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Functional characterization of excision repair and RecA-dependent recombinational DNA repair in Campylobacter jejuni

Authors :
Bart J. Vermaning
Linda van der Graaf-van Bloois
Esther J. Gaasbeek
Paulo de Boer
Jos P. M. van Putten
Jaap A. Wagenaar
Albert G. de Boer
Fimme J. van der Wal
Strategic Infection Biology
Dep Infectieziekten Immunologie
Source :
Journal of Bacteriology 191 (2009) 12, Journal of Bacteriology, 191(12), 3785. American Society for Microbiology, Journal of Bacteriology, 191(12), 3785-3793
Publication Year :
2009

Abstract

The presence and functionality of DNA repair mechanisms in Campylobacter jejuni are largely unknown. In silico analysis of the complete translated genome of C. jejuni NCTC 11168 suggests the presence of genes involved in methyl-directed mismatch repair (MMR), nucleotide excision repair, base excision repair (BER), and recombinational repair. To assess the functionality of these putative repair mechanisms in C. jejuni , mutS , uvrB , ung , and recA knockout mutants were constructed and analyzed for their ability to repair spontaneous point mutations, UV irradiation-induced DNA damage, and nicked DNA. Inactivation of the different putative DNA repair genes did not alter the spontaneous mutation frequency. Disruption of the UvrB and RecA orthologues, but not the putative MutS or Ung proteins, resulted in a significant reduction in viability after exposure to UV irradiation. Assays performed with uracil-containing plasmid DNA showed that the putative uracil-DNA glycosylase (Ung) protein, important for initiation of the BER pathway, is also functional in C. jejuni . Inactivation of recA also resulted in a loss of natural transformation. Overall, the data indicate that C. jejuni has multiple functional DNA repair systems that may protect against DNA damage and limit the generation of genetic diversity. On the other hand, the apparent absence of a functional MMR pathway may enhance the frequency of on-and-off switching of phase variable genes typical for C. jejuni and may contribute to the genetic heterogeneity of the C. jejuni population.

Details

Language :
English
ISSN :
00219193
Volume :
191
Issue :
12
Database :
OpenAIRE
Journal :
Journal of Bacteriology
Accession number :
edsair.doi.dedup.....10444e6e6ed30db62a4c504d7f2e0a18
Full Text :
https://doi.org/10.1128/jb.01817-08