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Pressure Induced Conformational Dynamics of HIV-1 Protease: A Molecular Dynamics Simulation Study

机译:HIV-1蛋白酶的压力诱导构象动态:分子动力学模拟研究

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摘要

The conformational dynamics of HIV-1 protease (HIV-pr) is known to be essential for ligand binding and determination of cavity size, which changes with several common physiological parameters like temperature, pressure, pH conditions and of course the protein backbone mutations. In this work, the effect of pressure on the conformation and dynamics of HIV-pr was studied in silico at 1 bar (0.987 atm) and 3 Kbar pressure conditions. It can be seen from the literature that protein containing significant number of hydrophobic residues would expose its hydrophobic groups to the solvent exposed area under  high pressure conditions, which eventually changes the dynamics and hence conformation of the protein. From our observations, the dynamics studies showed that, although the collective dynamics is restricted under pressure this is not true for some specific residues. From the secondary structure analysis it was observed that turns and bends are favored under high pressure at the expense of α-helices and β-sheets resulting in the reduction of structural variability. Solvent accessible surface (SAS) area of both the low and high pressure simulations showed significant differences. It was also observed that with the elevation in pressure, the hydrophobic effect is decreased. All these conformational changes at high pressure condition may have a special impact on the binding affinity of drugs to the active site region, which may have a direct/indirect effect on the drug resistance behavior of HIV-pr.
机译:已知HIV-1蛋白酶(HIV-PR)的构象动态对配体结合和测定腔尺寸是必不可少的,其用几种常见的生理参数改变如温度,压力,pH条件和蛋白质骨干突变。在这项工作中,在1巴(0.987atm)和3 kbar压力条件下,在硅中研究了对HIV-PR构象和动态的影响。从文献中可以看出,含有大量疏水性残基的蛋白质将其疏水基团暴露于高压条件下的溶剂暴露区域,这最终改变动力学并因此改变蛋白质的构象。从我们的观察结果来看,动态研究表明,尽管集体动态受到压力的限制,但对于某些特定的残留而言,这是不正确的。从二级结构分析中,观察到,在α-螺旋和β-纸上的牺牲下,在高压下匝数和弯曲导致结构变异性降低。低压和高压模拟的溶剂可接近表面(SAS)区域显示出显着的差异。还观察到,随着压力的升高,疏水效果降低。高压条件下的所有这些构象变化可能对药物与活性位点区域的结合亲和力产生特殊影响,这可能对HIV-PR的耐药行为具有直接/间接影响。

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