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首页> 外文期刊>Medicinal chemistry research: an international journal for rapid communications on design and mechanisms of action of biologically active agents >Asymmetric biocatalysis of the nerve agent VX by human serum paraoxonase 1: molecular docking and reaction mechanism calculations
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Asymmetric biocatalysis of the nerve agent VX by human serum paraoxonase 1: molecular docking and reaction mechanism calculations

机译:人血清对氧磷酶对神经毒剂VX的不对称生物催化1:分子对接和反应机理计算

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摘要

Organophosphorus compounds have been employed in agricultural activity for a long time, causing serious public health problems. Due to their toxic properties, these compounds have also been used as chemical weapons. In view of this scenario, the catalytic degradation and the development of bioremediation processes of organophosphorus compounds have been of wide interest. Among several enzymes capable of degrading organophosphorus compounds, the human serum paraoxonase 1 has shown good potential for this purpose. To evaluate the interaction mode between the human serum paraoxonase 1 (wild-type and mutants) enzymes and the VX compound, one of the most toxic organophosphorus compounds known, molecular docking calculations were conducted. In addition, seeking to analyze the reaction pathway and the stereochemistry preference by human serum paraoxonase 1 and the R (p) and S (p) enantiomers of VX, quantum mechanical/molecular mechanics calculations were performed. Our theoretical findings put in evidence that the wild-type and mutant human serum paraoxonase 1 enzymes strongly interact with VX. Moreover, with the quantum mechanical/molecular mechanics study, we observed that the human serum paraoxonase 1 preferentially degrades one enantiomer in relation to the other. The current results indicate key points for designing new, more efficient mutant human serum paraoxonase 1 enzymes for VX degradation.
机译:有机磷化合物已经在农业活动中使用了很长时间,导致了严重的公共卫生问题。由于它们的毒性,这些化合物也已用作化学武器。鉴于这种情况,有机磷化合物的催化降解和生物修复方法的发展已引起广泛关注。在几种能够降解有机磷化合物的酶中,人血清对氧磷酶1具有很好的潜力。为了评估人血清对氧磷酶1(野生型和突变型)酶与VX化合物之间的相互作用模式,进行了已知的毒性最高的有机磷化合物之一,并进行了分子对接计算。此外,为分析人血清对氧磷酶1和VX的R(p)和S(p)对映异构体的反应途径和立体化学偏好,进行了量子力学/分子力学计算。我们的理论发现证明,野生型和突变型人血清对氧磷酶1酶与VX强烈相互作用。而且,通过量子力学/分子力学研究,我们观察到人血清对氧磷酶1相对于另一种优先降解一种对映体。目前的结果表明设计针对VX降解的新型,更有效的突变型人血清对氧磷酶1酶的关键点。

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