Yuan Haoliang, Zhuang Jin, Hu Shihe, Li Huifang, Xu Jinxing, Hu Yaning, Xiong Xiao, Chen Yadong, Lu Tao
Key Laboratory of Nuclear Medicine, Ministry of Health, Jiangsu Key Laboratory of Molecular Nuclear Medicine, Jiangsu Institute of Nuclear Medicine , Wuxi, 214063 Jiangsu, P. R. China.
J Chem Inf Model. 2014 Sep 22;54(9):2544-54. doi: 10.1021/ci500268s. Epub 2014 Sep 9.
c-Met has been considered as an attractive target for developing antitumor agents. The highly selective c-Met inhibitors provide invaluable opportunities for the combination with other therapies safely to achieve the optimal efficacy. In this work, a series of triazolopyrazine c-Met inhibitors with exquisitely selectivity were investigated using a combination of molecular docking, three-dimensional quantitative structure-activity relationship (3D-QSAR), and molecular dynamics simulation. Comparative molecular field analysis (CoMFA) and comparative molecular similarity index analysis (CoMSIA) models were developed to reveal the structural determinants for c-Met inhibition. Both models were validated to have high reliability and predictability, and contour map analysis suggested feature requirements for different substituents on the scaffold. It is worth noting that an important hydrogen bond rich region was identified in the unique narrow channel, which is distinct from other kinases. Molecular dynamics simulations and binding free energy calculations provided further support that suitable groups in this hydrogen bond rich region made great contributions to the binding of ligands. Moreover, hydrogen bonds with residues of the narrow channel were also indicated to be essential to improve the activity and selectivity. This study will facilitate the discovery and optimization of novel c-Met inhibitors with higher activity and selectivity.
c-Met被认为是开发抗肿瘤药物的一个有吸引力的靶点。高选择性的c-Met抑制剂为与其他疗法安全联合以实现最佳疗效提供了宝贵机会。在这项工作中,结合分子对接、三维定量构效关系(3D-QSAR)和分子动力学模拟,对一系列具有优异选择性的三唑并吡嗪c-Met抑制剂进行了研究。建立了比较分子场分析(CoMFA)和比较分子相似性指数分析(CoMSIA)模型,以揭示c-Met抑制的结构决定因素。两个模型均经验证具有高可靠性和可预测性,等高线图分析表明了支架上不同取代基的特征要求。值得注意的是,在独特的狭窄通道中发现了一个重要的富含氢键的区域,这与其他激酶不同。分子动力学模拟和结合自由能计算进一步支持了该富含氢键区域中的合适基团对配体结合有很大贡献。此外,与狭窄通道残基的氢键也被表明对提高活性和选择性至关重要。这项研究将有助于发现和优化具有更高活性和选择性的新型c-Met抑制剂。