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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Systematic Quantum Mechanical Region Determination in QM/MM Simulation
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Systematic Quantum Mechanical Region Determination in QM/MM Simulation

机译:QM / MM仿真中的系统量子机械区域测定

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Hybrid quantum mechanical-molecular mechanical (QM/MM) simulations are widely used in enzyme simulation. Over ten convergence studies of QM/MM methods have revealed over the past several years that key energetic and structural properties approach asymptotic limits with only very large (ca. 500-1000 atom) QM regions. This slow convergence has been observed to be due in part to significant charge transfer between the core active site and the surrounding protein environment, which cannot be addressed by improvement of MM force fields or the embedding method employed within QM/MM. Given this slow convergence, it becomes essential to identify strategies for economical determination of optimal QM regions and to gain insight into the crucial interactions captured only in large regions. Here, we extend and develop two methods for quantitative determination of QM regions. First, in the charge analysis (CSA) method, we probe the reorganization of electron density when core active site residues are removed completely, as determined by large-QM region QM/MM calculations. Second, we introduce the highly parallelizable Fukui shift analysis (FSA), which identifies how core/substrate frontier states are altered by the presence of an additional QM residue in smaller initial QM regions. We demonstrate that the FSA and CSA approaches are complementary and consistent on three test case enzymes: catechol O-methyltransferase, cytochrome P450cam, and hen eggwhite lysozyme. We also introduce validation strategies and test the sensitivities of the two methods to geometric structure, basis set size, and electronic structure methodology. Both methods represent promising approaches for the systematic, unbiased determination of quantum mechanical effects in enzymes and large systems that necessitate multiscale modeling.
机译:混合量子力学-分子力学(QM/MM)模拟在酶模拟中有着广泛的应用。在过去的几年里,对QM/MM方法进行了十多次收敛性研究,发现关键的能量和结构性质接近渐近极限,只有非常大的(约500-1000个原子)QM区域。观察到这种缓慢的收敛部分是由于核心活性位点和周围蛋白质环境之间的显著电荷转移,这无法通过改进MM力场或QM/MM中采用的嵌入方法来解决。鉴于这种缓慢的收敛,有必要确定经济确定最佳QM区域的策略,并深入了解仅在大区域捕获的关键交互作用。在这里,我们扩展和发展了两种定量测定QM区域的方法。首先,在电荷分析(CSA)方法中,我们通过大QM区域QM/MM计算确定,当核心活性中心残基完全去除时,我们探测电子密度的重组。其次,我们介绍了高度并行化的Fukui位移分析(FSA),它确定了在较小的初始QM区域中,额外的QM残基的存在如何改变核心/衬底前沿状态。我们证明,FSA和CSA方法在三种测试用例酶上是互补和一致的:儿茶酚O-甲基转移酶、细胞色素P450cam和鸡卵白溶菌酶。我们还介绍了验证策略,并测试了这两种方法对几何结构、基集大小和电子结构方法的敏感性。这两种方法都代表了系统、无偏地确定酶和需要多尺度建模的大系统中量子力学效应的有希望的方法。

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