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蛋白质-配体结构的全量子力学能量优化

Fully quantum mechanical energy optimization for protein-ligand structure.

作者信息

Xiang Yun, Zhang Da W, Zhang John Z H

机构信息

Department of Chemistry, New York University, 100 Washington Square East, Room 1001, New York, New York 10003, USA.

出版信息

J Comput Chem. 2004 Sep;25(12):1431-7. doi: 10.1002/jcc.20069.

Abstract

We present a quantum mechanical approach to study protein-ligand binding structure with application to a Adipocyte lipid-binding protein complexed with Propanoic Acid. The present approach employs a recently develop molecular fractionation with a conjugate caps (MFCC) method to compute protein-ligand interaction energy and performs energy optimization using the quasi-Newton method. The MFCC method enables us to compute fully quantum mechanical ab initio protein-ligand interaction energy and its gradients that are used in energy minimization. This quantum optimization approach is applied to study the Adipocyte lipid-binding protein complexed with Propanoic Acid system, a complex system consisting of a 2057-atom protein and a 10-atom ligand. The MFCC calculation is carried out at the Hartree-Fock level with a 3-21G basis set. The quantum optimized structure of this complex is in good agreement with the experimental crystal structure. The quantum energy calculation is implemented in a parallel program that dramatically speeds up the MFCC calculation for the protein-ligand system. Similarly good agreement between MFCC optimized structure and the experimental structure is also obtained for the streptavidin-biotin complex. Due to heavy computational cost, the quantum energy minimization is carried out in a six-dimensional space that corresponds to the rigid-body protein-ligand interaction.

摘要

我们提出了一种量子力学方法来研究蛋白质 - 配体结合结构,并将其应用于与丙酸复合的脂肪细胞脂质结合蛋白。本方法采用最近开发的共轭帽分子分级(MFCC)方法来计算蛋白质 - 配体相互作用能,并使用拟牛顿法进行能量优化。MFCC方法使我们能够计算完全量子力学的从头算蛋白质 - 配体相互作用能及其在能量最小化中使用的梯度。这种量子优化方法应用于研究与丙酸系统复合的脂肪细胞脂质结合蛋白,该复合系统由一个2057个原子的蛋白质和一个10个原子的配体组成。MFCC计算在Hartree - Fock水平上使用3 - 21G基组进行。该复合物的量子优化结构与实验晶体结构吻合良好。量子能量计算在一个并行程序中实现,该程序显著加快了蛋白质 - 配体系统的MFCC计算。对于链霉亲和素 - 生物素复合物,MFCC优化结构与实验结构之间也获得了类似的良好吻合。由于计算成本高昂,量子能量最小化在与刚体蛋白质 - 配体相互作用相对应的六维空间中进行。

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