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伊马替尼及其激酶结合的分子力学模型。

A molecular mechanics model for imatinib and imatinib:kinase binding.

机构信息

Department of Biology, Laboratoire de Biochimie (CNRS UMR7654), Ecole Polytechnique, Palaiseau, 91128, France.

出版信息

J Comput Chem. 2010 May;31(7):1550-60. doi: 10.1002/jcc.21442.

Abstract

Imatinib is an important anticancer drug, which binds specifically to the Abl kinase and blocks its signalling activity. To model imatinib:protein interactions, we have developed a molecular mechanics force field for imatinib and four close analogues, which is consistent with the CHARMM force field for proteins and nucleic acids. Atomic charges and Lennard-Jones parameters were derived from a supermolecule ab initio approach. We considered the ab initio energies and geometries of a probe water molecule interacting with imatinib fragments at 32 different positions. We considered both a neutral and a protonated imatinib. The final RMS deviation between the ab initio and force field energies, averaged over both forms, was 0.2 kcal/mol. The model also reproduces the ab initio geometry and flexibility of imatinib. To apply the force field to imatinib:Abl simulations, it is also necessary to determine the most likely imatinib protonation state when it binds to Abl. This was done using molecular dynamics free energy simulations, where imatinib is reversibly protonated during a series of MD simulations, both in solution and in complex with Abl. The simulations indicate that imatinib binds to Abl in its protonated, positively-charged form. To help test the force field and the protonation prediction, we did MD free energy simulations that compare the Abl binding affinities of two imatinib analogs, obtaining good agreement with experiment. Finally, two new imatinib variants were considered, one of which is predicted to have improved Abl binding. This variant could be of interest as a potential drug.

摘要

伊马替尼是一种重要的抗癌药物,它特异性地与 Abl 激酶结合并阻断其信号活性。为了模拟伊马替尼:蛋白质相互作用,我们为伊马替尼和四个密切类似物开发了一种分子力学力场,该力场与蛋白质和核酸的 CHARMM 力场一致。原子电荷和 Lennard-Jones 参数是从超分子从头计算方法中得出的。我们考虑了探针水分子与伊马替尼片段在 32 个不同位置相互作用的从头计算能量和几何形状。我们考虑了中性和质子化的伊马替尼。两种形式的从头计算能量和力场能量之间的最终 RMS 偏差为 0.2 kcal/mol。该模型还再现了伊马替尼的从头计算几何形状和灵活性。为了将力场应用于伊马替尼:Abl 模拟,还需要确定伊马替尼与 Abl 结合时最有可能的质子化状态。这是通过分子动力学自由能模拟来完成的,在一系列 MD 模拟中,伊马替尼在溶液中和与 Abl 复合时可逆地质子化。模拟表明,伊马替尼以其质子化的正电荷形式与 Abl 结合。为了帮助测试力场和质子化预测,我们进行了 MD 自由能模拟,比较了两种伊马替尼类似物的 Abl 结合亲和力,与实验结果吻合良好。最后,考虑了两种新的伊马替尼变体,其中一种被预测具有改善的 Abl 结合。这种变体可能作为一种潜在的药物具有吸引力。

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