Recombination function and recombination kinetics of Escherichia coli single-stranded DNA-binding protein

被引:0
作者
Ran Chai [1 ]
Chaohui Zhang [2 ]
Fang Tian [1 ]
Huiru Li [1 ]
Qianlong Yang [1 ]
Andong Song [1 ]
Liyou Qiu [1 ]
机构
[1] College of Life Sciences,Henan Agricultural University,Key Laboratory of Enzyme Engineering of Agricultural Microbiology,Ministry of Agriculture
[2] School of Life Science and Technology,Henan Institute of Science and Technology
关键词
ss DNA-binding-protein; Homologous recombination; Non-homologous recombination; Recombination kinetics;
D O I
暂无
中图分类号
Q78 [基因工程(遗传工程)];
学科分类号
071007 ; 0836 ; 090102 ;
摘要
It is unknown whether the ss DNA-binding-protein(SSB) possesses the ability to catalyze DNA recombination.We investigated the recombination function of SSB and the recombination kinetics of Escherichia coli using a new transformation method with a modified double-layered plate.We found that SSB catalysed intermolecular recombination in vitro.Its intermolecular recombination rate versus substrate concentration or homologous sequence length fitted the Hill equation,and while the plasmid intramolecular recombination rate versus substrate concentration fitted a positively linear correlation,the dominant intermolecular recombination was a non-homologous recombination in vivo,similar to Rec A.However,ssb-dependent recombination occurred later and at a lower recombination rate than the rec A-dependent,probably because ssb expression was about two-fold lower than rec A during the E.coli earlier growth stage.The affinity to substrate and the recombination efficiency of SSB was lower than Rec A,whereas SSB enhanced the catalytic efficiency of Rec A.Knocking out both rec A and ssb led to loss of recombination.Our results confirmed that as SSB has the recombination function itself as an allosteric enzyme,rec Aindependent recombination in E.coli should be ssb-dependent.ssb-dependent recombination may be the third DNA double-strand break repair pathway,in addition to rec Adependent recombination and non-homologous end joining.
引用
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页码:1594 / 1604
页数:11
相关论文
共 25 条
[1]   Suppression of Ku70/80 or Lig4 leads to decreased stable transformation and enhanced homologous recombination in rice [J].
Nishizawa-Yokoi, Ayako ;
Nonaka, Satoko ;
Saika, Hiroaki ;
Kwon, Yong-Ik ;
Osakabe, Keishi ;
Toki, Seiichi .
NEW PHYTOLOGIST, 2012, 196 (04) :1048-1059
[2]  
How RecBCD Enzyme and Chi Promote DNA Break Repair and Recombination: a Molecular Biologist’s View[J] . Gerald R. Smith.Microbiology and Molecular Biology Reviews . 2012 (2)
[3]   Deletion of ku homologs increases gene targeting frequency in Streptomyces avermitilis [J].
Zhang, Xiaojuan ;
Chen, Wei ;
Zhang, Yang ;
Jiang, Libin ;
Chen, Zhi ;
Wen, Ying ;
Li, Jilun .
JOURNAL OF INDUSTRIAL MICROBIOLOGY & BIOTECHNOLOGY, 2012, 39 (06) :917-925
[4]   SSB Functions as a Sliding Platform that Migrates on DNA via Reptation [J].
Zhou, Ruobo ;
Kozlov, Alexander G. ;
Roy, Rahul ;
Zhang, Jichuan ;
Korolev, Sergey ;
Lohman, Timothy M. ;
Ha, Taekjip .
CELL, 2011, 146 (02) :222-232
[5]   Mycobacteria exploit three genetically distinct DNA double-strand break repair pathways [J].
Gupta, Richa ;
Barkan, Daniel ;
Redelman-Sidi, Gil ;
Shuman, Stewart ;
Glickman, Michael S. .
MOLECULAR MICROBIOLOGY, 2011, 79 (02) :316-330
[6]   DNA Repair in Mammalian Cells [J].
Nouspikel, T. .
CELLULAR AND MOLECULAR LIFE SCIENCES, 2009, 66 (06) :994-1009
[7]   High Frequency Plasmid Recombination Mediated by 28 bp Direct Repeats [J].
Ribeiro, Sofia C. ;
Oliveira, Pedro H. ;
Prazeres, Duarte M. F. ;
Monteiro, Gabriel A. .
MOLECULAR BIOTECHNOLOGY, 2008, 40 (03) :252-260
[8]  
Thirty years of Escherichia coli DNA gyrase: From in vivo function to single-molecule mechanism[J] . Biochimie . 2007 (4)
[9]   Chromosomal fragmentation in dUTPase-deficient mutants of Escherichia coli and its recombinational repair [J].
Kouzminova, EA ;
Kuzminov, A .
MOLECULAR MICROBIOLOGY, 2004, 51 (05) :1279-1295
[10]  
Non-homologous end-joining: bacteria join the chromosome breakdance[J] . Thomas E Wilson,Leana M Topper,Phillip L Palmbos.Trends in Biochemical Sciences . 2003 (2)