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Insight Derived from Molecular Dynamics Simulations into Molecular Motions Thermodynamics and Kinetics of HIV-1 gp120

机译:从分子动力学模拟到HIV-1 gp120的分子运动热力学和动力学的洞察力

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摘要

Although the crystal structures of the HIV-1 gp120 core bound and pre-bound by CD4 are known, the details of dynamics involved in conformational equilibrium and transition in relation to gp120 function have remained elusive. The homology models of gp120 comprising the N- and C-termini and loops V3 and V4 in the CD4-bound and CD4-unbound states were built and subjected to molecular dynamics (MD) simulations to investigate the differences in dynamic properties and molecular motions between them. The results indicate that the CD4-bound gp120 adopted a more compact and stable conformation than the unbound form during simulations. For both the unbound and bound gp120, the large concerted motions derived from essential dynamics (ED) analyses can influence the size/shape of the ligand-binding channel/cavity of gp120 and, therefore, were related to its functional properties. The differences in motion direction between certain structural components of these two forms of gp120 were related to the conformational interconversion between them. The free energy calculations based on the metadynamics simulations reveal a more rugged and complex free energy landscape (FEL) for the unbound than for the bound gp120, implying that gp120 has a richer conformational diversity in the unbound form. The estimated free energy difference of ∼−6.0 kJ/mol between the global minimum free energy states of the unbound and bound gp120 indicates that gp120 can transform spontaneously from the unbound to bound states, revealing that the bound state represents a high-probability “ground state” for gp120 and explaining why the unbound state resists crystallization. Our results provide insight into the dynamics-and-function relationship of gp120, and facilitate understandings of the thermodynamics, kinetics and conformational control mechanism of HIV-1 gp120.
机译:尽管已知由CD4结合和预先结合的HIV-1 gp120核心的晶体结构,但与gp120功能有关的构象平衡和转变所涉及的动力学细节仍然难以捉摸。建立了gp120的同源模型,该模型包含CD4结合态和CD4未结合态的N和C末端以及环V3和V4,并进行分子动力学(MD)模拟,以研究两者之间动力学特性和分子运动的差异他们。结果表明,在模拟过程中,与CD4结合的gp120比未结合的形式采用了更加紧凑和稳定的构象。对于未结合的gp120和结合的gp120,从基本动力学(ED)分析得出的大协同运动会影响gp120的配体结合通道/腔的大小/形状,因此与其功能特性有关。这两种形式的gp120的某些结构成分之间在运动方向上的差异与它们之间的构象互换有关。基于元动力学模拟的自由能计算显示,未结合的gp120比未结合的gp120更坚固,更复杂的自由能态(FEL),这意味着gp120在未结合形式上具有更丰富的构象多样性。未结合gp120和结合gp120的全局最小自由能态之间的估计自由能差约为-6.0 kJ / mol,这表明gp120可以自发地从未结合态转变为结合态,这表明结合态代表了高概率的“基础”状态”,并解释了未结合状态为何抗结晶。我们的结果提供了gp120的动力学和功能关系的见解,并有助于了解HIV-1 gp120的热力学,动力学和构象控制机制。

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