Affiliation:
1. Department of Microbiology and Physiological Systems, University of Massachusetts Medical School, Worcester, MA 01605
Abstract
The bacteriophage λ Red homologous recombination system has been studied over the past 50 years as a model system to define the mechanistic details of how organisms exchange DNA segments that share extended regions of homology. The λ Red system proved useful as a system to study because recombinants could be easily generated by co-infection of genetically marked phages. What emerged from these studies was the recognition that replication of phage DNA was required for substantial Red-promoted recombination
in vivo
, and the critical role that double-stranded DNA ends play in allowing the Red proteins access to the phage DNA chromosomes. In the past 16 years, however, the λ Red recombination system has gained a new notoriety. When expressed independently of other λ functions, the Red system is able to promote recombination of linear DNA containing limited regions of homology (∼50 bp) with the
Escherichia coli
chromosome, a process known as recombineering. This review explains how the Red system works during a phage infection, and how it is utilized to make chromosomal modifications of
E. coli
with such efficiency that it changed the nature and number of genetic manipulations possible, leading to advances in bacterial genomics, metabolic engineering, and eukaryotic genetics.
Publisher
American Society for Microbiology
Reference395 articles.
1. Jacob F Wollman E. 1954. Etude genetique d’un bacteriophage tempere d’Echerichia coli. I. Le systeme genetique du bacteriophage lambda. Ann Inst Pasteur 87: 653–674.
2. Kaiser AD. 1955. A genetic study of the temperate coliphage. Virology 1: 424–443. [CrossRef]
3. Poteete AR. 2008. Involvement of DNA replication in phage lambda Red-mediated homologous recombination. Mol Microbiol 68: 66–74. [PubMed][CrossRef]
4. Savage PJ Leong JM Murphy KC. 2006. Rapid allelic exchange in enterohemorrhagic Escherichia coli (EHEC) and other E. coli using lambda red recombination. Curr Protoc Microbiol Chapter 5: Unit5A.2. doi:10.1002/9780471729259.mc05a02s00. [CrossRef]
5. Sawitzke JA Thomason LC Costantino N Bubunenko M Datta S Court DL. 2007. Recombineering: in vivo genetic engineering in E. coli S. enterica and beyond. Methods Enzymol 421: 171–199. [CrossRef]
Cited by
76 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献