首页> 外文期刊>Journal of Computational Chemistry: Organic, Inorganic, Physical, Biological >Conformational Selection of Protein Kinase A Revealed by Flexible-Ligand Flexible-Protein Docking
【24h】

Conformational Selection of Protein Kinase A Revealed by Flexible-Ligand Flexible-Protein Docking

机译:柔性配体柔性蛋白对接揭示了蛋白激酶A的构象选择

获取原文
获取原文并翻译 | 示例
           

摘要

Protein kinases have high structural plasticity: their Structure can change significantly, depending oil what ligands are bound to them. Rigid-protein docking methods are not capable of describing Such effects. Here, we present a new flexible-ligand flexible-protein docking model in which the protein can adopt conformations between two extremes observed experimentally. The model utilized a molecular dynamics-based simulated annealing cycling protocol and a distance-dependent dielectric model to perforin docking. By testing this model oil docking four diverse ligands to protein kinase A, we found that the ligands were able to clock successfully to the protein with the proper conformations of the protein induced. By imposing relatively soft conformational restraints to the protein during docking. this model reduced computational costs yet permitted essential conformational changes that were essential for these inhibitors to dock properly to the protein. For example. without adequate movement of the glycine-rich loop. it was difficult for the ligands to move from the surface of the protein to the binding site. In addition. these simulations called for better ways to compare simulation results with experiment other than using the popular root-mean-square deviation between the structure of a ligand in a docking pose and that in experiment because the structure of the protein also changed. In this work, we also calculated the correlation coefficient between protein-ligand/protein-protein distances in the docking structure and those in the crystal structure to check how well a ligand docked into the binding site of the protein and whether the proper conformation of the protein was induced.
机译:蛋白激酶具有很高的结构可塑性:取决于油与它们结合的配体,它们的结构可能发生显着变化。刚性蛋白质对接方法无法描述此类影响。在这里,我们提出了一个新的柔性配体柔性蛋白质对接模型,其中蛋白质可以采用实验观察到的两个极端之间的构象。该模型利用了基于分子动力学的模拟退火循环方案和距离相关的介电模型来进行穿孔对接。通过测试该模型,将四种不同的配体与蛋白激酶A停靠在一起,我们发现这些配体能够成功诱导出具有适当诱导蛋白结构的蛋白。通过在对接过程中对蛋白质施加相对软的构象约束。该模型降低了计算成本,但允许必要的构象变化,这些变化对于这些抑制剂正确地对接蛋白质至关重要。例如。没有充分移动富含甘氨酸的环。配体很难从蛋白质表面移动到结合位点。此外。这些模拟需要更好的方法来将模拟结果与实验进行比较,而不是使用对接姿势中的配体结构与实验中的配体结构之间普遍存在的均方根偏差,因为蛋白质的结构也发生了变化。在这项工作中,我们还计算了对接结构中蛋白质-配体/蛋白质-蛋白质距离与晶体结构中蛋白质-配体/蛋白质-蛋白质之间的距离之间的相关系数,以检查配体对接至蛋白质结合位点的程度以及是否正确的构象。蛋白被诱导。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号