Wang Yan, Cai Wen-Sheng, Chen Luonan, Wang Guanyu
Department of Biology, Southern University of Science and Technology, Shenzhen 518055, China.
Research Center for Analytical Sciences, College of Chemistry, Nankai University, Tianjin 300071, China.
Oncotarget. 2017 Feb 14;8(7):12093-12107. doi: 10.18632/oncotarget.14517.
Phosphoglycerate mutase 1 (PGAM1) catalyzes the eighth step of glycolysis and is often found upregulated in cancer cells. To test the hypothesis that the phosphorylation of tyrosine 26 residue of PGAM1 greatly enhances its activity, we performed both conventional and steered molecular dynamics simulations on the binding and unbinding of PGAM1 to its substrates, with tyrosine 26 either phosphorylated or not. We analyzed the simulated data in terms of structural stability, hydrogen bond formation, binding free energy, etc. We found that tyrosine 26 phosphorylation enhances the binding of PGAM1 to its substrates through generating electrostatic environment and structural features that are advantageous to the binding. Our results may provide valuable insights into computer-aided design of drugs that specifically target cancer cells with PGAM1 tyrosine 26 phosphorylated.
磷酸甘油酸变位酶1(PGAM1)催化糖酵解的第八步反应,并且在癌细胞中常常被发现呈上调状态。为了验证PGAM1第26位酪氨酸残基的磷酸化会极大增强其活性这一假说,我们对PGAM1与底物结合和解离过程进行了常规分子动力学模拟和引导分子动力学模拟,其中第26位酪氨酸残基处于磷酸化或非磷酸化状态。我们从结构稳定性、氢键形成、结合自由能等方面分析了模拟数据。我们发现,酪氨酸26磷酸化通过产生有利于结合的静电环境和结构特征,增强了PGAM1与底物的结合。我们的结果可能为计算机辅助设计特异性靶向PGAM1酪氨酸26磷酸化癌细胞的药物提供有价值的见解。