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本文引用的文献

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DNA substrate preparation for atomic force microscopy studies of protein-DNA interactions.用于原子力显微镜研究蛋白质-DNA 相互作用的 DNA 底物制备。
J Mol Recognit. 2013 Dec;26(12):605-17. doi: 10.1002/jmr.2311.
2
Prokaryotic nucleotide excision repair.原核生物核苷酸切除修复。
Cold Spring Harb Perspect Biol. 2013 Mar 1;5(3):a012591. doi: 10.1101/cshperspect.a012591.
3
Comparative analysis of interaction of human and yeast DNA damage recognition complexes with damaged DNA in nucleotide excision repair.核苷酸切除修复中人与酵母 DNA 损伤识别复合物与损伤 DNA 相互作用的比较分析。
J Biol Chem. 2013 Apr 12;288(15):10936-47. doi: 10.1074/jbc.M112.444026. Epub 2013 Feb 26.
4
DNA quality control by a lesion sensor pocket of the xeroderma pigmentosum group D helicase subunit of TFIIH.TFIIH 解旋酶亚基 Xeroderma pigmentosum 组 D 病变传感器口袋对 DNA 质量控制。
Curr Biol. 2013 Feb 4;23(3):204-12. doi: 10.1016/j.cub.2012.12.032. Epub 2013 Jan 24.
5
Unusual sequence effects on nucleotide excision repair of arylamine lesions: DNA bending/distortion as a primary recognition factor.芳基胺损伤的核苷酸切除修复中的异常序列效应:DNA 弯曲/扭曲作为主要识别因素。
Nucleic Acids Res. 2013 Jan;41(2):869-80. doi: 10.1093/nar/gks1077. Epub 2012 Nov 23.
6
Cooperative cluster formation, DNA bending and base-flipping by O6-alkylguanine-DNA alkyltransferase.O6-烷基鸟嘌呤-DNA 烷基转移酶介导的协同聚类形成、DNA 弯曲和碱基翻转。
Nucleic Acids Res. 2012 Sep 1;40(17):8296-308. doi: 10.1093/nar/gks574. Epub 2012 Jun 22.
7
Damage recognition in nucleotide excision DNA repair.核苷酸切除 DNA 修复中的损伤识别。
Curr Opin Struct Biol. 2012 Feb;22(1):88-93. doi: 10.1016/j.sbi.2011.12.002. Epub 2012 Jan 17.
8
Regulation of translocation polarity by helicase domain 1 in SF2B helicases.SF2B 解旋酶的解旋酶结构域 1 对易位极性的调控。
EMBO J. 2012 Jan 18;31(2):503-14. doi: 10.1038/emboj.2011.412. Epub 2011 Nov 11.
9
Functional and structural studies of the nucleotide excision repair helicase XPD suggest a polarity for DNA translocation.核苷酸切除修复解旋酶 XPD 的功能和结构研究表明 DNA 易位具有极性。
EMBO J. 2012 Jan 18;31(2):494-502. doi: 10.1038/emboj.2011.374. Epub 2011 Nov 11.
10
ATP-stimulated, DNA-mediated redox signaling by XPD, a DNA repair and transcription helicase.XPD,一种 DNA 修复和转录解旋酶,通过 ATP 刺激的 DNA 介导的氧化还原信号转导。
J Am Chem Soc. 2011 Oct 19;133(41):16378-81. doi: 10.1021/ja207222t. Epub 2011 Sep 22.

XPD 对 DNA 损伤的链特异性识别为核苷酸切除修复底物的多样性提供了深入了解。

Strand-specific recognition of DNA damages by XPD provides insights into nucleotide excision repair substrate versatility.

机构信息

From the Rudolf Virchow Center for Experimental Biomedicine, University of Würzburg, 97080 Würzburg, Germany and.

出版信息

J Biol Chem. 2014 Feb 7;289(6):3613-24. doi: 10.1074/jbc.M113.523001. Epub 2013 Dec 14.

DOI:10.1074/jbc.M113.523001
PMID:24338567
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3916561/
Abstract

Recognition and removal of DNA damages is essential for cellular and organismal viability. Nucleotide excision repair (NER) is the sole mechanism in humans for the repair of carcinogenic UV irradiation-induced photoproducts in the DNA, such as cyclobutane pyrimidine dimers. The broad substrate versatility of NER further includes, among others, various bulky DNA adducts. It has been proposed that the 5'-3' helicase XPD (xeroderma pigmentosum group D) protein plays a decisive role in damage verification. However, despite recent advances such as the identification of a DNA-binding channel and central pore in the protein, through which the DNA is threaded, as well as a dedicated lesion recognition pocket near the pore, the exact process of target site recognition and verification in eukaryotic NER still remained elusive. Our single molecule analysis by atomic force microscopy reveals for the first time that XPD utilizes different recognition strategies to verify structurally diverse lesions. Bulky fluorescein damage is preferentially detected on the translocated strand, whereas the opposite strand preference is observed for a cyclobutane pyrimidine dimer lesion. Both states, however, lead to similar conformational changes in the resulting specific complexes, indicating a merge to a "final" verification state, which may then trigger the recruitment of further NER proteins.

摘要

DNA 损伤的识别和去除对于细胞和生物体的存活至关重要。核苷酸切除修复(NER)是人类修复 DNA 中致癌紫外线照射诱导的光产物(如环丁烷嘧啶二聚体)的唯一机制。NER 的广泛底物通用性还包括各种大体积的 DNA 加合物。有人提出,5'-3'解旋酶 XPD(着色性干皮病组 D)蛋白在损伤验证中起着决定性的作用。然而,尽管最近取得了一些进展,例如鉴定了该蛋白中的 DNA 结合通道和中央孔,DNA 通过该通道穿过,以及孔附近的专门损伤识别口袋,但真核 NER 中靶位点识别和验证的确切过程仍然难以捉摸。我们通过原子力显微镜进行的单分子分析首次表明,XPD 利用不同的识别策略来验证结构多样的损伤。大体积荧光素损伤优先在转移链上被检测到,而环丁烷嘧啶二聚体损伤则优先在相反的链上被检测到。然而,这两种状态都会导致形成的特异性复合物发生类似的构象变化,表明合并到“最终”验证状态,这可能随后触发进一步的 NER 蛋白的募集。