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Updated: Sep 16, 2025

Whole Genome Sequencing of Candida glabrata for Detection of Markers of Antifungal Drug Resistance
Published on: December 28, 2017
Epimutations driven by RNAi or heterochromatin evoke transient antimicrobial drug resistance in fungi
Ye-Eun Son1, Joseph Heitman1, Joseph Heitman1
1Department of Molecular Genetics and Microbiology, Duke University Medical Center, Durham, NC 27710, USA.
Abstract:
Antimicrobial resistance (AMR) is a global health threat emerging through microbe adaptation, driven by genetic variation, genome plasticity or epigenetic process. In this study, we investigated how the Mucor circinelloides species complex adapts to the antifungal natural product FK506, which binds to FKBP12 and inhibits calcineurin-dependent hyphal growth. In Mucor bainieri, most FK506-resistant isolates (90%) were found to be unstable and transient, readily reverting to drug sensitivity when passaged without drug, and with no associated DNA mutations. In half of the isolates (50%), FK506-resistance was conferred by RNAi-dependent epimutation in which small interfering RNAs (siRNAs) silenced the fkbA encoding FKBP12 post-transcriptionally. In contrast, most of the remaining FK506-resistant isolates (40%) were found to have undergone heterochromatin-mediated silencing via H3K9 dimethylation, transcriptionally repressing fkbA and neighboring genes. In these heterochromatic epimutants, only minimal enrichment of siRNA to the fkbA locus was observed, but in three of the four examples, siRNA was significantly enriched at a locus distant from fkbA. A similar mechanism operates in Mucor atramentarius, where FK506 resistance was mediated by ectopic heterochromatin silencing fkbA and associated genes with siRNA spreading across the region. Heterochromatin-mediated fkbA epimutants exhibited stability during in vivo infection, suggesting epimutation could impact pathogenesis. These findings reveal that antifungal resistance arising through distinct, transient epimutation pathwamediated fkbA epimutants exhibited stability during in vivo infection, suggesting epimutation could impact pathogenys involving RNAi or heterochromatin, highlighting adaptive AMR strategies employed by ubiquitous eukaryotic microbes.
Insights
Antimicrobial resistance in fungi like Mucor circinelloides can emerge through epigenetic changes, not just genetic mutations. These heritable epigenetic mechanisms, involving RNA interference and heterochromatin, allow microbes to adapt to antifungal drugs.
Area of Science:
- Microbiology
- Mycology
- Epigenetics
Background:
- Antimicrobial resistance is a significant global health challenge.
- Fungal pathogens like Mucor circinelloides can adapt to antifungal agents through various mechanisms.
- Epigenetic regulation plays a role in microbial adaptation and resistance.
Purpose of the Study:
- To investigate the epigenetic mechanisms underlying adaptation to the antifungal FK506 in the Mucor circinelloides species complex.
- To understand how genetic variation, genome plasticity, and epigenetic regulation contribute to antifungal resistance.
Main Methods:
- Analysis of FK506-resistant Mucor bainieri and Mucor atramentarius isolates.
- Investigation of RNA interference (RNAi) pathways and small interfering RNAs (siRNAs).
- Assessment of heterochromatin formation, H3K9 methylation, and gene silencing.
- Evaluation of epimutation stability during in vivo infection models.
Main Results:
- Most FK506-resistant Mucor strains showed unstable phenotypes without genetic alterations.
- Approximately 50% of resistant isolates acquired resistance via RNAi-dependent epimutation, silencing the fkbA gene.
- Other isolates developed resistance through heterochromatin-mediated silencing of fkbA and neighboring genes, involving H3K9 methylation and siRNA spreading.
- One isolate showed heterochromatin marks without detectable siRNAs.
- Similar epigenetic mechanisms were observed in Mucor atramentarius.
- Heterochromatin-based epimutations demonstrated stable inheritance during in vivo infections.
Conclusions:
- Antifungal resistance in Mucor species can arise from distinct, heritable epigenetic pathways.
- RNAi, heterochromatin, or a combination of both are key epigenetic mechanisms conferring resistance.
- These findings highlight adaptive strategies of eukaryotic microbial pathogens against antifungal treatments.
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