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识别过程的分子基础:核糖核酸酶T1鸟嘌呤主要识别位点中的氢键模式。

Molecular basis of the recognition process: hydrogen-bonding patterns in the guanine primary recognition site of ribonuclease T1.

作者信息

Gu Jiande, Wang Jing, Leszczynski Jerzy

机构信息

Drug Design & Discovery Center, State Key Laboratory of Drug Research, Shanghai Institute of Materia Medica, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai 203201, People's Republic of China.

出版信息

J Phys Chem B. 2006 Jul 13;110(27):13590-6. doi: 10.1021/jp061360x.

Abstract

Investigation of the intrinsic H-bonding pattern of the guanine complex with a sizable segment (from Asn43 to Glu46) of the primary recognition site (PRS) in RNase T1 at the B3LYP/6-311G(d,p) level of theory enables the electronic density characteristics of the H-bonding patterns of the guanine-PRS complexes to be identified. The perfect H-bonding pattern in the guanine recognition site is achieved through the guanine complex interactions with the large segment of the PRS. Two significant short H-bonds, O epsilon 1...HN1 and O epsilon 2...HN2, have been identified. The similar short H-bond distances found in the anionic GC- base pair and in this study suggest that the short hydrogen-bond distances may be characteristic of the multiple H-bonded anionic nucleobases. The H-bonding energy distribution, the geometric analysis of the H-bonding pattern, and the electron structure characteristics of the H-bonds in the guanine PRS of RNase T1 all suggest that the O epsilon 1...HN1 and O epsilon 2...HN2 side-chain H-bonds dominate the binding at the guanine recognition site of RNase T1. Also, the geometry evidence, the electron structure characteristics, and the properties of the bond critical points of the H-bonds reveal that the side-chain H-bonding and the main-chain H-bonding are mutually intensifying. Thus the positive cooperativity between Asn43 to Tyr45 and Glu46 is proposed.

摘要

在B3LYP/6 - 311G(d,p)理论水平下,对鸟嘌呤与核糖核酸酶T1中主要识别位点(PRS)相当大的一段序列(从Asn43到Glu46)形成的复合物的内在氢键模式进行研究,能够确定鸟嘌呤 - PRS复合物氢键模式的电子密度特征。鸟嘌呤识别位点中完美的氢键模式是通过鸟嘌呤复合物与PRS的大片段相互作用实现的。已确定了两个重要的短氢键,即O ε1...HN1和O ε2...HN2。在阴离子GC碱基对以及本研究中发现的相似短氢键距离表明,短氢键距离可能是多个氢键连接的阴离子核碱基的特征。核糖核酸酶T1的鸟嘌呤PRS中氢键的能量分布、氢键模式的几何分析以及氢键的电子结构特征均表明,O ε1...HN1和O ε2...HN2侧链氢键在核糖核酸酶T1的鸟嘌呤识别位点的结合中起主导作用。此外,氢键的几何证据、电子结构特征以及键临界点的性质表明,侧链氢键和主链氢键相互增强。因此,提出了Asn43至Tyr45与Glu46之间的正协同作用。

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