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Selective inhibition mechanism of nitroxoline to the BET family: Insight from molecular simulations

机译:硝红素碱对BET家族的选择性抑制机制:分子模拟中的洞察

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Although the proteins in bromodomain and extra-terminal domain (BET) family are promising therapy drug targets for numerous human diseases, the binding effectiveness is interfered by the competition from non-BET protein BRD9. In this study, molecular docking, molecular dynamics simulations, binding free energy calculations and per-residue energy decomposition methods were employed to clarify the selective inhibition mechanism of nitroxoline. The results showed that the different cavity volume of effective embedding inhibitor and the changes in conserved residues were associated with the significant higher selectivity of inhibitor nitroxoline for BET family than non-BET protein (BRD9). In addition, the non-polar interactions occurred in Phe83, Va187 at ZA loop, and the polar interaction appeared in Met132, Asn135 at BC loop. Therefore, when designing a new inhibitor, it could better improve the inhibitor activity by introducing the heteroatom conjugated pyridine-like moiety and the strong electron-withdrawing nitro-like moiety. Overall, this study not only clarified the molecular mechanism of the selective inhibition of nitroxoline, but also provided insight into designing more effective BET inhibitors in next step.
机译:尽管溴代多巴胺(bromodomain)和末端外结构域(extra terminal domain,BET)家族中的蛋白质是许多人类疾病的治疗药物靶点,但非BET蛋白质BRD9的竞争干扰了其结合效果。本研究采用分子对接、分子动力学模拟、结合自由能计算和单残基能量分解等方法,阐明了硝喹啉的选择性抑制机理。结果表明,与非BET蛋白(BRD9)相比,有效包埋抑制剂的不同空腔体积和保守残基的变化与抑制剂硝喹啉对BET家族的选择性显著提高有关。此外,非极性相互作用出现在ZA环的Phe83、Va187中,极性相互作用出现在BC环的Met132、Asn135中。因此,在设计新的抑制剂时,引入杂原子共轭的类吡啶部分和强吸电子的类硝基部分,可以更好地提高抑制剂的活性。总的来说,这项研究不仅阐明了选择性抑制硝喹啉的分子机制,而且为下一步设计更有效的BET抑制剂提供了见解。

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