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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Roles of Active-Site Amino Acid Residues in Specific Recognition of DNA Lesions by Human 8-Oxoguanine-DNA Glycosylase (OGG1)
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Roles of Active-Site Amino Acid Residues in Specific Recognition of DNA Lesions by Human 8-Oxoguanine-DNA Glycosylase (OGG1)

机译:活性位点氨基酸残基的作用在人8-氧化羽瘤 - DNA糖基糖基糖基团特异性识别DNA病变(OGG1)

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摘要

Human 8-oxoguanine-DNA glycosylase (hOGG1) possesses very high specificity for 8-oxoguanine (oxoG), even though this damaged base differs from normal guanine by only two atoms. Our aim was to determine the roles of certain catalytically important amino acid residues in the hOGG1 enzymatic pathway and describe their involvement in the mechanism of DNA lesion recognition. Molecular dynamic simulation and pre-steady-state fluorescence kinetics were performed to analyze the conformational behavior of wild-type hOGG1 and mutants G42S, D268A, and K249Q as well as damaged and undamaged DNA. A loss of electrostatic interactions in the K249Q mutant leads to the disruption of specific contacts in the active site of the enzyme and the loss of catalytic activity. The absence of residue Asp-268 abrogates the ability of the enzyme to fully flip out the oxoG base from the double helix, thereby disrupting proper positioning of the damaged base in the active site. Furthermore, substitution of Gly-42 with Ser, which forms a damage-specific H-bond with the N7 atom of the oxoG base, creates a stable H-bond between N7 of undamaged G and O gamma of Ser-42. Nevertheless, positioning of the undamaged base in the active site is unsuitable for catalytic hydrolysis of the N-glycosidic bond.
机译:人类8-氧化淘性-DNA糖基糖酶(HogG1)对8-氧胍碱(Oxog)具有非常高的特异性,即使这种受损的基座不同于两个原子的血管内。我们的目的是确定某些催化重要氨基酸残基在HogG1酶促途径中的作用,并描述其参与DNA病变识别的机制。进行分子动态模拟和预稳态荧光动力学,分析野生型Hogg1和突变体G42s,D268a和K249q以及损坏和未被损坏的DNA的构象行为。 K249Q突变体中的静电相互作用的丧失导致酶活性位点中的特定接触的破坏以及催化活性的损失。没有残留物ASP-268废除酶从双螺旋完全翻出氧气碱的能力,从而扰乱受活性位点中受损碱的适当定位。此外,用SER取代与SER形成损伤的H键与氧气基碱的N7原子,在未损坏的G和SER-42的oγ之间产生稳定的H键。然而,在活性位点中的未损坏碱的定位不适合N-糖苷键的催化水解。

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