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天冬氨酸二元组质子化状态的测定:传统分子动力学与热力学积分法

Determination of the protonation state of the Asp dyad: conventional molecular dynamics versus thermodynamic integration.

作者信息

Huang Jinfeng, Zhu Yali, Sun Bin, Yao Yuan, Liu Junjun

机构信息

School of Pharmacy, Tongji Medical College, Huazhong University of Science and Technology, 13 Hangkong Road, Wuhan, Hubei, 430030, People's Republic of China.

Institute of Theoretical and Simulational Chemistry, The Academy of Fundamental and Interdisciplinary Science, Harbin Institute of Technology, 2 Yikuang Street, Harbin, 150080, People's Republic of China.

出版信息

J Mol Model. 2016 Mar;22(3):58. doi: 10.1007/s00894-016-2926-z. Epub 2016 Feb 17.

Abstract

The protonation state of the Asp dyad is important as it can reveal enzymatic mechanisms, and the information this provides can be used in the development of drugs for proteins such as memapsin 2 (BACE-1), HIV-1 protease, and rennin. Conventional molecular dynamics (MD) simulations have been successfully used to determine the preferred protonation state of the Asp dyad. In the present work, we demonstrate that the results obtained from conventional MD simulations can be greatly influenced by the particular force field applied or the values used for control parameters. In principle, free-energy changes between possible protonation states can be used to determine the protonation state. We show that protonation state prediction by the thermodynamic integration (TI) method is insensitive to force field version or to the cutoff for calculating nonbonded interactions (a control parameter). In the present study, the protonation state of the Asp dyad predicted by TI calculations was the same regardless of the force field and cutoff value applied. Contrary to the intuition that conventional MD is more efficient, our results clearly show that the TI method is actually more efficient and more reliable for determining the protonation state of the Asp dyad.

摘要

天冬氨酸二元组的质子化状态很重要,因为它能揭示酶促机制,且所提供的信息可用于开发针对诸如膜天冬氨酸蛋白酶2(β-分泌酶-1)、HIV-1蛋白酶和肾素等蛋白质的药物。传统分子动力学(MD)模拟已成功用于确定天冬氨酸二元组的优选质子化状态。在本研究中,我们证明,传统MD模拟所得结果会受到所应用的特定力场或控制参数所用值的极大影响。原则上,可能质子化状态之间的自由能变化可用于确定质子化状态。我们表明,通过热力学积分(TI)方法进行的质子化状态预测对力场版本或计算非键相互作用的截止值(一个控制参数)不敏感。在本研究中,无论应用何种力场和截止值,TI计算预测的天冬氨酸二元组的质子化状态都是相同的。与传统MD更高效的直觉相反,我们的结果清楚地表明,TI方法在确定天冬氨酸二元组的质子化状态方面实际上更高效且更可靠。

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