Centre for Pharmacoinformatics, National Institute of Pharmaceutical Education and Research (NIPER), SAS Nagar, Punjab 160062, India.
J Chem Inf Model. 2010 Jun 28;50(6):1147-58. doi: 10.1021/ci900484g.
Molecular dynamics studies were performed on eight different crystal structure complexes of protein tyrosine phosphatase 1B (PTP1B) to study energy components and interactions important for the binding of substrates/inhibitors. Calculation of the binding free energy and the different components was accomplished using molecular mechanics--Poisson-Boltzmann surface area and--generalized Born surface area methods. Free energy was decomposed into individual amino acid contribution to know the relative importance. Hydrogen-bond existence maps for individual ligands were monitored comprehensively. It is evident from flexibility studies that the complexes exhibit rigidity in WPD loop, which is the first prerequisite for PTP1B inhibition. The study suggests that for designing active site inhibitors, there should be an optimum balance between total electrostatic and van der Waals interactions. It is also established that for allosteric inhibitors, van der Waals interactions are significant in addition to electrostatic interactions that are responsible for strong binding affinity.
对蛋白酪氨酸磷酸酶 1B(PTP1B)的 8 种不同晶体结构复合物进行分子动力学研究,以研究对底物/抑制剂结合很重要的能量组成和相互作用。使用分子力学-泊松-玻尔兹曼表面积和广义 Born 表面积方法计算结合自由能和不同组成部分。通过分解单个氨基酸贡献来确定相对重要性。全面监测单个配体的氢键存在图。从灵活性研究中可以明显看出,复合物在 WPD 环中表现出刚性,这是 PTP1B 抑制的第一个先决条件。该研究表明,在设计活性位点抑制剂时,总静电和范德华相互作用之间应该存在最佳平衡。此外,还确定对于别构抑制剂,除了负责强结合亲和力的静电相互作用外,范德华相互作用也很重要。