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Change in Allosteric Network Affects Binding Affinities of PDZ Domains: Analysis through Perturbation Response Scanning

机译:变构网络的变化影响PDZ域的绑定亲和力:通过微扰响应扫描进行分析。

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摘要

The allosteric mechanism plays a key role in cellular functions of several PDZ domain proteins (PDZs) and is directly linked to pharmaceutical applications; however, it is a challenge to elaborate the nature and extent of these allosteric interactions. One solution to this problem is to explore the dynamics of PDZs, which may provide insights about how intramolecular communication occurs within a single domain. Here, we develop an advancement of perturbation response scanning (PRS) that couples elastic network models with linear response theory (LRT) to predict key residues in allosteric transitions of the two most studied PDZs (PSD-95 PDZ3 domain and hPTP1E PDZ2 domain). With PRS, we first identify the residues that give the highest mean square fluctuation response upon perturbing the binding sites. Strikingly, we observe that the residues with the highest mean square fluctuation response agree with experimentally determined residues involved in allosteric transitions. Second, we construct the allosteric pathways by linking the residues giving the same directional response upon perturbation of the binding sites. The predicted intramolecular communication pathways reveal that PSD-95 and hPTP1E have different pathways through the dynamic coupling of different residue pairs. Moreover, our analysis provides a molecular understanding of experimentally observed hidden allostery of PSD-95. We show that removing the distal third alpha helix from the binding site alters the allosteric pathway and decreases the binding affinity. Overall, these results indicate that (i) dynamics plays a key role in allosteric regulations of PDZs, (ii) the local changes in the residue interactions can lead to significant changes in the dynamics of allosteric regulations, and (iii) this might be the mechanism that each PDZ uses to tailor their binding specificities regulation.
机译:变构机制在几种PDZ域蛋白(PDZ)的细胞功能中起关键作用,并直接与药物应用相关;然而,阐述这些变构相互作用的性质和程度是一个挑战。解决此问题的一种方法是探索PDZ的动力学,它可以提供有关分子内通信如何在单个域内发生的见解。在这里,我们开发了摄动响应扫描(PRS)的进步,它将弹性网络模型与线性响应理论(LRT)结合在一起,以预测两个研究最多的PDZ(PSD-95 PDZ3域和hPTP1E PDZ2域)的变构过渡中的关键残基。使用PRS,我们首先确定在干扰结合位点后给出最高均方波动响应的残基。令人惊讶地,我们观察到具有最高均方波动响应的残基与涉及变构过渡的实验确定的残基一致。第二,我们通过连接在结合位点受到扰动后给出相同方向响应的残基来构建变构途径。预测的分子内通信途径表明,PSD-95和hPTP1E通过不同残基对的动态偶联具有不同的途径。此外,我们的分析提供了对PSD-95的实验观察到的隐藏变构的分子理解。我们表明,从结合位点去除远端的第三个α螺旋改变了变构途径并降低了结合亲和力。总体而言,这些结果表明:(i)动力学在PDZ的变构调控中起关键作用;(ii)残基相互作用的局部变化可能导致变构调控的显着变化,并且(iii)可能是每个PDZ用来调整其结合特异性调控的机制。

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  • 年度 2011
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