分子动力学模拟表明LSD1/ corest - h3组蛋白分子识别存在诱导拟合机制。

Q1 Biochemistry, Genetics and Molecular Biology BMC Biophysics Pub Date : 2013-11-25 DOI:10.1186/2046-1682-6-15
Nadeem A Vellore, Riccardo Baron
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引用次数: 14

摘要

背景:赖氨酸特异性去甲基化酶(LSD1或KDM1A)及其协同抑制蛋白CoREST复合物可催化H3组蛋白n端尾部的去甲基化,是目前癌症和神经退行性疾病药物发现中最有希望的表观遗传学靶点之一。非共价结合模型,如锁与键、诱导配合、构象选择等,可以帮助解释LSD1/ corest - h3组蛋白结合的分子机制,从而指导药物的发现和设计工作。在这里,我们使用通过广泛的显式溶剂分子动力学(MD)模拟获得的LSD1/CoREST构象集合来量化LSD1/CoREST底物结合与这些假设模型的一致程度。结果:我们发现诱导拟合模型是LSD1/CoREST-H3-histone非共价结合最具代表性的模型,并能解释H3-histone结合位点发生的局部构象变化。我们还表明,构象选择-尽管原则上不排除这一发现-是最小的,并且只有在考虑全局特性时才相关,例如LSD1/CoREST钳的纳米级运动。结论:MD模拟研究揭示的诱导拟合机制将有助于将蛋白质动力学纳入h3 -组蛋白结合区的LSD1抑制剂的发现和设计。总的来说,我们的研究表明,在测试非共价结合的其他假设机制模型时,使用多种指标或选择方案的重要性。
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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Molecular dynamics simulations indicate an induced-fit mechanism for LSD1/CoREST-H3-histone molecular recognition.

Background: Lysine Specific Demethylase (LSD1 or KDM1A) in complex with its co-repressor protein CoREST catalyzes the demethylation of the H3 histone N-terminal tail and is currently one of the most promising epigenetic targets for drug discovery against cancer and neurodegenerative diseases. Models of non-covalent binding, such as lock and key, induced-fit, and conformational selection could help explaining the molecular mechanism of LSD1/CoREST-H3-histone association, thus guiding drug discovery and design efforts. Here, we quantify the extent to which LSD1/CoREST substrate binding is consistent with these hypothetical models using LSD1/CoREST conformational ensembles obtained through extensive explicit solvent molecular dynamics (MD) simulations.

Results: We find that an induced-fit model is the most representative of LSD1/CoREST-H3-histone non-covalent binding and accounts for the local conformational changes occurring in the H3-histone binding site. We also show that conformational selection - despite in principle not ruled out by this finding - is minimal, and only relevant when global properties are considered, e.g. the nanoscale motion of the LSD1/CoREST clamp.

Conclusion: The induced-fit mechanism revealed by our MD simulation study will aid the inclusion of protein dynamics for the discovery and design of LSD1 inhibitors targeting the H3-histone binding region. On a general basis, our study indicates the importance of using multiple metrics or selection schemes when testing alternative hypothetical mechanistic models of non-covalent binding.

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BMC Biophysics
BMC Biophysics BIOPHYSICS-
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