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Published on: June 19, 2013
Host-Pathogen Interactions Mediated by MDR Transporters in Fungi: As Pleiotropic as it Gets!
Mafalda Cavalheiro1,2, Pedro Pais3,4, Mónica Galocha5,6
1Department of Bioengineering, Instituto Superior Técnico, Universidade de Lisboa, 1049-001 Lisbon, Portugal. mafalda.cavalheiro@tecnico.ulisboa.pt.
Abstract:
Fungal infections caused by Candida, Aspergillus, and Cryptococcus species are an increasing problem worldwide, associated with very high mortality rates. The successful prevalence of these human pathogens is due to their ability to thrive in stressful host niche colonization sites, to tolerate host immune system-induced stress, and to resist antifungal drugs. This review focuses on the key role played by multidrug resistance (MDR) transporters, belonging to the ATP-binding cassette (ABC), and the major facilitator superfamilies (MFS), in mediating fungal resistance to pathogenesis-related stresses. These clearly include the extrusion of antifungal drugs, with C. albicans CDR1 and MDR1 genes, and corresponding homologs in other fungal pathogens, playing a key role in this phenomenon. More recently, however, clues on the transcriptional regulation and physiological roles of MDR transporters, including the transport of lipids, ions, and small metabolites, have emerged, linking these transporters to important pathogenesis features, such as resistance to host niche environments, biofilm formation, immune system evasion, and virulence. The wider view of the activity of MDR transporters provided in this review highlights their relevance beyond drug resistance and the need to develop therapeutic strategies that successfully face the challenges posed by the pleiotropic nature of these transporters.
Insights
Multidrug resistance (MDR) transporters in fungi are crucial for pathogen survival and virulence. Targeting these transporters offers new strategies against invasive fungal infections.
Area of Science:
- Medical Mycology
- Molecular Biology
- Biochemistry
Background:
- Invasive fungal infections caused by Candida, Aspergillus, and Cryptococcus species present a significant global health challenge with high mortality rates.
- Pathogen success is linked to their ability to adapt to host environments, resist immune responses, and tolerate antifungal drugs.
Purpose of the Study:
- To review the role of multidrug resistance (MDR) transporters in fungal pathogenesis beyond antifungal drug resistance.
- To highlight the broader physiological functions of MDR transporters in fungal survival and virulence.
Main Methods:
- Literature review focusing on ATP-binding cassette (ABC) and major facilitator superfamilies (MFS) transporters.
- Analysis of studies on transcriptional regulation and physiological roles of MDR transporters in fungal pathogens.
Main Results:
- MDR transporters, including those encoded by C. albicans CDR1 and MDR1, mediate antifungal drug extrusion.
- Emerging evidence links MDR transporters to lipid, ion, and metabolite transport, impacting biofilm formation, immune evasion, and virulence.
Conclusions:
- MDR transporters play a pleiotropic role in fungal pathogenesis, extending beyond drug resistance.
- Developing therapeutic strategies targeting MDR transporters is essential to combat challenging fungal infections.
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