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Thermodynamic and kinetic basis for recognition and repair of 8-oxoguanine in DNA by human 8-oxoguanine-DNA glycosylase

机译:人类8-氧鸟嘌呤-DNA糖基化酶识别和修复DNA中8-氧鸟嘌呤的热力学和动力学基础

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摘要

We have used a stepwise increase in ligand complexity approach to estimate the relative contributions of the nucleotide units of DNA containing 7,8-dihydro-8-oxoguanine (oxoG) to its total affinity for human 8-oxoguanine DNA glycosylase (OGG1) and construct thermodynamic models of the enzyme interaction with cognate and non-cognate DNA. Non-specific OGG1 interactions with 10–13 nt pairs within its DNA-binding cleft provides approximately 5 orders of magnitude of its affinity for DNA (ΔG° approximately −6.7 kcal/mol). The relative contribution of the oxoG unit of DNA (ΔG° approximately −3.3 kcal/mol) together with other specific interactions (ΔG° approximately −0.7 kcal/mol) provide approximately 3 orders of magnitude of the affinity. Formation of the Michaelis complex of OGG1 with the cognate DNA cannot account for the major part of the enzyme specificity, which lies in the kcat term instead; the rate increases by 6–7 orders of magnitude for cognate DNA as compared with non-cognate one. The kcat values for substrates of different sequences correlate with the DNA twist, while the KM values correlate with ΔG° of the DNA fragments surrounding the lesion (position from −6 to +6). The functions for predicting the KM and kcat values for different sequences containing oxoG were found.
机译:我们已使用逐步增加配体复杂性的方法来估计包含7,8-二氢-8-氧鸟嘌呤(oxoG)的DNA核苷酸单元对其对人8-氧鸟嘌呤DNA糖基化酶(OGG1)的总亲和力的相对贡献酶与同源和非同源DNA相互作用的热力学模型。与DNA结合裂隙中10-13nt对的非特异性OGG1相互作用提供了约5个数量级的DNA亲和力(ΔG°约为-6.7kcal / mol)。 DNA的oxoG单位的相对贡献(ΔG°约为-3.3 kcal / mol)与其他特定的相互作用(ΔG°大约-0.7 kcal / mol)提供约3个数量级的亲和力。 OGG1的Michaelis配合物与同源DNA的形成不能解释酶特异性的主要部分,而在于kcat术语。与非同源DNA相比,同源DNA的比率增加了6-7个数量级。不同序列的底物的kcat值与DNA扭曲相关,而KM值与病变周围的DNA片段(-6至+6位置)的ΔG°相关。发现了用于预测包含oxoG的不同序列的KM和kcat值的函数。

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