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肼在草酰乙酸与磷酸烯醇丙酮酸羧激酶(PEPCK)相互作用中的关键作用:ONIOM 计算。

Key role of hydrazine to the interaction between oxaloacetic against phosphoenolpyruvic carboxykinase (PEPCK): ONIOM calculations.

机构信息

Department of Chemistry, Faculty of Science, Kasetsart University, Chatuchak, Bangkok, Thailand 10900.

出版信息

J Mol Model. 2013 Aug;19(8):3165-74. doi: 10.1007/s00894-013-1842-8. Epub 2013 Apr 27.

Abstract

The interactions between oxaloacetic (OAA) and phosphoenolpyruvic carboxykinase (PEPCK) binding pocket in the presence and absence of hydrazine were carried out using quantum chemical calculations, based on the two-layered ONIOM (ONIOM2) approach. The complexes were partially optimized by ONIOM2 (B3LYP/6-31G(d):PM6) method while the interaction energies between OAA and individual residues surrounding the pocket were performed at the MP2/6-31G(d,p) level of theory. The calculated interaction energies (INT) indicated that Arg87, Gly237, Ser286, and Arg405 are key residues for binding to OAA with the INT values of -1.93, -2.06, -2.47, and -3.16 kcal mol(-1), respectively. The interactions are mainly due to the formation of hydrogen bonding interactions with OAA. Moreover, using ONIOM2 (B3LYP/6-31G(d):PM6) applied on the PEPCKHS complex, two proton transfers were observed; first, the proton was transferred from the carboxylic group of OAA to hydrazine while the second one was from Asp311 to Lys244. Such reactions cause the generation of binding strength of OAA to the pocket via electrostatic interaction. The orientations of Lys243, Lys244, His264, Asp311, Phe333, and Arg405 were greatly deviated after hydrazine incorporation. These indicate that hydrazine plays an important role in terms of not only changing the conformation of the binding pocket, but is also tightly bound to OAA resulting in its conformation change in the pocket. The understanding of such interaction can be useful for the design of hydrazine-based inhibitor for antichachexia agents.

摘要

在存在和不存在联氨的情况下,使用量子化学计算,基于两层 ONIOM(ONIOM2)方法,研究了草酰乙酸(OAA)和磷酸烯醇丙酮酸羧激酶(PEPCK)结合口袋之间的相互作用。通过 ONIOM2(B3LYP/6-31G(d):PM6)方法对复合物进行了部分优化,而口袋周围单个残基与 OAA 之间的相互作用能则在 MP2/6-31G(d,p)理论水平上进行。计算的相互作用能(INT)表明,Arg87、Gly237、Ser286 和 Arg405 是与 OAA 结合的关键残基,其 INT 值分别为-1.93、-2.06、-2.47 和-3.16 kcal/mol。这些相互作用主要是由于与 OAA 形成氢键相互作用。此外,在 PEPCKHS 配合物上应用 ONIOM2(B3LYP/6-31G(d):PM6),观察到了两个质子转移;首先,质子从 OAA 的羧基转移到联氨,然后从 Asp311 转移到 Lys244。这种反应导致通过静电相互作用生成 OAA 与口袋的结合强度。在加入联氨后,Lys243、Lys244、His264、Asp311、Phe333 和 Arg405 的取向发生了很大的偏离。这表明,联氨不仅在改变结合口袋的构象方面起着重要作用,而且与 OAA 紧密结合,导致其在口袋中的构象发生变化。这种相互作用的理解对于设计基于联氨的抗恶病质剂抑制剂可能是有用的。

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