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首页> 外文期刊>Chemical biology and drug design >Insight into selective mechanism of class of I-BRD9 inhibitors toward BRD9 based on molecular dynamics simulations
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Insight into selective mechanism of class of I-BRD9 inhibitors toward BRD9 based on molecular dynamics simulations

机译:基于分子动力学模拟的基于分子动力学模拟,探讨I-BRD9抑制剂类别的选择性机制

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Recently, bromodomain-containing protein 9 (BRD9), 7 (BRD7), and 4 (BRD4) have been potential targets of anticancer drug design. Molecular dynamic simulations followed by molecular mechanics Poisson-Boltzmann surface area calculation were performed to study the selective mechanism of I-BRD9 inhibitor H1B and its derivatives N1D, TVU, and 5V2 toward BRD9 and BRD4. The rank of our calculated binding free energies agrees with that of the experimental data. The results show that binding free energy of H1B to BRD7 is slightly lower than that of H1B to BRD9, and all four inhibitors bind more tightly to BRD9 than to BRD4. Decomposition of binding free energies into individual residues implies that Ile164 and Asn211 in BRD7 and Ile53 and Asn100 in BRD9 play a significant role in the selectivity of H1B toward BRD7 and BRD9. Besides, several key residues Phe44, Ile53, Asn100, Thr104 in BRD9 and Pro82, Lys91, Asn140, Asp144 in BRD4 that are located in the ZA-loop and BC-loop provide significant contributions to binding selectivity of inhibitors to BRD9 and BRD4. This study is expected to provide important theoretical guidance for rational designs of highly selective inhibitors targeting BRD9 and BRD4.
机译:最近,含溴酰胺的蛋白质9(BRD9),7(BRD7)和4(BRD4)是抗癌药物设计的潜在目标。进行分子动态模拟,然后进行分子力学泊松 - 博尔兹曼表面区域计算,以研究I-BRD9抑制剂H1B及其衍生物N1D,TVU和5V2朝向BRD9和BRD4的选择性机制。我们计算的绑定能量的等级与实验数据同意。结果表明,H1b至Brd7的结合能量略低于H1b至BRD9的可自由能,并且所有四个抑制剂都比BRD9更紧密地结合至BRD4。将无限化能量与单个残基的分解意味着BRD7和ILE53和BRD9中的ASN100中的ILE164和ASN211在朝向BRD7和BRD9的H1B的选择性中起重要作用。此外,位于Za-Loop和BC环中的BRD9和Pro82中的几个关键残留PHE44,ILE53,ASN100,THR104,LYS91,ASN140,BRD4中的BRD4中的ASP144为BRD9和BRD4的结合选择性提供了显着的贡献。本研究预计将为靶向BRD9和BRD4的高选择性抑制剂的合理设计提供重要的理论指导。

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