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Whole Genome Sequencing of Candida glabrata for Detection of Markers of Antifungal Drug Resistance
Published on: December 28, 2017
Candida auris can acquire antifungal resistance without selection pressure
Trinh Phan-Canh1,2,3, Duc-Minh Nguyen-Le4, Manju Chauhan5
1Max Perutz Labs Vienna, Vienna Biocenter Campus (VBC), Vienna, Austria.
Abstract:
The human fungal pathogen Candidozyma auris (formerly Candida auris) can cause prolonged infection outbreaks with high mortality rates in healthcare settings. Treatment failures of patients arise not only from antifungal drug resistance, but also from intra-species variability in pathogenicity as well as induced hypermutation events in response to clinical therapy. Whole genome sequencing was used to identify genetic mutations using the CDC mycoSNPs pipeline. Antifungal susceptibility testing was performed based on Clinical and Laboratory Standards Institute (CLSI) methods. We report here that the interlaboratory exchange of C. auris clinical isolates dried on sterile filter paper, resulted in the emergence of at least three distinct morphotypes following reconstitution. These distinct morphotypes exhibited differences in drug resistance and morphogenesis, linked to the accumulation of mutations in genes associated with azole and echinocandin resistance. Using whole genome sequencing, we identified several variants in TAC1B, MRR1 and FKS2 that correlate with altered drug susceptibilities. Experiments recapitulating filter paper shipment conditions revealed genetic and epigenetic changes, explaining the morphogenetic switching and altered azole resistance. Our findings demonstrate that C. auris can acquire mutations affecting drug resistance traits even in the absence of antifungal exposure, raising concerns about shipment preparation procedures across mycology laboratories. The results are of broad relevance for the medical mycology community, as they call for standardized protocols for exchanging clinical strains, but also experiments to verify phenotypic traits between laboratories.
Insights
Candida auris can develop drug resistance and change its form during laboratory shipping, even without antifungal exposure. This highlights the need for standardized protocols when exchanging clinical strains between mycology labs.
Area of Science:
- Medical Mycology
- Antimicrobial Resistance
- Genomics
Background:
- Candida auris is a significant human fungal pathogen causing outbreaks with high mortality.
- Treatment failures are linked to antifungal drug resistance and strain variability.
- Intra-species variability and induced hypermutation contribute to pathogenicity and treatment failure.
Purpose of the Study:
- To investigate genetic and phenotypic changes in Candida auris during interlaboratory strain exchange.
- To identify mutations associated with altered drug resistance and morphogenesis.
- To assess the impact of filter paper shipment conditions on C. auris genetic stability.
Main Methods:
- Whole genome sequencing using the CDC mycoSNPs pipeline.
- Antifungal susceptibility testing following Clinical and Laboratory Standards Institute (CLSI) guidelines.
- Experiments simulating filter paper shipment conditions to induce genetic and epigenetic changes.
Main Results:
- Interlaboratory exchange of C. auris on filter paper led to the emergence of distinct morphotypes.
- These morphotypes showed altered drug resistance and morphogenesis, linked to mutations in azole and echinocandin resistance genes (TAC1B, MRR1, FKS2).
- Genetic and epigenetic changes occurred during simulated shipment, explaining morphogenetic switching and altered azole resistance.
Conclusions:
- Candida auris can acquire mutations affecting drug resistance without antifungal exposure.
- Routine strain handling and exchange can lead to significant genetic and phenotypic diversification.
- Standardized protocols for exchanging clinical C. auris strains are crucial for reliable research and diagnostics.
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