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Enhanced Biodegradation/Photodegradation of Organophosphorus Fire Retardant Using an Integrated Method of Modified Pharmacophore Model with Molecular Dynamics and Polarizable Continuum Model

机译:使用分子动力学和可极化连续体模型的改性药物模型的综合方法增强了有机磷阻燃剂的生物降解/光降解

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摘要

A comprehensive 3D-quantitative structure–activity relationship (QSAR) pharmacophore model was constructed using the values of comprehensive biodegradation/photodegradation effects of 17 organophosphorus flame retardants (OPFRs) evaluated by a normalization method to modify OPFRs with high biodegradation/photodegradation, taking tris(chloro-isopropyl) phosphate (TCPP), tris(2-chloroethyl) phosphate (TCEP) and tris(1-chloro-2-propyl) phosphate (TCIPP)—which occur frequently in the environment, and are the most difficult to degrade as target molecules. OPFR-derivative molecules TCPP–OH shows the highest improvement in biodegradation and photodegradation (55.48% and 46.37%, respectively). On simulating the biodegradation path and photodegradation path, it is found that the energy barrier of TCPP–OH for phosphate bond cleavage is reduced by 15.73% and 52.52% compared to TCPP after modification, respectively. Finally, in order to further significantly improve its biodegradability and photodegradation, the efficiency enhancement in the biodegradation and photodegradation of TCPP–OH are analyzed under the simulated environment by molecular dynamics and polarizable continuum model, respectively. The results of molecular dynamics show that the biodegradation efficiency of the TCPP–OH increased by 75.52% compared to TCPP. The UV spectral transition energy (4.07 eV) of TCPP–OH under the influence of hydrogen peroxide solvation effect is 44.23% lower than the actual transition energy (7.29 eV) of TCPP.
机译:通过通过标准化方法评估的17个有机磷阻燃剂(OPFRS)的综合生物降解/光降解效应的值来构建全面的3D定量结构 - 活性关系(QSAR)药效所模型,以修改具有高生物降解/光降解的OPFRS,采用TRIS(氯 - 异丙基)磷酸盐(TCPP),三(2-氯乙基)磷酸盐(TCEP)和TRIS(1-氯-2-丙基)磷酸盐(TCIPP) - 在环境中经常发生,并且是最难以降解的靶分子。 OPFR-衍生物分子TCPP-OH显示出生物降解和光降解的最高改善(分别为55.48%和46.37%)。在模拟生物降解路径和光降解路径时,发现磷酸粘粘剂切割的TCPP-OH的能量屏障分别与修饰后的TCPP相比减少了15.73%和52.52%。最后,为了进一步显着提高其生物降解性和光降解,分别通过分子动力学和可极化的连续体模型在模拟环境下分析了TCPP-OH的生物降解和光降解的效率增强。分子动力学的结果表明,与TCPP相比,TCPP-OH的生物降解效率增加了75.52%。在过氧化氢溶剂化效应的影响下,TCPP-OH的UV光谱过渡能量(4.07eV)低于TCPP的实际过渡能量(7.29eV)的44.23%。

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