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首页> 外文期刊>Nucleic Acids Research >The helicase XPD unwinds bubble structures and is not stalled by DNA lesions removed by the nucleotide excision repair pathway.
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The helicase XPD unwinds bubble structures and is not stalled by DNA lesions removed by the nucleotide excision repair pathway.

机译:解旋酶XPD解开气泡结构,并且不会被核苷酸切除修复途径去除的DNA损伤所阻止。

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摘要

Xeroderma pigmentosum factor D (XPD) is a 5'-3' superfamily 2 helicase and the founding member of a family of DNA helicases with iron-sulphur cluster domains. As a component of transcription factor II H (TFIIH), XPD is involved in DNA unwinding during nucleotide excision repair (NER). Archaeal XPD is closely related in sequence to the eukaryal enzyme and the crystal structure of the archaeal enzyme has provided a molecular understanding of mutations causing xeroderma pigmentosum and trichothiodystrophy in humans. Consistent with a role in NER, we show that archaeal XPD can initiate unwinding from a DNA bubble structure, differentiating it from the related helicases FancJ and DinG. XPD was not stalled by substrates containing extrahelical fluorescein adducts, abasic sites nor a cyclobutane pyrimidine dimer, regardless of whether these modifications were placed on either the displaced or translocated strands. This suggests that DNA lesions repaired by NER may not present a barrier to XPD translocation in vivo, in contrast to some predictions. Preferential binding of a fluorescein-adducted oligonucleotide was observed, and XPD helicase activity was readily inhibited by both single- and double-stranded DNA binding proteins. These observations have several implications for the current understanding of the NER pathway.
机译:色干色素D(XPD)是5'-3'超家族2解旋酶,是具有铁硫簇结构域的DNA解旋酶家族的创始成员。 XPD作为转录因子II H(TFIIH)的一部分,参与核苷酸切除修复(NER)期间的DNA解链。古细菌XPD在序列上与真核酶密切相关,古细菌酶的晶体结构已经提供了对引起人类皮肤色素变性和硫代营养不良的突变的分子理解。与在NER中的作用一致,我们表明古细菌XPD可以启动DNA气泡结构的展开,使其与相关的解旋酶FancJ和DinG区别开来。 XPD不会因含有螺旋形荧光素加合物,无碱基位点或环丁烷嘧啶二聚体的底物而停滞,无论这些修饰是置于置换链上还是位于置换链上。这表明与某些预测相反,由NER修复的DNA损伤可能不会对体内XPD易位形成障碍。观察到荧光素加成的寡核苷酸的优先结合,并且单链和双链DNA结合蛋白都容易抑制XPD解旋酶活性。这些观察结果对目前对NER途径的理解有几个含义。

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