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阐明手性苯氧威的潜在神经毒性:实验和计算研究的分子见解。

Elucidating the potential neurotoxicity of chiral phenthoate: Molecular insight from experimental and computational studies.

机构信息

Department of Environmental Science and Engineering, School of Water and Environment, Chang'an University, Xi'an, 710054, China; Key Laboratory of Subsurface Hydrology and Ecological Effect in Arid Region of Ministry of Education, Chang'an University, No. 126 Yanta Road, Yanta District, Xi'an, 710054, China.

State Key Laboratory of Physical Chemistry of Solid Surfaces and Fujian Provincial Key Laboratory of Theoretical and Computational Chemistry, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen, 361005, China.

出版信息

Chemosphere. 2020 Sep;255:127007. doi: 10.1016/j.chemosphere.2020.127007. Epub 2020 May 7.

Abstract

Chiral organophosphorus pollutants are existed ubiquitously in the ecological environment, but the enantioselective toxicities of these nerve agents to humans and their molecular bases have not been fully elucidated. Using experimental and computational approaches, this story was to explore the neurotoxic response process of the target acetylcholinesterase (AChE) to chiral phenthoate and further decipher the microscopic mechanism of such toxicological effect at the enantiomeric level. The results showed that the toxic reaction of AChE with chiral phenthoate exhibited significant enantioselectivity, and (R)-phenthoate (K=1.486 × 10 M) has a bioaffinity for the nerve enzyme nearly three times that of (S)-phenthoate (K=4.503 × 10 M). Dynamic research outcomes interpreted the wet experiments, and the inherent conformational flexibility of the target enzyme has a great influence on the enantioselective neurotoxicological action processes, especially reflected in the conformational changes of the three key loop regions (i.e. residues His-447, Gly-448, and Tyr-449; residues Gly-122, Phe-123, and Tyr-124; and residues Thr-75, Leu-76, and Tyr-77) around the reaction patch. This was supported by the quantitative results of conformational studies derived from circular dichroism spectroscopy (α-helix: 34.7%→30.2%/31.6%; β-sheet: 23.6%→19.5%/20.7%; turn: 19.2%→22.4%/21.9%; and random coil: 22.5%→27.9%/25.8%). Meanwhile, via analyzing the modes of toxic action and free energies, we can find that (R)-phenthoate has a strong inhibitory effect on the enzymatic activity of AChE, as compared with (S)-phenthoate, and electrostatic energy (-23.79/-17.77 kJ mol) played a critical role in toxicological reactions. These points were the underlying causes of chiral phenthoate displaying different degrees of enantioselective neurotoxicity.

摘要

手性有机磷污染物广泛存在于生态环境中,但这些神经毒剂对人类的对映选择性毒性及其分子基础尚未完全阐明。本研究采用实验和计算方法,旨在探索目标乙酰胆碱酯酶(AChE)与手性苯氧磷的神经毒性反应过程,并进一步在对映体水平上揭示这种毒理学效应的微观机制。结果表明,AChE 与手性苯氧磷的毒性反应表现出显著的对映选择性,(R)-苯氧磷(K=1.486×10 M)对神经酶的生物亲和力接近(S)-苯氧磷(K=4.503×10 M)的三倍。动态研究结果解释了湿实验,目标酶的固有构象灵活性对映选择性神经毒理学作用过程有很大影响,特别是体现在反应补丁周围三个关键环区(即残基 His-447、Gly-448 和 Tyr-449;残基 Gly-122、Phe-123 和 Tyr-124;和残基 Thr-75、Leu-76 和 Tyr-77)的构象变化。这一点得到了圆二色光谱学构象研究定量结果的支持(α-螺旋:34.7%→30.2%/31.6%;β-折叠:23.6%→19.5%/20.7%;转角:19.2%→22.4%/21.9%;无规卷曲:22.5%→27.9%/25.8%)。同时,通过分析毒性作用模式和自由能,我们可以发现(R)-苯氧磷对 AChE 的酶活性具有很强的抑制作用,与(S)-苯氧磷相比,静电能(-23.79/-17.77 kJ mol)在毒性反应中起着关键作用。这些是手性苯氧磷表现出不同程度对映选择性神经毒性的根本原因。

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