非均匀尺寸修正泊松-玻尔兹曼离子通道模型的VDAC溶剂化自由能计算

IF 3.4 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Liam Jemison, Matthew Stahl, Ranjan K. Dash, Dexuan Xie
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引用次数: 0

摘要

电压依赖性阴离子通道(VDAC)是调节离子和代谢物进出线粒体的主要通道。计算VDAC的溶剂化自由能对于理解其稳定性、功能和在细胞环境中的相互作用至关重要。在本文中,基于非均匀尺寸修正泊松-玻尔兹曼离子通道(nuSMPBIC)有限元求解器和四面体网格,建立了计算VDAC蛋白质总溶剂化自由能(包括静电、理想气体和多余自由能加上非极性能)的数值格式。当前的网格生成包也进行了更新,以提高网格质量和加速网格生成。然后,通过将这些方案与更新后的网格包、nuSMPBIC有限元包、PDB2PQR包和OPM数据库以及一个统一的SMPBIC有限元包和一个泊松-玻尔兹曼离子通道(PBIC)有限元包集成,创建VDAC溶剂化自由能计算(VSFEC)包。利用VSFEC包,使用6种VDAC蛋白、8种离子溶液(含多达4种离子,包括ATP4−和Ca2+)、2种参考态、不同的边界值和不同的介电常数进行了许多数值实验。实验结果强调了考虑非均匀离子尺寸效应对探索总溶剂化自由能变化规律的重要性,并证明了VSFEC封装在VDAC溶剂化自由能计算中的高性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
VDAC Solvation Free Energy Calculation by a Nonuniform Size Modified Poisson–Boltzmann Ion Channel Model

Voltage-dependent anion channel (VDAC) is the primary conduit for regulated passage of ions and metabolites into and out of a mitochondrion. Calculating the solvation free energy for VDAC is crucial for understanding its stability, function, and interactions within the cellular environment. In this article, numerical schemes for computing the total solvation free energy for VDAC—comprising electrostatic, ideal gas, and excess free energies plus the nonpolar energy—are developed based on a nonuniform size modified Poisson–Boltzmann ion channel (nuSMPBIC) finite element solver along with tetrahedral meshes for VDAC proteins. The current mesh generation package is also updated to improve mesh quality and accelerate mesh generation. A VDAC Solvation Free Energy Calculation (VSFEC) package is then created by integrating these schemes with the updated mesh package, the nuSMPBIC finite element package, the PDB2PQR package, and the OPM database, as well as one uniform SMPBIC finite element package and one Poisson–Boltzmann ion channel (PBIC) finite element package. With the VSFEC package, many numerical experiments are made using six VDAC proteins, eight ionic solutions containing up to four ionic species, including ATP4− and Ca2+, two reference states, different boundary values, and different permittivity constants. The test results underscore the importance of considering nonuniform ionic size effects to explore the varying patterns of the total solvation free energy, and demonstrate the high performance of the VSFEC package for VDAC solvation free energy calculation.

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来源期刊
CiteScore
6.60
自引率
3.30%
发文量
247
审稿时长
1.7 months
期刊介绍: This distinguished journal publishes articles concerned with all aspects of computational chemistry: analytical, biological, inorganic, organic, physical, and materials. The Journal of Computational Chemistry presents original research, contemporary developments in theory and methodology, and state-of-the-art applications. Computational areas that are featured in the journal include ab initio and semiempirical quantum mechanics, density functional theory, molecular mechanics, molecular dynamics, statistical mechanics, cheminformatics, biomolecular structure prediction, molecular design, and bioinformatics.
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