Xiao Jiajie, Salsbury Freddie R
a Department of Physics , Wake Forest University , Winston-Salem , NC , USA.
J Biomol Struct Dyn. 2017 Nov;35(15):3354-3369. doi: 10.1080/07391102.2016.1254682. Epub 2016 Nov 29.
Thrombin is an attractive target for antithrombotic therapy due to its central role in thrombosis and hemostasis as well as its role in inducing tumor growth, metastasis, and tumor invasion. The thrombin-binding DNA aptamer (TBA), is under investigation for anticoagulant drugs. Although aptamer binding experiments have been revealed various effects on thrombin's enzymatic activities, the detailed picture of the thrombin's allostery from TBA binding is still unclear. To investigate thrombin's response to the aptamer-binding at the molecular level, we compare the mechanical properties and free energy landscapes of the free and aptamer-bound thrombin using microsecond-scale all-atom GPU-based molecular dynamics simulations. Our calculations on residue fluctuations and coupling illustrate the allosteric effects of aptamer-binding at the atomic level, highlighting the exosite II, 60s, γ and the sodium loops, and the alpha helix region in the light chains involved in the allosteric changes. This level of details clarifies the mechanisms of previous experimentally demonstrated phenomena, and provides a prediction of the reduced autolysis rate after aptamer-binding. The shifts in thrombin's ensemble of conformations and free energy surfaces after aptamer-binding demonstrate that the presence of bound-aptamer restricts the conformational freedom of thrombin suggesting that conformational selection, i.e. generalized allostery, is the dominant mechanism of thrombin-aptamer binding. The profound perturbation on thrombin's mechanical and thermodynamic properties due to the aptamer-binding, which was revealed comprehensively as a generalized allostery in this work, may be exploited in further drug discovery and development.
由于凝血酶在血栓形成和止血过程中发挥核心作用,以及在诱导肿瘤生长、转移和肿瘤侵袭方面的作用,它是抗血栓治疗的一个有吸引力的靶点。凝血酶结合DNA适配体(TBA)正在作为抗凝血药物进行研究。尽管适配体结合实验已经揭示了其对凝血酶酶活性的各种影响,但TBA结合导致的凝血酶变构的详细情况仍不清楚。为了在分子水平上研究凝血酶对适配体结合的反应,我们使用基于微秒级全原子GPU的分子动力学模拟,比较了游离和适配体结合的凝血酶的力学性质和自由能景观。我们对残基波动和耦合的计算在原子水平上说明了适配体结合的变构效应,突出了变构变化中涉及的外位点II、60s、γ和钠环,以及轻链中的α螺旋区域。这种详细程度阐明了先前实验证明现象的机制,并预测了适配体结合后自溶速率的降低。适配体结合后凝血酶构象集合和自由能表面的变化表明,结合的适配体的存在限制了凝血酶的构象自由度,这表明构象选择,即广义变构,是凝血酶-适配体结合的主要机制。在这项工作中,适配体结合对凝血酶力学和热力学性质的深刻扰动被全面揭示为广义变构,这可能在进一步的药物发现和开发中得到利用。