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首页> 外文期刊>Molecules >In Silico Docking, Molecular Dynamics and Binding Energy Insights into the Bolinaquinone-Clathrin Terminal Domain Binding Site
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In Silico Docking, Molecular Dynamics and Binding Energy Insights into the Bolinaquinone-Clathrin Terminal Domain Binding Site

机译:在计算机对接中,分子动力学和结合能深入到Bolinaquinone-Clathrin末端域结合位点。

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摘要

Clathrin-mediated endocytosis (CME) is a process that regulates selective internalization of important cellular cargo using clathrin-coated vesicles. Perturbation of this process has been linked to many diseases including cancer and neurodegenerative conditions. Chemical proteomics identified the marine metabolite, 2-hydroxy-5-methoxy- 3-(((1S,4aS,8aS)-1,4a,5-trimethyl-1,2,3,4,4a,7,8,8a-octahydronaphthalen-2-yl)methyl)cyclohexa- 2,5-diene-1,4-dione (bolinaquinone) as a clathrin inhibitor. While being an attractive medicinal chemistry target, the lack of data about bolinaquinone’s mode of binding to the clathrin enzyme represents a major limitation for its structural optimization. We have used a molecular modeling approach to rationalize the observed activity of bolinaquinone and to predict its mode of binding with the clathrin terminal domain (CTD). The applied protocol started by global rigid-protein docking followed by flexible docking, molecular dynamics and linear interaction energy calculations. The results revealed the potential of bolinaquinone to interact with various pockets within the CTD, including the clathrin-box binding site. The results also highlight the importance of electrostatic contacts over van der Waals interactions for proper binding between bolinaquinone and its possible binding sites. This study provides a novel model that has the potential to allow rapid elaboration of bolinaquinone analogues as a new class of clathrin inhibitors.
机译:网格蛋白介导的内吞作用(CME)是使用网格蛋白包被的小泡调节重要细胞货物选择性内化的过程。该过程的扰动与许多疾病有关,包括癌症和神经退行性疾病。化学蛋白质组学鉴定出海洋代谢物2-羟基-5-甲氧基-3-(((((1S,4aS,8aS)-1,4a,5-trimethyl-1,2,3,4,4a,7,8,8a -八氢萘-2-基)甲基)环己基2,5-二烯-1,4-二酮(bolinaquinone)作为网格蛋白抑制剂。尽管是有吸引力的药物化学靶标,但缺乏有关bolinaquinone与网格蛋白酶结合模式的数据,这代表了其结构优化的主要限制。我们已经使用一种分子建模方法来合理化观察到的bolinaquinone的活性,并预测其与网格蛋白末端域(CTD)的结合模式。应用的协议从全局刚性蛋白对接开始,然后是灵活对接,分子动力学和线性相互作用能计算。结果表明,bolinaquinone可能与CTD内的各个口袋(包括网格蛋白盒结合位点)相互作用。该结果还强调了静电接触对范德华相互作用的重要性,因为该作用对于苯丙醌及其可能的结合位点之间的正确结合至关重要。这项研究提供了一种新颖的模型,它具有使快速合成bolinaquinone类似物成为新型网格蛋白抑制剂的潜力。

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