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Naturally occurring polyphenol morin hydrate inhibits enzymatic activity of N-methylpurine DNA glycosylase a DNA repair enzyme with various roles in human disease

机译:天然存在的多酚莫林水合物可抑制N-甲基嘌呤DNA糖基化酶(一种在人类疾病中具有多种作用的DNA修复酶)的酶促活性

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摘要

Interest in the mechanisms of DNA repair pathways, including the base excision repair (BER) pathway specifically, has heightened since these pathways have been shown to modulate important aspects of human disease. Modulation of the expression or activity of a particular BER enzyme, N-methylpurine DNA glycosylase (MPG), has been demonstrated to play a role in carcinogenesis and resistance to chemotherapy as well as neurodegenerative diseases, which has intensified the focus on studying MPG-related mechanisms of repair. A specific small molecule inhibitor for MPG activity would be a valuable biochemical tool for understanding these repair mechanisms. By screening several small molecule chemical libraries, we identified a natural polyphenolic compound, morin hydrate, which inhibits MPG activity specifically (IC50 = 2.6 µM). Detailed mechanism analysis showed that morin hydrate inhibited substrate DNA binding of MPG, and eventually the enzymatic activity of MPG. Computational docking studies with an x-ray derived MPG structure as well as comparison studies with other structurally-related flavanoids offer a rationale for the inhibitory activity of morin hydrate observed. The results of this study suggest that the morin hydrate could be an effective tool for studying MPG function and it is possible that morin hydrate and its derivatives could be utilized in future studies focused on the role of MPG in human disease.
机译:对DNA修复途径的机制,尤其是碱基切除修复(BER)途径的机制的兴趣日益浓厚,因为这些途径已显示出可调节人类疾病的重要方面。已证明对特定BER酶(N-甲基嘌呤DNA糖基化酶(MPG))的表达或活性的调节在致癌性和对化学疗法以及神经退行性疾病的抗性中起着作用,这加剧了人们对MPG相关研究的关注修复机制。 MPG活性的特定小分子抑制剂将是了解这些修复机制的宝贵生化工具。通过筛选几个小分子化学文库,我们鉴定了一种天然多酚化合物莫林水合物,它可以特异性抑制MPG活性(IC50 = 2.6 µM)。详细的机理分析表明,水合茉莉酸能抑制MPG的底物DNA结合,并最终抑制MPG的酶活性。 X射线衍生的MPG结构的计算对接研究以及与其他与结构相关的类黄酮的比较研究为所观察到的水合morin的抑制活性提供了理论依据。这项研究的结果表明,水合茉莉可能是研究MPG功能的有效工具,而且水合茉莉及其衍生物有可能在未来针对MPG在人类疾病中的作用的研究中得到利用。

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