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Solvation shell structure of cyclooctylpyranone in water solvent and its comparative structure, dynamics and dipole moment in HIV protease

机译:环辛基吡喃酮在水溶剂中的溶剂化壳结构及其在HIV蛋白酶中的比较结构,动力学和偶极矩

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We have investigated the solvation structure for cyclooctylpyranone (COP) in water solvent using force-field molecular dynamics (MD) and Car-Parrinello mixed quantum mechanics-molecular mechanics (CPMD) calculations. The MD calculations show that in water solvent COP can exist in two conformational states which differ with respect to the relative orientations of the three rings, namely phenyl, pyranone and cyclooctane. We report the existence of strong orientational preference for the water molecule in the first solvation shell and the orientational preference disappears for solvent molecules beyond the first solvation shell. In order to investigate the confinement effect on the structure, dynamics, charge distribution and dipole moment of COP, we have carried out MD and CPMD calculations for COP within HIV type-1 protease (PR). Interestingly, we do not see any conformational transitions for COP within the protein cavity and it remains as a single conformer. We do see a remarkable effect of confinement on few other torsional degrees of freedom such as gg to tg conformational shift for the propyl group of COP. However, the methyl group rotational dynamics remains similar in the water solvent and in the protein environment. Also, within the protein cavity, the COP molecule is more polarized when compared to water solvent. Static ab initio electronic structure calculations were performed on the COP molecule with varying torsional angle in order to investigate the angle dependence of the molecular volume and energy.
机译:我们已经使用力场分子动力学(MD)和Car-Parrinello混合量子力学-分子力学(CPMD)计算研究了水溶剂中环辛基吡喃酮(COP)的溶剂化结构。 MD计算表明,在水中,COP可以以两种构象状态存在,这三个构象状态相对于三个环的相对取向不同,即苯基,吡喃酮和环辛烷。我们报道了在第一溶剂化壳中对水分子的强烈的取向偏好的存在,并且对于超出第一溶剂化壳的溶剂分子的取向的偏好消失了。为了研究对COP的结构,动力学,电荷分布和偶极矩的限制作用,我们对HIV 1型蛋白酶(PR)中的COP进行了MD和CPMD计算。有趣的是,我们在蛋白腔内没有看到COP的任何构象转变,它仍然是一个单一的构象异构体。我们确实看到限制对其他几个扭转自由度产生了显着影响,例如COP丙基的gg到tg构象移位。但是,甲基旋转动力学在水溶剂和蛋白质环境中仍然相似。此外,与水溶剂相比,COP分子在蛋白质腔内更极化。为了研究分子体积和能量的角度依赖性,对扭转角变化的COP分子进行了静态的从头算电子结构计算。

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