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Millisecond dynamics of BTK reveal kinome-wide conformational plasticity within the apo kinase domain

机译:BTK的毫秒动态揭示了apo激酶域内的全基因组构象可塑性

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Bruton tyrosine kinase (BTK) is a key enzyme in B-cell development whose improper regulation causes severe immunodeficiency diseases. Design of selective BTK therapeutics would benefit from improved, in-silico structural modeling of the kinase’s solution ensemble. However, this remains challenging due to the immense computational cost of sampling events on biological timescales. In this work, we combine multi-millisecond molecular dynamics (MD) simulations with Markov state models (MSMs) to report on the thermodynamics, kinetics, and accessible states of BTK’s kinase domain. Our conformational landscape links the active state to several inactive states, connected via a structurally diverse intermediate. Our calculations predict a kinome-wide conformational plasticity, and indicate the presence of several new potentially druggable BTK states. We further find that the population of these states and the kinetics of their inter-conversion are modulated by protonation of an aspartate residue, establishing the power of MD & MSMs in predicting effects of chemical perturbations.
机译:布鲁顿酪氨酸激酶(BTK)是B细胞发育中的关键酶,其调控不当会导致严重的免疫缺陷疾病。选择性BTK疗法的设计将受益于激酶溶液整体的计算机模拟结构建模。然而,由于在生物时间尺度上采样事件的巨大计算成本,这仍然具有挑战性。在这项工作中,我们将多毫秒分子动力学(MD)模拟与马尔可夫状态模型(MSM)相结合,以报告BTK激酶域的热力学,动力学和可及状态。我们的构象格局将活动状态与通过结构上不同的中间体相连的几个不活动状态联系起来。我们的计算预测了整个kinome的构象可塑性,并表明存在几种新的潜在可药物治疗的BTK状态。我们进一步发现,这些状态的种群及其相互转化的动力学受到天冬氨酸残基质子化的调节,建立了MD和MSM在预测化学扰动效果方面的力量。

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