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Identification and expression of multidrug resistance-related ABC transporter genes in Candida krusei
1MCP Hahnemann University, Philadelphia, Pennsylvania 19129, USA.
Abstract:
Infections with Candida krusei have increased in recent years as a consequence of its intrinsic resistance to fluconazole, an antifungal azole widely used in immunocompromised individuals to suppress infections due to azole-susceptible C. albicans. One established mechanism for azole resistance is drug efflux by ATP binding cassette (ABC) transporters. Since these transporters recognize structurally diverse drugs, their overexpression can lead to multidrug resistance (MDR). To identify C. krusei genes potentially involved in azole resistance, PCR was performed with primers corresponding to conserved sequences of MDR-related ABC transporters from other fungi. Two genes, ABC1 and ABC2, were identified; Southern blots suggested that both have one or two related gene copies in the C. krusei genome. ABC1 RNA was constitutively expressed at low levels in log phase cells while ABC2 RNA was undetectable. However, both genes were upregulated as cultures approached stationary phase, and this upregulation was correlated with decreased susceptibility to the lethal activity of the azole derivative miconazole. Furthermore, ABC1 was upregulated following brief treatment of C. krusei with miconazole and clotrimazole (but not other azoles), and the unrelated compounds albendazole and cycloheximide. The latter two compounds antagonized fluconazole activity versus C. krusei, supporting a role for the ABC1 transporter in azole efflux. Finally, miconazole-resistant mutants selected in vitro demonstrated increased constitutive expression of ABC1. Based on these expression data, genetic and functional characterization of the ABC1 transporter to directly test its role in C. krusei azole resistance would appear to be warranted.
Insights
Candida krusei exhibits fluconazole resistance, increasing infections in immunocompromised patients. Researchers identified ABC1 and ABC2 genes, finding ABC1 upregulation correlates with reduced susceptibility to azole antifungals like miconazole.
Area of Science:
- Mycology
- Molecular Biology
- Antimicrobial Resistance
Background:
- Candida krusei infections are rising due to fluconazole resistance.
- ATP binding cassette (ABC) transporters contribute to multidrug resistance (MDR) by effluxing azole antifungals.
- Understanding azole resistance mechanisms in C. krusei is crucial for effective treatment.
Purpose of the Study:
- To identify genes in Candida krusei involved in azole resistance.
- To investigate the role of ABC transporters in mediating resistance to azole antifungals.
Main Methods:
- Polymerase chain reaction (PCR) using primers for MDR-related ABC transporters.
- Southern blotting to assess gene copy number.
- RNA expression analysis under various conditions (stationary phase, drug treatment).
- Selection and analysis of miconazole-resistant mutants.
Main Results:
- Two novel ABC transporter genes, ABC1 and ABC2, were identified in C. krusei.
- ABC1 expression increased in stationary phase and upon treatment with miconazole and clotrimazole.
- Upregulation of ABC1 correlated with decreased susceptibility to miconazole.
- Miconazole-resistant mutants showed constitutive ABC1 expression.
Conclusions:
- The ABC1 transporter is a potential mediator of azole resistance in Candida krusei.
- Further genetic and functional studies of ABC1 are warranted to confirm its role in azole efflux.
- Identifying mechanisms of azole resistance can inform strategies against C. krusei infections.