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Published on: November 6, 2019
Global transcriptomic response of Malassezia pachydermatis isolates under ketoconazole-induced stress
Marianna Domán1, Enikő Wehmann1, László Makrai2
1HUN-REN Veterinary Medical Research Institute, Budapest, Hungary.
Abstract:
Malassezia pachydermatis is an opportunistic yeast associated with otitis externa and dermatitis in dogs. Despite reduced susceptibility to azole antifungals has increasingly been reported in M. pachydermatis, the molecular mechanisms underlying azole stress responses in this species remain poorly understood. In this study, we investigated the global transcriptional response of two M. pachydermatis isolates with different ketoconazole minimum inhibitory concentration values following short-term ketoconazole exposure. Ketoconazole treatment resulted in slightly distinct transcriptional profiles in the two isolates. In isolate 12372, 80 genes were significantly upregulated and 120 were downregulated, whereas isolate 12693 showed 158 upregulated and 211 downregulated genes. Both isolates exhibited significant upregulation of genes involved in ergosterol biosynthesis, including ERG3, ERG5, ERG11, ERG24, and ERG25 suggesting a conserved compensatory response to azole-mediated disruption of sterol metabolism. In isolate 12372, genes associated with ribosome biogenesis was predominantly downregulated, indicating reduced protein synthesis and growth-related activity. In isolate 12693, ketoconazole primarily suppressed genes involved in amino acid biosynthesis, and central carbon metabolism; and upregulated genes associated with ubiquitin ligases, RNA polymerase II regulators, and RNA-binding proteins. Notably, genes encoding ABC transporter-associated efflux pumps were not transcriptionally induced under the tested conditions. Our results provide a comprehensive transcriptomic profile of M. pachydermatis under azole stress, demonstrating that the yeast employs diverse metabolic strategies to enter a decelerated growth state and offer a good basis for identifying future therapeutic targets to combat azole resistance.
Insights
Malassezia pachydermatis shows varied gene expression changes when exposed to ketoconazole, indicating diverse strategies to slow growth and potentially overcome antifungal drug resistance in dogs.
Area of Science:
- Veterinary Mycology
- Antifungal Resistance Mechanisms
- Canine Dermatological Pathogens
Background:
- Malassezia pachydermatis is a yeast linked to skin and ear infections in dogs.
- Increasing azole antifungal resistance in M. pachydermatis necessitates understanding its stress response mechanisms.
Purpose of the Study:
- To investigate the global transcriptional response of M. pachydermatis to ketoconazole exposure.
- To compare the molecular stress responses in isolates with differing ketoconazole susceptibility.
Main Methods:
- Transcriptomic analysis of two M. pachydermatis isolates after short-term ketoconazole treatment.
- Gene expression profiling to identify upregulated and downregulated genes.
Main Results:
- Ketoconazole induced distinct transcriptional profiles in the two isolates.
- Both isolates upregulated ergosterol biosynthesis genes, suggesting a conserved compensatory mechanism.
- Isolate-specific changes included downregulation of ribosome biogenesis and suppression of amino acid/carbon metabolism genes.
- No transcriptional induction of ABC transporter efflux pumps was observed.
Conclusions:
- M. pachydermatis utilizes diverse metabolic adaptations to enter a decelerated growth state under azole stress.
- Understanding these transcriptomic responses provides a foundation for developing new therapeutic targets against azole resistance.
