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本文引用的文献

1
An end-joining repair mechanism in Escherichia coli.大肠杆菌中的末端连接修复机制。
Proc Natl Acad Sci U S A. 2010 Feb 2;107(5):2141-6. doi: 10.1073/pnas.0906355107. Epub 2010 Jan 19.
2
The pathways and outcomes of mycobacterial NHEJ depend on the structure of the broken DNA ends.分枝杆菌非同源末端连接的途径和结果取决于断裂DNA末端的结构。
Genes Dev. 2008 Feb 15;22(4):512-27. doi: 10.1101/gad.1631908.
3
Introduction of plasmid DNA into cells.将质粒DNA导入细胞。
Curr Protoc Mol Biol. 2001 May;Chapter 1:Unit1.8. doi: 10.1002/0471142727.mb0108s37.
4
Expression of Mycobacterium tuberculosis Ku and Ligase D in Escherichia coli results in RecA and RecB-independent DNA end-joining at regions of microhomology.结核分枝杆菌Ku和连接酶D在大肠杆菌中的表达导致在微同源区域发生不依赖RecA和RecB的DNA末端连接。
DNA Repair (Amst). 2007 Oct 1;6(10):1413-24. doi: 10.1016/j.dnarep.2007.04.004. Epub 2007 Jun 7.
5
Characterization of Agrobacterium tumefaciens DNA ligases C and D.根癌土壤杆菌DNA连接酶C和D的特性分析
Nucleic Acids Res. 2007;35(11):3631-45. doi: 10.1093/nar/gkm145. Epub 2007 May 8.
6
NHEJ protects mycobacteria in stationary phase against the harmful effects of desiccation.非同源末端连接保护静止期分枝杆菌免受干燥的有害影响。
DNA Repair (Amst). 2007 Sep 1;6(9):1271-6. doi: 10.1016/j.dnarep.2007.02.009. Epub 2007 Mar 13.
7
Role of DNA repair by nonhomologous-end joining in Bacillus subtilis spore resistance to extreme dryness, mono- and polychromatic UV, and ionizing radiation.枯草芽孢杆菌中非同源末端连接介导的DNA修复在芽孢对极端干燥、单色和多色紫外线以及电离辐射抗性中的作用
J Bacteriol. 2007 Apr;189(8):3306-11. doi: 10.1128/JB.00018-07. Epub 2007 Feb 9.
8
Structure and function of a mycobacterial NHEJ DNA repair polymerase.一种分枝杆菌非同源末端连接DNA修复聚合酶的结构与功能
J Mol Biol. 2007 Feb 16;366(2):391-405. doi: 10.1016/j.jmb.2006.10.046. Epub 2006 Oct 20.
9
Domain structure of a NHEJ DNA repair ligase from Mycobacterium tuberculosis.结核分枝杆菌非同源末端连接DNA修复连接酶的结构域结构
J Mol Biol. 2005 Aug 19;351(3):531-44. doi: 10.1016/j.jmb.2005.06.038.
10
Novel 3'-ribonuclease and 3'-phosphatase activities of the bacterial non-homologous end-joining protein, DNA ligase D.细菌非同源末端连接蛋白DNA连接酶D的新型3'-核糖核酸酶和3'-磷酸酶活性
J Biol Chem. 2005 Jul 15;280(28):25973-81. doi: 10.1074/jbc.M504002200. Epub 2005 May 15.

结核分枝杆菌连接酶 D 的催化结构域在 Ku 依赖性易错 DNA 末端连接中的作用特征。

Characterization of the roles of the catalytic domains of Mycobacterium tuberculosis ligase D in Ku-dependent error-prone DNA end joining.

机构信息

Department of Molecular and Cellular Physiology, Louisiana State University Health Sciences Center at Shreveport, 1501 Kings Highway, Shreveport, LA 71130, USA.

出版信息

Mutagenesis. 2010 Sep;25(5):473-81. doi: 10.1093/mutage/geq029. Epub 2010 Jun 7.

DOI:10.1093/mutage/geq029
PMID:20530153
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2925156/
Abstract

We previously established an Escherichia coli strain capable of re-circularizing linear plasmid DNA by expressing the Mycobacterium tuberculosis Ku (Mt-Ku) and Mycobacterium tuberculosis ligase D (Mt-LigD) proteins from the E.coli chromosome. Repair was predominately mutagenic due to deletions at the termini. We hypothesized that these deletions could be due to a nuclease activity of Mt-LigD that was previously detected in vitro. Mt-LigD has three domains: an N-terminal polymerase domain (PolDom), a central domain with 3'-phosphoesterase and nuclease activity and a C-terminal ligase domain (LigDom). We generated bacterial strains expressing Mt-Ku and mutant versions of Mt-LigD. Plasmid re-circularization experiments in bacteria showed that the PolDom alone had no re-circularization activity. However, an increase in the total and accurate repair was found when the central domain was deleted. This provides further evidence that this central domain does have nuclease activity that can generate deletions during repair. Deletion of only the PolDom of Mt-LigD resulted in a complete loss of accurate repair and a significant reduction in total repair. This is in agreement with published in vitro work indicating that the PolDom is the major Mt-Ku-binding site. Interestingly, the LigDom alone was able to re-circularize plasmid DNA but only in an Mt-Ku-dependent manner, suggesting a potential second site for Ku-LigD interaction. This work has increased our understanding of the mutagenic repair by Mt-Ku and Mt-LigD and has extended the in vitro biochemical experiments by examining the importance of the Mt-LigD domains during repair in bacteria.

摘要

我们之前建立了一种大肠杆菌菌株,能够通过表达结核分枝杆菌 Ku(Mt-Ku)和结核分枝杆菌连接酶 D(Mt-LigD)蛋白,使线性质粒 DNA 重新环化。由于末端缺失,修复主要是诱变的。我们假设这些缺失可能是由于 Mt-LigD 的一种核酸内切酶活性引起的,这种活性之前在体外检测到。Mt-LigD 有三个结构域:一个 N 端聚合酶结构域(PolDom)、一个具有 3'-磷酸酯酶和核酸内切酶活性的中央结构域,以及一个 C 端连接酶结构域(LigDom)。我们生成了表达 Mt-Ku 和 Mt-LigD 突变体的细菌菌株。细菌中的质粒重新环化实验表明,单独的 PolDom 没有重新环化活性。然而,当中央结构域缺失时,总修复和准确修复都增加了。这进一步证明了这个中央结构域确实具有核酸内切酶活性,可以在修复过程中产生缺失。仅缺失 Mt-LigD 的 PolDom 会导致准确修复完全丧失,并显著减少总修复。这与发表的体外工作一致,表明 PolDom 是 Mt-Ku 的主要结合位点。有趣的是,单独的 LigDom 能够重新环化质粒 DNA,但仅在 Mt-Ku 依赖的情况下,这表明 Ku-LigD 相互作用的第二个潜在位点。这项工作增加了我们对 Mt-Ku 和 Mt-LigD 引起的诱变修复的理解,并通过研究 Mt-LigD 结构域在细菌修复中的重要性,扩展了体外生化实验。