Loss of Mitochondrial Functions Associated with Azole Resistance in Candida glabrata Results in Enhanced Virulence in Mice
Open Access
- 1 May 2011
- journal article
- Published by American Society for Microbiology in Antimicrobial Agents and Chemotherapy
- Vol. 55 (5) , 1852-1860
- https://doi.org/10.1128/aac.01271-10
Abstract
Mitochondrial dysfunction is one of the possible mechanisms by which azole resistance can occur in Candida glabrata. Cells with mitochondrial DNA deficiency (so-called “petite mutants”) upregulate ATP binding cassette (ABC) transporter genes and thus display increased resistance to azoles. Isolation of such C. glabrata mutants from patients receiving antifungal therapy or prophylaxis has been rarely reported. In this study, we characterized two sequential and related C. glabrata isolates recovered from the same patient undergoing azole therapy. The first isolate (BPY40) was azole susceptible (fluconazole MIC, 4 μg/ml), and the second (BPY41) was azole resistant (fluconazole MIC, >256 μg/ml). BPY41 exhibited mitochondrial dysfunction and upregulation of the ABC transporter genes C. glabrata CDR1 (CgCDR1), CgCDR2, and CgSNQ2. We next assessed whether mitochondrial dysfunction conferred a selective advantage during host infection by testing the virulence of BPY40 and BPY41 in mice. Surprisingly, even with in vitro growth deficiency compared to BPY40, BPY41 was more virulent (as judged by mortality and fungal tissue burden) than BPY40 in both systemic and vaginal murine infection models. The increased virulence of the petite mutant correlated with a drastic gain of fitness in mice compared to that of its parental isolate. To understand this unexpected feature, genome-wide changes in gene expression driven by the petite mutation were analyzed by use of microarrays during in vitro growth. Enrichment of specific biological processes (oxido-reductive metabolism and the stress response) was observed in BPY41, all of which was consistent with mitochondrial dysfunction. Finally, some genes involved in cell wall remodelling were upregulated in BPY41 compared to BPY40, which may partially explain the enhanced virulence of BPY41. In conclusion, this study shows for the first time that mitochondrial dysfunction selected in vivo under azole therapy, even if strongly affecting in vitro growth characteristics, can confer a selective advantage under host conditions, allowing the C. glabrata mutant to be more virulent than wild-type isolates.Keywords
This publication has 43 references indexed in Scilit:
- The inositol regulon controls viability in Candida glabrataMicrobiology, 2010
- Uneven Distribution of Mating Types among Genotypes of Candida glabrata Isolates from Clinical SamplesEukaryotic Cell, 2009
- Gain of Function Mutations in CgPDR1 of Candida glabrata Not Only Mediate Antifungal Resistance but Also Enhance VirulencePLoS Pathogens, 2009
- RSAT: regulatory sequence analysis toolsNucleic Acids Research, 2008
- The biological cost of mutational antibiotic resistance: any practical conclusions?Current Opinion in Microbiology, 2006
- Biological consequences of petite mutations in Candida glabrataJournal of Antimicrobial Chemotherapy, 2005
- Mechanisms of Azole Resistance in Petite Mutants of Candida glabrataAntimicrobial Agents and Chemotherapy, 2004
- Relationships between Respiration and Susceptibility to Azole Antifungals in Candida glabrataAntimicrobial Agents and Chemotherapy, 2003
- In-vivo selection of an azole-resistant petite mutant of Candida glabrataJournal of Medical Microbiology, 2000
- Rat Model of Candida Vaginal InfectionPublished by Elsevier ,1999