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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >The Role of Nonbonded Interactions in the Conformational Dynamics of Organophosphorous Hydrolase Adsorbed onto Functionalized Mesoporous Silica Surfaces
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The Role of Nonbonded Interactions in the Conformational Dynamics of Organophosphorous Hydrolase Adsorbed onto Functionalized Mesoporous Silica Surfaces

机译:非键相互作用在功能化介孔二氧化硅表面吸附的有机磷水解酶构象动力学中的作用

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摘要

The enzyme organophosphorous hydrolase (OPH) catalyzes the hydrolysis of a wide variety of organophosphorous compounds with high catalytic efficiency and broad substrate specificity. The immobilization of OPH in functionalized mesoporous silica (FMS) surfaces increases significantly its catalytic specific activity, as compared to the enzyme in solution, with important applications for the detection and decontamination of insecticides and chemical warfare agents. Experimental measurements of immobilization efficiency as a function of the charge and coverage percentage of different functional groups have been interpreted as electrostatic forces being the predominant interactions underlying the adsorption of OPH onto FMS surfaces. Explicit solvent molecular dynamics simulations have been performed for OPH in bulk solution and adsorbed onto two distinct interaction potential models of the FMS functional groups to investigate the relative contributions of nonbonded interactions to the conformational dynamics and adsorption of the protein. Our results support the conclusion that electrostatic interactions are responsible for the binding of OPH to the FMS surface. However, these results also show that van der Waals forces are detrimental for interfacial adhesion. In addition, it is found that OPH adsorption onto the FMS models favors a protein conformation whose active site is fully accessible to the substrate, in contrast to the unconfined protein.
机译:有机磷水解酶(OPH)催化多种有机磷化合物的水解,具有高催化效率和广泛的底物特异性。与溶液中的酶相比,OPH在功能化介孔二氧化硅(FMS)表面的固定化显着提高了其催化比活性,在检测和净化杀虫剂和化学战剂中具有重要的应用。固定效率作为不同官能团的电荷和覆盖百分比的函数的实验测量结果已被解释为静电力是OPH吸附在FMS表面上的主要相互作用。已对本体溶液中的OPH进行了显式溶剂分子动力学模拟,并将其吸附到FMS官能团的两个不同的相互作用势模型上,以研究非键合相互作用对蛋白质构象动力学和吸附的相对贡献。我们的结果支持以下结论:静电相互作用是OPH与FMS表面结合的原因。但是,这些结果还表明范德华力对界面粘合有害。另外,发现OPH在FMS模型上的吸附有利于蛋白质构象,与未限制的蛋白质相反,其活性位点是底物完全可及的。

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