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本文引用的文献

1
Incision of DNA-protein crosslinks by UvrABC nuclease suggests a potential repair pathway involving nucleotide excision repair.UvrABC核酸酶对DNA-蛋白质交联的切割表明存在一种涉及核苷酸切除修复的潜在修复途径。
Proc Natl Acad Sci U S A. 2002 Feb 19;99(4):1905-9. doi: 10.1073/pnas.042700399. Epub 2002 Feb 12.
2
Clue to damage recognition by UvrB: residues in the beta-hairpin structure prevent binding to non-damaged DNA.UvrB识别损伤的线索:β-发夹结构中的残基可防止与未受损DNA结合。
EMBO J. 2001 Nov 1;20(21):6140-9. doi: 10.1093/emboj/20.21.6140.
3
The beta -hairpin motif of UvrB is essential for DNA binding, damage processing, and UvrC-mediated incisions.UvrB的β-发夹基序对于DNA结合、损伤处理以及UvrC介导的切口形成至关重要。
J Biol Chem. 2002 Jan 11;277(2):1553-9. doi: 10.1074/jbc.M108847200. Epub 2001 Oct 30.
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Hierarchy of DNA damage recognition in Escherichia coli nucleotide excision repair.大肠杆菌核苷酸切除修复中DNA损伤识别的层次结构。
Biochemistry. 2001 Mar 6;40(9):2923-31. doi: 10.1021/bi001504c.
5
Crystal structure of UvrB, a DNA helicase adapted for nucleotide excision repair.用于核苷酸切除修复的DNA解旋酶UvrB的晶体结构。
EMBO J. 1999 Dec 15;18(24):6899-907. doi: 10.1093/emboj/18.24.6899.
6
Crystal structure of Thermus thermophilus HB8 UvrB protein, a key enzyme of nucleotide excision repair.嗜热栖热菌HB8 UvrB蛋白的晶体结构,核苷酸切除修复的关键酶
J Biochem. 1999 Dec;126(6):986-90. doi: 10.1093/oxfordjournals.jbchem.a022566.
7
Crystal structure of the DNA nucleotide excision repair enzyme UvrB from Thermus thermophilus.嗜热栖热菌DNA核苷酸切除修复酶UvrB的晶体结构
Proc Natl Acad Sci U S A. 1999 Oct 12;96(21):11717-22. doi: 10.1073/pnas.96.21.11717.
8
Strand opening by the UvrA(2)B complex allows dynamic recognition of DNA damage.由UvrA(2)B复合物引起的链打开允许对DNA损伤进行动态识别。
EMBO J. 1999 Sep 1;18(17):4889-901. doi: 10.1093/emboj/18.17.4889.
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DNA damage recognition during nucleotide excision repair in mammalian cells.哺乳动物细胞核苷酸切除修复过程中的DNA损伤识别
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10
Hydrophobic forces dominate the thermodynamic characteristics of UvrA-DNA damage interactions.疏水作用力主导着UvrA与DNA损伤相互作用的热力学特性。
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核苷酸切除修复中UvrB蛋白突变形式的DNA损伤识别

DNA damage recognition of mutated forms of UvrB proteins in nucleotide excision repair.

作者信息

Zou Yue, Ma Huaxian, Minko Irina G, Shell Steven M, Yang Zhengguan, Qu Youxing, Xu Ying, Geacintov Nicholas E, Lloyd R Stephen

机构信息

Department of Biochemistry and Molecular Biology, James H. Quillen College of Medicine, East Tennessee State University, Johnson City, Tennessee 37614, USA.

出版信息

Biochemistry. 2004 Apr 13;43(14):4196-205. doi: 10.1021/bi035992a.

DOI:10.1021/bi035992a
PMID:15065863
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1450103/
Abstract

The DNA repair protein UvrB plays an indispensable role in the stepwise and sequential damage recognition of nucleotide excision repair in Escherichia coli. Our previous studies suggested that UvrB is responsible for the chemical damage recognition only upon a strand opening mediated by UvrA. Difficulties were encountered in studying the direct interaction of UvrB with adducts due to the presence of UvrA. We report herein that a single point mutation of Y95W in which a tyrosine is replaced by a tryptophan results in an UvrB mutant that is capable of efficiently binding to structure-specific DNA adducts even in the absence of UvrA. This mutant is fully functional in the UvrABC incisions. The dissociation constant for the mutant-DNA adduct interaction was less than 100 nM at physiological temperatures as determined by fluorescence spectroscopy. In contrast, similar substitutions at other residues in the beta-hairpin with tryptophan or phenylalanine do not confer UvrB such binding ability. Homology modeling of the structure of E. coli UvrB shows that the aromatic ring of residue Y95 and only Y95 directly points into the DNA binding cleft. We have also examined UvrB recognition of both "normal" bulky BPDE-DNA and protein-cross-linked DNA (DPC) adducts and the roles of aromatic residues of the beta-hairpin in the recognition of these lesions. A mutation of Y92W resulted in an obvious decrease in the efficiency of UvrABC incisions of normal adducts, while the incision of the DPC adduct is dramatically increased. Our results suggest that Y92 may function differently with these two types of adducts, while the Y95 residue plays an unique role in stabilizing the interaction of UvrB with DNA damage, most likely by a hydrophobic stacking.

摘要

DNA修复蛋白UvrB在大肠杆菌核苷酸切除修复的逐步和顺序损伤识别过程中发挥着不可或缺的作用。我们之前的研究表明,UvrB仅在由UvrA介导的链打开时负责化学损伤识别。由于UvrA的存在,在研究UvrB与加合物的直接相互作用时遇到了困难。我们在此报告,酪氨酸被色氨酸取代的Y95W单点突变导致一种UvrB突变体,即使在没有UvrA的情况下也能够有效地结合结构特异性DNA加合物。该突变体在UvrABC切口方面完全功能正常。通过荧光光谱法测定,在生理温度下,突变体与DNA加合物相互作用的解离常数小于100 nM。相比之下,β-发夹中其他残基用色氨酸或苯丙氨酸进行类似取代并不能赋予UvrB这种结合能力。大肠杆菌UvrB结构的同源建模表明,只有残基Y95的芳香环直接指向DNA结合裂隙。我们还研究了UvrB对“正常”大体积BPDE-DNA和蛋白质交联DNA(DPC)加合物的识别以及β-发夹芳香族残基在识别这些损伤中的作用。Y92W突变导致正常加合物的UvrABC切口效率明显降低,而DPC加合物的切口则显著增加。我们的结果表明,Y92可能对这两种类型的加合物发挥不同的作用,而Y95残基在稳定UvrB与DNA损伤的相互作用中发挥独特作用,很可能是通过疏水堆积作用。