatic Interactions in the Association of Intrinsically Disordered Histone Chaperone Chz1 and Histone H2A.Z-H2B

机译:静电相互作用在固有紊乱组蛋白分子伴侣Chz1和组蛋白H2A.Z-H2B的关联中的重要性

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Histone chaperones facilitate assembly and disassembly of nucleosomes. Understanding the process of how histone chaperones associate and dissociate from the histones can help clarify their roles in chromosome metabolism. Some histone chaperones are intrinsically disordered proteins (IDPs). Recent studies of IDPs revealed that the recognition of the biomolecules is realized by the flexibility and dynamics, challenging the century-old structure-function paradigm. Here we investigate the binding between intrinsically disordered chaperone Chz1 and histone variant H2A.Z-H2B by developing a structure-based coarse-grained model, in which Debye-Hückel model is implemented for describing electrostatic interactions due to highly charged characteristic of Chz1 and H2A.Z-H2B. We find that major structural changes of Chz1 only occur after the rate-limiting electrostatic dominant transition state and Chz1 undergoes folding coupled binding through two parallel pathways. Interestingly, although the electrostatic interactions stabilize bound complex and facilitate the recognition at first stage, the rate for formation of the complex is not always accelerated due to slow escape of conformations with non-native electrostatic interactions at low salt concentrations. Our studies provide an ionic-strength-controlled binding/folding mechanism, leading to a cooperative mechanism of “local collapse or trapping” and “fly-casting” together and a new understanding of the roles of electrostatic interactions in IDPs' binding.
机译:组蛋白伴侣有利于核小体的组装和拆卸。了解组蛋白伴侣如何与组蛋白缔合和解离的过程可以帮助阐明它们在染色体代谢中的作用。一些组蛋白伴侣是固有的无序蛋白(IDP)。对国内流离失所者的最新研究表明,生物分子的识别是通过灵活性和动态性来实现的,从而挑战了具有百年历史的结构功能范式。在这里,我们通过开发基于结构的粗粒模型来研究内在无序伴侣分子Chz1和组蛋白变体H2A.Z-H2B之间的结合,其中实现了Debye-Hückel模型来描述由于Chz1和H2A的高电荷特性而产生的静电相互作用Z-H2B。我们发现Chz1的主要结构变化仅在限速静电占主导地位的过渡态和Chz1经历折叠耦合结合通过两个平行途径后发生。有趣的是,尽管静电相互作用使结合的复合物稳定并在第一阶段促进识别,但是由于低盐浓度下具有非天然静电相互作用的构象的缓慢逸出,复合物的形成速率并不总是加速。我们的研究提供了一种离子强度控制的结合/折叠机制,从而导致了“局部塌陷或捕获”和“飞铸”在一起的协同机制,并对静电相互作用在IDP结合中的作用有了新的认识。

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