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2
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8
Human mismatch-repair protein MutL homologue 1 (MLH1) interacts with Escherichia coli MutL and MutS in vivo and in vitro: a simple genetic system to assay MLH1 function.人类错配修复蛋白MutL同源物1(MLH1)在体内和体外均与大肠杆菌MutL和MutS相互作用:一种用于检测MLH1功能的简单遗传系统。
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The mutational landscape of Bacillus subtilis conditional hypermutators shows how proofreading skews DNA polymerase error rates.枯草芽孢杆菌条件性超突变体的突变图谱显示了校对如何影响DNA聚合酶的错误率。
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本文引用的文献

1
Involvement of mismatch repair in the reciprocal control of motility and adherence of uropathogenic Escherichia coli.错配修复参与尿路致病性大肠杆菌运动性和黏附性的相互调控。
Infect Immun. 2012 Jun;80(6):1969-79. doi: 10.1128/IAI.00043-12. Epub 2012 Apr 2.
2
Mismatch repair causes the dynamic release of an essential DNA polymerase from the replication fork.错配修复导致一种必需的 DNA 聚合酶从复制叉上动态释放。
Mol Microbiol. 2011 Nov;82(3):648-63. doi: 10.1111/j.1365-2958.2011.07841.x. Epub 2011 Sep 30.
3
DNA damage and reactive nitrogen species are barriers to Vibrio cholerae colonization of the infant mouse intestine.DNA 损伤和活性氮物种是霍乱弧菌在婴儿鼠肠道定殖的障碍。
PLoS Pathog. 2011 Feb;7(2):e1001295. doi: 10.1371/journal.ppat.1001295. Epub 2011 Feb 17.
4
The endonuclease domain of MutL interacts with the β sliding clamp.MutL 的内切酶结构域与 β 滑动夹相互作用。
DNA Repair (Amst). 2011 Jan 2;10(1):87-93. doi: 10.1016/j.dnarep.2010.10.003. Epub 2010 Nov 2.
5
Structure of the endonuclease domain of MutL: unlicensed to cut.MutL 内切酶结构域:未获许可切割。
Mol Cell. 2010 Jul 9;39(1):145-51. doi: 10.1016/j.molcel.2010.06.027.
6
Mutations in the Bacillus subtilis beta clamp that separate its roles in DNA replication from mismatch repair.枯草芽孢杆菌β夹突变体将其在 DNA 复制和错配修复中的作用分离。
J Bacteriol. 2010 Jul;192(13):3452-63. doi: 10.1128/JB.01435-09. Epub 2010 May 7.
7
Fluctuation analysis CalculatOR: a web tool for the determination of mutation rate using Luria-Delbruck fluctuation analysis.波动分析计算器:一种使用卢里亚-德尔布吕克波动分析来确定突变率的网络工具。
Bioinformatics. 2009 Jun 15;25(12):1564-5. doi: 10.1093/bioinformatics/btp253. Epub 2009 Apr 15.
8
Beta clamp directs localization of mismatch repair in Bacillus subtilis.β夹子指导枯草芽孢杆菌中错配修复的定位。
Mol Cell. 2008 Feb 15;29(3):291-301. doi: 10.1016/j.molcel.2007.10.036.
9
Saccharomyces cerevisiae MutLalpha is a mismatch repair endonuclease.酿酒酵母MutLα是一种错配修复内切核酸酶。
J Biol Chem. 2007 Dec 21;282(51):37181-90. doi: 10.1074/jbc.M707617200. Epub 2007 Oct 19.
10
Functional characterization of pathogenic human MSH2 missense mutations in Saccharomyces cerevisiae.酿酒酵母中致病性人类MSH2错义突变的功能特征分析
Genetics. 2007 Oct;177(2):707-21. doi: 10.1534/genetics.107.071084. Epub 2007 Aug 24.

枯草芽孢杆菌错配修复中 N 端结构域 MutL 所需的残基。

Residues in the N-terminal domain of MutL required for mismatch repair in Bacillus subtilis.

机构信息

Department of Molecular, Cellular, and Developmental Biology, University of Michigan, Ann Arbor, Michigan, USA.

出版信息

J Bacteriol. 2012 Oct;194(19):5361-7. doi: 10.1128/JB.01142-12. Epub 2012 Jul 27.

DOI:10.1128/JB.01142-12
PMID:22843852
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3457209/
Abstract

Mismatch repair is a highly conserved pathway responsible for correcting DNA polymerase errors incorporated during genome replication. MutL is a mismatch repair protein known to coordinate several steps in repair that ultimately results in strand removal following mismatch identification by MutS. MutL homologs from bacteria to humans contain well-conserved N-terminal and C-terminal domains. To understand the contribution of the MutL N-terminal domain to mismatch repair, we analyzed 14 different missense mutations in Bacillus subtilis MutL that were conserved with missense mutations identified in the human MutL homolog MLH1 from patients with hereditary nonpolyposis colorectal cancer (HNPCC). We characterized missense mutations in or near motifs important for ATP binding, ATPase activity, and DNA binding. We found that 13 of the 14 missense mutations conferred a substantial defect to mismatch repair in vivo, while three mutant alleles showed a dominant negative increase in mutation frequency to wild-type mutL. We performed immunoblot analysis to determine the relative stability of each mutant protein in vivo and found that, although most accumulated, several mutant proteins failed to maintain wild-type levels, suggesting defects in protein stability. The remaining missense mutations located in areas of the protein important for DNA binding, ATP binding, and ATPase activities of MutL compromised repair in vivo. Our results define functional residues in the N-terminal domain of B. subtilis MutL that are critical for mismatch repair in vivo.

摘要

错配修复是一种高度保守的途径,负责纠正基因组复制过程中 DNA 聚合酶引入的错误。MutL 是一种错配修复蛋白,已知能协调修复过程中的几个步骤,最终导致在 MutS 识别错配后进行链去除。从细菌到人,MutL 同源物都含有保守的 N 端和 C 端结构域。为了了解 MutL N 端结构域对错配修复的贡献,我们分析了枯草芽孢杆菌 MutL 中的 14 种不同的错义突变,这些突变与遗传性非息肉病性结直肠癌(HNPCC)患者中人类 MutL 同源物 MLH1 中鉴定的错义突变保守。我们对重要的 ATP 结合、ATP 酶活性和 DNA 结合的基序内或附近的错义突变进行了特征分析。我们发现,14 个错义突变中的 13 个在体内显著影响错配修复,而 3 个突变等位基因显示出对野生型 mutL 的突变频率的显性负增加。我们进行了免疫印迹分析,以确定每个突变蛋白在体内的相对稳定性,发现尽管大多数蛋白积累,但几种突变蛋白未能维持野生型水平,表明蛋白稳定性存在缺陷。位于 MutL 蛋白的 DNA 结合、ATP 结合和 ATP 酶活性重要区域的剩余错义突变会损害体内修复。我们的结果定义了枯草芽孢杆菌 MutL N 端结构域中对体内错配修复至关重要的功能残基。