Zhang Jiajing, Yang Wei, Piquemal Jean-Philip, Ren Pengyu
Department of Biomedical Engineering, The University of Texas at Austin, TX 78712.
J Chem Theory Comput. 2012 Apr 10;8(4):1314-1324. doi: 10.1021/ct200812y. Epub 2012 Jan 2.
As the second most abundant cation in human body, zinc is vital for the structures and functions of many proteins. Zinc-containing matrix metalloproteinases (MMPs) have been widely investigated as potential drug targets in a range of diseases ranging from cardiovascular disorders to cancers. However, it remains a challenge in theoretical studies to treat zinc in proteins with classical mechanics. In this study, we examined Zn(2+) coordination with organic compounds and protein side chains using a polarizable atomic multipole based electrostatic model. We find that polarization effect plays a determining role in Zn(2+) coordination geometry in both matrix metalloproteinase (MMP) complexes and in zinc-finger proteins. In addition, the relative binding free energies of selected inhibitors binding with MMP13 have been estimated and compared with experimental results. While not directly interacting with the small molecule inhibitors, the permanent and polarizing field of Zn(2+) exerts a strong influence on the relative affinities of the ligands. The simulation results also reveal the polarization effect on binding is ligand dependent and thus difficult to be incorporated into fixed-charge models implicitly.
作为人体中第二丰富的阳离子,锌对于许多蛋白质的结构和功能至关重要。含锌基质金属蛋白酶(MMPs)作为一系列疾病(从心血管疾病到癌症)的潜在药物靶点已得到广泛研究。然而,在理论研究中,用经典力学处理蛋白质中的锌仍然是一个挑战。在本研究中,我们使用基于可极化原子多极子的静电模型研究了Zn(2+)与有机化合物和蛋白质侧链的配位情况。我们发现,极化效应在基质金属蛋白酶(MMP)复合物和锌指蛋白中Zn(2+)的配位几何结构中起着决定性作用。此外,已估算了所选抑制剂与MMP13结合的相对结合自由能,并与实验结果进行了比较。虽然Zn(2+)不直接与小分子抑制剂相互作用,但其永久场和极化场对配体的相对亲和力有很大影响。模拟结果还表明,结合上的极化效应依赖于配体,因此难以隐含地纳入固定电荷模型。