Oligonucleotide recombination in Gram-negative bacteria
Open Access
- 23 December 2009
- journal article
- research article
- Published by Wiley in Molecular Microbiology
- Vol. 75 (1) , 138-148
- https://doi.org/10.1111/j.1365-2958.2009.06976.x
Abstract
This report describes several key aspects of a novel form of RecA-independent homologous recombination. We found that synthetic single-stranded DNA oligonucleotides (oligos) introduced into bacteria by transformation can site-specifically recombine with bacterial chromosomes in the absence of any additional phage-encoded functions. Oligo recombination was tested in four genera of Gram-negative bacteria and in all cases evidence for recombination was apparent. The experiments presented here were designed with an eye towards learning to use oligo recombination in order to bootstrap identification and development of phage-encoded recombination systems for recombineering in a wide range of bacteria. The results show that oligo concentration and sequence have the greatest influence on recombination frequency, while oligo length was less important. Apart from the utility of oligo recombination, these findings also provide insights regarding the details of recombination mediated by phage-encoded functions. Establishing that oligos can recombine with bacterial genomes provides a link to similar observations of oligo recombination in archaea and eukaryotes suggesting the possibility that this process is evolutionary conserved.Keywords
This publication has 54 references indexed in Scilit:
- Use of the λ Red-recombineering method for genetic engineering of Pantoea ananatisBMC Molecular Biology, 2009
- Recombineering: a homologous recombination-based method of genetic engineeringNature Protocols, 2009
- Recombineering mycobacteria and their phagesNature Reviews Microbiology, 2008
- Identification and analysis of recombineering functions from Gram-negative and Gram-positive bacteria and their phagesProceedings of the National Academy of Sciences, 2008
- Use of the lambda Red recombinase system to rapidly generate mutants in Pseudomonas aeruginosaBMC Molecular Biology, 2008
- RecA-independent recombination is efficient but limited by exonucleasesProceedings of the National Academy of Sciences, 2007
- Mechanisms of, and Barriers to, Horizontal Gene Transfer between BacteriaNature Reviews Microbiology, 2005
- A 10-min method for preparation of highly electrocompetent Pseudomonas aeruginosa cells: Application for DNA fragment transfer between chromosomes and plasmid transformationPublished by Elsevier ,2005
- The Complete Genome Sequence of Escherichia coli K-12Science, 1997
- Characterization of the DNA-binding domain of β protein, a component of phage λ Red-pathway, by UV catalyzed cross-linkingGene, 1996