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The same two monomers within a MuA tetramer provide the DDE domains for the strand cleavage and strand transfer steps of transposition.MuA 四聚体内的相同两个单体为转座的链切割和链转移步骤提供 DDE 结构域。
EMBO J. 1998 Jul 1;17(13):3775-85. doi: 10.1093/emboj/17.13.3775.
2
Domain III function of Mu transposase analysed by directed placement of subunits within the transpososome.通过将亚基定向放置在转座体中来分析Mu转座酶的结构域III功能。
J Biosci. 2000 Dec;25(4):347-60. doi: 10.1007/BF02703788.
3
Mu transpositional recombination: donor DNA cleavage and strand transfer in trans by the Mu transposase.Mu转座重组:Mu转座酶介导的供体DNA切割及反式链转移
Cell. 1996 Apr 19;85(2):271-80. doi: 10.1016/s0092-8674(00)81103-4.
4
Positional information within the Mu transposase tetramer: catalytic contributions of individual monomers.Mu转座酶四聚体内的位置信息:单个单体的催化作用
Cell. 1996 May 3;85(3):447-55. doi: 10.1016/s0092-8674(00)81122-8.
5
Complete transposition requires four active monomers in the mu transposase tetramer.完全转座需要μ转座酶四聚体中的四个活性单体。
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6
MuA transposase separates DNA sequence recognition from catalysis.MuA转座酶将DNA序列识别与催化作用分离开来。
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7
MuB protein allosterically activates strand transfer by the transposase of phage Mu.MuB蛋白通过噬菌体Mu的转座酶变构激活链转移。
Cell. 1991 Jun 14;65(6):1003-13. doi: 10.1016/0092-8674(91)90552-a.
8
The wing of the enhancer-binding domain of Mu phage transposase is flexible and is essential for efficient transposition.Mu噬菌体转座酶增强子结合结构域的侧翼是灵活的,对高效转座至关重要。
Proc Natl Acad Sci U S A. 1996 Feb 6;93(3):1146-50. doi: 10.1073/pnas.93.3.1146.
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DNA-protein cooperativity in the assembly and stabilization of mu strand transfer complex. Relevance of DNA phasing and att site cleavage.μ链转移复合物组装与稳定过程中的DNA-蛋白质协同作用。DNA相位和att位点切割的相关性。
J Mol Biol. 1994 May 13;238(4):514-27. doi: 10.1006/jmbi.1994.1311.
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Organization and dynamics of the Mu transpososome: recombination by communication between two active sites.Mu转座体的组织与动力学:通过两个活性位点之间的通讯进行重组
Genes Dev. 1999 Oct 15;13(20):2725-37. doi: 10.1101/gad.13.20.2725.

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Genome-wide Profiling Reveals Remarkable Parallels Between Insertion Site Selection Properties of the MLV Retrovirus and the piggyBac Transposon in Primary Human CD4(+) T Cells.全基因组分析揭示了莫洛尼氏鼠白血病病毒(MLV)逆转录病毒与piggyBac转座子在原代人CD4(+) T细胞中插入位点选择特性之间的显著相似性。
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The Mu story: how a maverick phage moved the field forward.缪故事:偏锋噬菌体如何推动领域前进
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DNA repair by the cryptic endonuclease activity of Mu transposase.通过Mu转座酶的隐蔽内切核酸酶活性进行DNA修复。
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The AAA+ ClpX machine unfolds a keystone subunit to remodel the Mu transpososome.AAA+ ClpX 机器展开关键亚基来重塑 Mu 转座子。
Proc Natl Acad Sci U S A. 2010 Feb 9;107(6):2437-42. doi: 10.1073/pnas.0910905106. Epub 2010 Jan 25.
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Lens epithelium-derived growth factor/p75 interacts with the transposase-derived DDE domain of PogZ.晶状体上皮衍生生长因子/p75与PogZ的转座酶衍生DDE结构域相互作用。
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Dissecting the roles of MuB in Mu transposition: ATP regulation of DNA binding is not essential for target delivery.剖析MuB在Mu转座中的作用:ATP对DNA结合的调节对于靶位点递送并非必不可少。
Proc Natl Acad Sci U S A. 2008 Aug 26;105(34):12101-7. doi: 10.1073/pnas.0805868105. Epub 2008 Aug 21.
10
Characteristics of MuA transposase-catalyzed processing of model transposon end DNA hairpin substrates.MuA转座酶催化的模型转座子末端DNA发夹底物加工的特征
Nucleic Acids Res. 2006 Jun 6;34(10):3139-49. doi: 10.1093/nar/gkl405. Print 2006.

本文引用的文献

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Mutational analysis of domain II beta of bacteriophage Mu transposase: domains II alpha and II beta belong to different catalytic complementation groups.噬菌体Mu转座酶结构域IIβ的突变分析:结构域IIα和IIβ属于不同的催化互补组。
J Mol Biol. 1998 Jan 16;275(2):221-32. doi: 10.1006/jmbi.1997.1466.
2
Solution structure of the Mu end DNA-binding ibeta subdomain of phage Mu transposase: modular DNA recognition by two tethered domains.噬菌体Mu转座酶的Mu末端DNA结合β亚结构域的溶液结构:两个相连结构域对DNA的模块化识别
EMBO J. 1997 Dec 15;16(24):7532-41. doi: 10.1093/emboj/16.24.7532.
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Solution structure of the I gamma subdomain of the Mu end DNA-binding domain of phage Mu transposase.噬菌体Mu转座酶的Mu末端DNA结合结构域的Iγ亚结构域的溶液结构
J Mol Biol. 1997 Oct 17;273(1):19-25. doi: 10.1006/jmbi.1997.1312.
4
A new set of Mu DNA transposition intermediates: alternate pathways of target capture preceding strand transfer.一组新的Mu DNA转座中间体:链转移之前靶标捕获的替代途径。
EMBO J. 1997 Sep 1;16(17):5227-34. doi: 10.1093/emboj/16.17.5227.
5
A tetramer of the Flp recombinase silences the trimers within it during resolution of a Holliday junction substrate.在霍利迪连接体底物的拆分过程中,Flp重组酶的四聚体会使其中的三聚体失活。
Genes Dev. 1997 Sep 15;11(18):2438-47. doi: 10.1101/gad.11.18.2438.
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Structure of Cre recombinase complexed with DNA in a site-specific recombination synapse.在位点特异性重组突触中与DNA复合的Cre重组酶的结构。
Nature. 1997 Sep 4;389(6646):40-6. doi: 10.1038/37925.
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Binding of different divalent cations to the active site of avian sarcoma virus integrase and their effects on enzymatic activity.不同二价阳离子与禽肉瘤病毒整合酶活性位点的结合及其对酶活性的影响。
J Biol Chem. 1997 Jul 18;272(29):18161-8. doi: 10.1074/jbc.272.29.18161.
8
The Cre recombinase cleaves the lox site in trans.Cre重组酶可反式切割lox位点。
J Biol Chem. 1997 Feb 28;272(9):5695-702. doi: 10.1074/jbc.272.9.5695.
9
The catalytic domain of avian sarcoma virus integrase: conformation of the active-site residues in the presence of divalent cations.禽肉瘤病毒整合酶的催化结构域:二价阳离子存在下活性位点残基的构象
Structure. 1996 Jan 15;4(1):89-96. doi: 10.1016/s0969-2126(96)00012-3.
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DNA transposition: jumping gene machine, some assembly required.DNA转座:跳跃基因机器,需进行一些组装。
Curr Biol. 1996 Jul 1;6(7):817-20. doi: 10.1016/s0960-9822(02)00603-6.

MuA 四聚体内的相同两个单体为转座的链切割和链转移步骤提供 DDE 结构域。

The same two monomers within a MuA tetramer provide the DDE domains for the strand cleavage and strand transfer steps of transposition.

作者信息

Namgoong S Y, Harshey R M

机构信息

Department of Microbiology, University of Texas, Austin, TX 78712, USA.

出版信息

EMBO J. 1998 Jul 1;17(13):3775-85. doi: 10.1093/emboj/17.13.3775.

DOI:10.1093/emboj/17.13.3775
PMID:9649447
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1170713/
Abstract

The chemistry of Mu transposition is executed within a tetrameric form of the Mu transposase (MuA protein). A triad of DDE (Asp, Asp35Glu motif) residues in the central domain of MuA (DDE domain) is essential for both the strand cleavage and strand transfer steps of transposition. Previous studies had suggested that complete Mu transposition requires all four subunits in the MuA tetramer to carry an active DDE domain. Using a mixture of MuA proteins with either wild-type or altered att-DNA binding specificities, we have now designed specific arrangements of MuA subunits carrying the DDE domain. From analysis of the abilities of oriented tetramers to carry out DNA cleavage and strand transfer from supercoiled DNA, a new picture of the disposition of DNA and protein partners during transposition has emerged. For DNA cleavage, two subunits of MuA located at attL1 and attR1 (sites that undergo cleavage) provide DDE residues in trans. The same two subunits contribute DDE residues for strand transfer, also in trans. Thus, only two active DDE+ monomers within the tetramer carry out complete Mu transposition. We also show that when the attR1-R2 arrangement used on supercoiled substrates is tested for cleavage on linear substrates, alternative chemically competent DNA-protein associations are produced, wherein the functional DDE subunits are positioned at R2 rather than at R1.

摘要

Mu转座的化学过程在Mu转座酶(MuA蛋白)的四聚体形式内进行。MuA中央结构域(DDE结构域)中的DDE(天冬氨酸、天冬氨酸35、谷氨酸基序)三联体残基对于转座的链切割和链转移步骤均至关重要。先前的研究表明,完整的Mu转座需要MuA四聚体中的所有四个亚基都带有一个活性DDE结构域。我们使用具有野生型或改变的att-DNA结合特异性的MuA蛋白混合物,设计了携带DDE结构域的MuA亚基的特定排列。通过分析定向四聚体从超螺旋DNA进行DNA切割和链转移的能力,转座过程中DNA和蛋白质伙伴的排列出现了新的情况。对于DNA切割,位于attL1和attR1(发生切割的位点)的两个MuA亚基提供反式DDE残基。同样的两个亚基也为链转移提供反式DDE残基。因此,四聚体内只有两个活性DDE+单体进行完整的Mu转座。我们还表明,当测试超螺旋底物上使用的attR1-R2排列在线性底物上的切割时,会产生替代的化学活性DNA-蛋白质关联,其中功能性DDE亚基位于R2而不是R1。