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小分子与蛋白质结合时的构象变化。

Conformational changes of small molecules binding to proteins.

作者信息

Nicklaus M C, Wang S, Driscoll J S, Milne G W

机构信息

Laboratory of Medicinal Chemistry, National Cancer Institute, National Institutes of Health, Bethesda, MD 20892, USA.

出版信息

Bioorg Med Chem. 1995 Apr;3(4):411-28. doi: 10.1016/0968-0896(95)00031-b.

Abstract

Flexible molecules change their conformation upon binding to a protein. This was shown by the analysis of small molecules whose structures have been determined by X-ray crystallography of both the pure compound and the compound bound to a protein. Thirty-three compounds present both in the Cambridge Structural Database and the Brookhaven Protein Data Bank were analyzed, and both were compared with the global energy minimum conformation calculated by the molecular mechanics program CHARMm. It was found that the conformation bound to the protein differs from that in the crystal structure and also from that of the global energy minimum, and the degree of deformation depends upon the number of freely rotatable bonds in the molecule. Analysis of the conformational energies of the flexible molecules showed that, for most of those compounds, both the crystal and the protein-bound conformations are energetically well above the global minimum, and, in many cases, not even in any local energy minimum. Semi-empirical calculations performed for a select number of structures, using both the AM1 and PM3 hamiltonians, confirmed these results. These findings are discussed as to their impact upon contemporary methods of drug design.

摘要

柔性分子在与蛋白质结合时会改变其构象。这一点通过对小分子的分析得到了证明,这些小分子的结构已通过纯化合物以及与蛋白质结合的化合物的X射线晶体学确定。对剑桥结构数据库和布鲁克海文蛋白质数据库中均存在的33种化合物进行了分析,并将两者与通过分子力学程序CHARMm计算出的全局能量最低构象进行了比较。结果发现,与蛋白质结合的构象不同于晶体结构中的构象,也不同于全局能量最低构象,并且变形程度取决于分子中可自由旋转键的数量。对柔性分子构象能量的分析表明,对于大多数此类化合物而言,晶体构象和与蛋白质结合的构象在能量上都远高于全局最小值,而且在许多情况下,甚至不在任何局部能量最小值处。使用AM1和PM3哈密顿量对选定数量的结构进行的半经验计算证实了这些结果。讨论了这些发现对当代药物设计方法的影响。

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