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首页> 外文期刊>Frontiers in Pharmacology >Importance of Incorporating Protein Flexibility in Molecule Modeling: A Theoretical Study on Type I 1/2 NIK Inhibitors
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Importance of Incorporating Protein Flexibility in Molecule Modeling: A Theoretical Study on Type I 1/2 NIK Inhibitors

机译:在分子建模中掺入蛋白质柔韧性的重要性:I型 1/2 Nik抑制剂的理论研究

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NF-κB inducing kinase (NIK), which is considered as the central component of the non-canonical NF-κB pathway, has been proved to be an important target for the regulation of the immune system. In the past few years, NIK inhibitors with various scaffolds have been successively reported, among which type I ~(1/2) inhibitors that can not only bind in the ATP-binding pocket at the DFG-in state but also extend into an additional back pocket, make up the largest proportion of the NIK inhibitors, and are worthy of more attention. In this study, an integration protocol that combines molecule docking, MD simulations, ensemble docking, MM/GB(PB)SA binding free energy calculations, and decomposition was employed to understand the binding mechanism of 21 tricyclic type I ~(1/2) NIK inhibitors. It is found that the docking accuracy is largely dependent on the selection of docking protocols as well as the crystal structures. The predictions given by the ensemble docking based on multiple receptor conformations (MRCs) and the MM/GB(PB)SA calculations based on MD simulations showed higher linear correlations with the experimental data than those given by conventional rigid receptor docking (RRD) methods (Glide, GOLD, and Autodock Vina), highlighting the importance of incorporating protein flexibility in predicting protein–ligand interactions. Further analysis based on MM/GBSA demonstrates that the hydrophobic interactions play the most essential role in the ligand binding to NIK, and the polar interactions also make an important contribution to the NIK-ligand recognition. A deeper comparison of several pairs of representative derivatives reveals that the hydrophobic interactions are vitally important in the structural optimization of analogs as well. Besides, the H-bond interactions with some key residues and the large desolvation effect in the back pocket devote to the affinity distinction. It is expected that our study could provide valuable insights into the design of novel and potent type I ~(1/2) NIK inhibitors.
机译:被认为是非规范NF-κB途径的中心分组分的NF-κB诱导激酶(NIK)被证明是对免疫系统调节的重要目标。在过去的几年中,连续报道了具有各种支架的NIK抑制剂,其中I〜(1/2)抑制剂,其不仅可以在DFG-IN状态下的ATP结合口袋中的结合,而且还延伸到另一种情况下后袋,弥补尼克抑制剂的最大比例,值得更加关注。在该研究中,采用了一种结合分子对接,MD模拟,集合对接,MM / GB(PB)SA结合自由能量计算和分解的集成方案,以了解21三环型I〜(1/2)的结合机制NIK抑制剂。发现对接精度在很大程度上取决于对接协议以及晶体结构的选择。基于MD模拟的基于多个受体构象(MRC)和MM / GB(PB)SA计算的集合对接给出的预测显示了与常规刚性受体对接(RRD)方法给出的实验数据的线性相关性更高的线性相关性(滑动,金和自动困难vina),突出了在预测蛋白质 - 配体相互作用中掺入蛋白质柔韧性的重要性。基于MM / GBSA的进一步分析表明疏水相互作用在与NIK的配体中发挥着最重要的作用,极性相互作用也对NIK-LIGAND识别作出了重要贡献。几对代表性衍生物的更深比较表明,疏水性相互作用在类似物的结构优化中也是至关重要的。此外,与一些关键残留物的H键相互作用和后袋中的大型脱酚效果投入到亲和力区别。预计我们的研究可以为新型和有效类型I〜(1/2)Nik抑制剂的设计提供有价值的见解。

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