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Agr Function in Clinical Staphylococcus Aureus Isolates

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Specialty Microbiology
Date 2008 Aug 1
PMID 18667559
Citations 196
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Abstract

The accessory gene regulator (agr) of Staphylococcus aureus is a global regulator of the staphylococcal virulon, which includes secreted virulence factors and surface proteins. The agr locus is important for virulence in a variety of animal models of infection, and has been assumed by inference to have a major role in human infection. Although most human clinical S. aureus isolates are agr(+), there have been several reports of agr-defective mutants isolated from infected patients. Since it is well known that the agr locus is genetically labile in vitro, we have addressed the question of whether the reported agr-defective mutants were involved in the infection or could have arisen during post-isolation handling. We obtained a series of new staphylococcal isolates from local clinical infections and handled these with special care to avoid post-isolation mutations. Among these isolates, we found a number of strains with non-haemolytic phenotypes owing to mutations in the agr locus, and others with mutations elsewhere. We have also obtained isolates in which the population was continuously heterogeneous with respect to agr functionality, with agr(+) and agr(-) variants having otherwise indistinguishable chromosomal backgrounds. This finding suggested that the agr(-) variants arose by mutation during the course of the infection. Our results indicate that while most clinical isolates are haemolytic and agr(+), non-haemolytic and agr(-) strains are found in S. aureus infections, and that agr(+) and agr(-) variants may have a cooperative interaction in certain types of infections.

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References
1.
OReilly M, Kreiswirth B, Foster T . Cryptic alpha-toxin gene in toxic shock syndrome and septicaemia strains of Staphylococcus aureus. Mol Microbiol. 1990; 4(11):1947-55. DOI: 10.1111/j.1365-2958.1990.tb02044.x. View

2.
Wright 3rd J, Traber K, Corrigan R, Benson S, Musser J, Novick R . The agr radiation: an early event in the evolution of staphylococci. J Bacteriol. 2005; 187(16):5585-94. PMC: 1196086. DOI: 10.1128/JB.187.16.5585-5594.2005. View

3.
Novick R . Genetic systems in staphylococci. Methods Enzymol. 1991; 204:587-636. DOI: 10.1016/0076-6879(91)04029-n. View

4.
Arvidson S, Tegmark K . Regulation of virulence determinants in Staphylococcus aureus. Int J Med Microbiol. 2001; 291(2):159-70. DOI: 10.1078/1438-4221-00112. View

5.
Goerke C, Campana S, Bayer M, DORING G, Botzenhart K, Wolz C . Direct quantitative transcript analysis of the agr regulon of Staphylococcus aureus during human infection in comparison to the expression profile in vitro. Infect Immun. 2000; 68(3):1304-11. PMC: 97283. DOI: 10.1128/IAI.68.3.1304-1311.2000. View