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通过分子动力学模拟探索醛糖还原酶(AKR1B1)与 3-巯基-5H-1,2,4-三嗪并[5,6-b]吲哚-5-乙酸之间的相互作用细节。

Exploring the interactional details between aldose reductase (AKR1B1) and 3-Mercapto-5H-1,2,4-triazino[5,6-b]indole-5-acetic acid through molecular dynamics simulations.

机构信息

b International Joint Research Laboratory of Nano-Micro Architecture Chemistry, Laboratory of Theoretical and Computational Chemistry, Institute of Theoretical Chemistry , Jilin University , Changchun 130023 , People's Republic of China.

c Department of Pediatric Outpatient , The First Hospital of Jilin University , Changchun 130021 , People's Republic of China.

出版信息

J Biomol Struct Dyn. 2019 Apr;37(7):1724-1735. doi: 10.1080/07391102.2018.1465851. Epub 2018 May 30.

Abstract

Aldose reductase (AKR1B1) has been considered as a significant target for designing drugs to counteract the development of diabetic complications. In the present study, molecular dynamics (MD) simulations and molecular mechanics generalized Born surface area (MM-GB/SA) calculations were performed to make sure which tautomer is the preferred one among three tautomeric forms (Mtia1, Mtia2, and Mtia3) of 3-Mercapto-5H-1,2,4-triazino[5,6-b]indole-5-acetic acid (Mtia) for binding to AKR1B1. The overall structural features and the results of calculated binding free energies indicate that Mtia1 and Mtia2 have more superiority than Mtia3 in terms of binding to AKR1B1. Furtherly, the local active site conformational characteristics and non-covalent interaction analysis were identified. The results indicate that the combination of Mtia2 and AKR1B1 is more stable than that of Mtia1. Furthermore, two extra hydrogen bonds between AKR1B1 and Mtia2 are found with respect to Mtia1. In addition, Mtia2 makes slightly stronger electrostatic interaction with the positively charged nicotinamide group of NADP than Mtia1. Based on the results above, Mtia2 is the preferred tautomeric form among the three tautomers. Our study can provide an insight into the details of the interaction between AKR1B1 and Mtia at the atomic level, and will be helpful for the further design of AKR1B1 inhibitors.

摘要

醛糖还原酶 (AKR1B1) 已被认为是设计药物以对抗糖尿病并发症发展的重要靶点。在本研究中,进行了分子动力学 (MD) 模拟和分子力学广义 Born 表面面积 (MM-GB/SA) 计算,以确定 3-巯基-5H-1,2,4-三嗪并[5,6-b]吲哚-5-乙酸 (Mtia) 的三种互变异构形式 (Mtia1、Mtia2 和 Mtia3) 中哪种互变异构体更适合与 AKR1B1 结合。整体结构特征和计算结合自由能的结果表明,Mtia1 和 Mtia2 在与 AKR1B1 结合方面比 Mtia3 具有更多的优势。此外,还确定了局部活性位点构象特征和非共价相互作用分析。结果表明,Mtia2 与 AKR1B1 的结合比 Mtia1 更稳定。此外,与 Mtia1 相比,在 AKR1B1 和 Mtia2 之间发现了另外两个氢键。此外,Mtia2 与 NADP 的烟酰胺基团之间的静电相互作用比 Mtia1 略强。基于以上结果,Mtia2 是三种互变异构体中更优选的互变异构形式。我们的研究可以深入了解 AKR1B1 和 Mtia 之间在原子水平上的相互作用细节,并有助于进一步设计 AKR1B1 抑制剂。

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