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Brownian Dynamics Approach Including Explicit Atoms for Studying Ion Permeation and Substrate Translocation across Nanopores

机译:布朗尼动力学方法,包括用于研究离子渗透和跨纳米孔的基材易位的显式原子

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A Brownian dynamics (BD) approach including explicit atoms called BRODEA is presented to model ion permeation and molecule translocation across a nanopore confinement. This approach generalizes our previous hybrid molecular dynamics-Brownian dynamics framework (J. Chem. Theory Comput. 2016, 12, 2401) by incorporating a widespread and enhanced set of simulation schemes based on several boundary conditions and electrostatic models, as well as a temperature accelerated method for sampling free energy surfaces and determining substrate translocation pathways. As a test case, BRODEA was applied to study the ion diffusion as well as to ciprofloxacin and enrofloxacin transport through the outer membrane porin OmpC from E. coli. The equivalence between the different simulation schemes was demonstrated and their computational efficiency evaluated. The BRODEA results are able to reproduce the main features of the ion currents and free energy surfaces determined by all-atom molecular dynamics simulations and validated by experiments. Furthermore, the BRODEA results are able to determine the ciprofloxacin and enrofloxacin permeation pathways showing a remarkable agreement with the results obtained from a computational protocol that combines metadynamics and a zero-temperature string method (J. Chem. Theory Comput. 2017, 13, 4553; J. Phys. Chem. B 2018, 122, 1417). To our knowledge, this is the first time such antibiotic permeation pathways have been characterized by a technique based on Brownian dynamics.
机译:展示包括称为Brodea的明确原子的布朗动力学(BD)方法以模拟纳米孔限制的离子渗透和分子易位。这种方法概括了我们以前的混合分子动力学 - 布朗动力学框架(J.Chem。理论计算。2016,12,2401)通过基于若干边界条件和静电模型以及温度结合着广泛和增强的仿真方案,以及温度自由能表面采样和确定基板易位途径的加速方法。作为测试案例,应用了通过来自大肠杆菌的外膜豆类OMPC研究离子扩散以及通过来自大肠杆菌的外膜豆类植物的苯甲酰辛转运。对不同仿真方案之间的等价进行了说明,并评估其计算效率。 Brodea结果能够再现由全原子分子动力学模拟确定的离子电流和自由能表面的主要特征,并通过实验验证。此外,BrodeA结果能够确定环丙沙星和苯甲酰洛辛渗透途径,其显示出与从结合元动力学和零温度串法的计算协议获得的结果(J.Chem.理论计算。2017,13,4553 ; J. phys。化学。B 2018,122,1417)。据我们所知,这是第一次通过基于布朗动力学的技术来表征这种抗生素渗透途径。

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