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Active destabilization of base pairs by a DNA glycosylase wedge initiates damage recognition

机译:DNA糖基化酶楔对碱基对的主动去稳定作用引发损伤识别

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摘要

Formamidopyrimidine-DNA glycosylase (Fpg) excises 8-oxoguanine (oxoG) from DNA but ignores normal guanine. We combined molecular dynamics simulation and stopped-flow kinetics with fluorescence detection to track the events in the recognition of oxoG by Fpg and its mutants with a key phenylalanine residue, which intercalates next to the damaged base, changed to either alanine (F110A) or fluorescent reporter tryptophan (F110W). Guanine was sampled by Fpg, as evident from the F110W stopped-flow traces, but less extensively than oxoG. The wedgeless F110A enzyme could bend DNA but failed to proceed further in oxoG recognition. Modeling of the base eversion with energy decomposition suggested that the wedge destabilizes the intrahelical base primarily through buckling both surrounding base pairs. Replacement of oxoG with abasic (AP) site rescued the activity, and calculations suggested that wedge insertion is not required for AP site destabilization and eversion. Our results suggest that Fpg, and possibly other DNA glycosylases, convert part of the binding energy into active destabilization of their substrates, using the energy differences between normal and damaged bases for fast substrate discrimination.
机译:Formamidopyrimidine-DNA糖基化酶(Fpg)从DNA中切除8-氧代鸟嘌呤(oxoG),但忽略了正常的鸟嘌呤。我们将分子动力学模拟和停流动力学与荧光检测相结合,以跟踪Fpg及其突变体与关键苯丙氨酸残基的插入对oxoG的识别,该残基插入损坏的碱基旁边,变为丙氨酸(F110A)或荧光记者色氨酸(F110W)。从F110W停止流痕迹可以明显地看出,鸟嘌呤是由Fpg取样的,但其范围不及oxoG。无楔形的F110A酶可以弯曲DNA,但在oxoG识别中无法进一步进行。用能量分解对碱基外翻进行建模表明,楔形主要是通过使两个周围的碱基对弯曲来破坏螺旋内碱基的稳定性。用无碱基(AP)位点替代oxoG拯救了该活性,计算表明,AP位点不稳定和外翻不需要楔形插入。我们的结果表明,Fpg和其他可能的DNA糖基化酶可以利用正常碱基和受损碱基之间的能量差将部分结合能转化为其底物的主动去稳定化作用,从而快速区分底物。

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