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Updated: Feb 4, 2026

Bacterial Delivery of RNAi Effectors: Transkingdom RNAi
Published on: August 18, 2010
Epimutations driven by RNAi or heterochromatin evoke transient antimicrobial drug resistance in pathogenic Mucor
Ye-Eun Son1, Carlos Pérez-Arques1, Joseph Heitman1
1Department of Molecular Genetics and Microbiology, Duke University Medical Center, Durham, North Carolina, United States of America.
Abstract:
Antimicrobial resistance (AMR) is a global health threat emerging through microbe adaptation, driven by genetic variation, genome plasticity or epigenetic processes. 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 being drug sensitive 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 of 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 pathways involving RNAi or heterochromatin, highlighting adaptive AMR strategies employed by ubiquitous eukaryotic microbes.
Insights
Antifungal resistance in Mucor species emerges via transient epigenetic changes, not DNA mutations. Epimutations involving RNA interference or heterochromatin silencing of the fkbA gene confer resistance to FK506.
Area of Science:
- Microbiology
- Mycology
- Genetics
Background:
- Antimicrobial resistance (AMR) is a significant global health concern.
- Fungal pathogens like Mucor circinelloides can adapt to antifungal drugs.
- FK506 is a natural product that inhibits fungal growth by targeting FKBP12 and calcineurin.
Purpose of the Study:
- To investigate the mechanisms of adaptation and resistance to FK506 in the Mucor circinelloides species complex.
- To determine if resistance is genetically or epigenetically mediated.
- To explore the stability and potential impact of resistance mechanisms on pathogenesis.
Main Methods:
- Analysis of FK506-resistant Mucor bainieri and Mucor atramentarius isolates.
- Assessment of isolate stability upon drug withdrawal.
- Investigation of genetic mutations and epigenetic modifications (RNAi, heterochromatin) associated with resistance.
- siRNA profiling and H3K9 dimethylation analysis.
Main Results:
- Most FK506-resistant isolates (90%) were unstable, reverting to drug sensitivity without DNA mutations.
- Resistance was mediated by RNA interference (RNAi)-dependent epimutation (50%) or heterochromatin-mediated silencing (40%) of the fkbA gene.
- Heterochromatin-mediated epimutants showed stable resistance during in vivo infection, suggesting a role in pathogenesis.
Conclusions:
- Mucor species employ distinct, transient epimutation pathways (RNAi or heterochromatin) for antifungal resistance.
- Epigenetic adaptation, rather than genetic mutation, is a key strategy for rapid AMR in these fungi.
- Epimutation-driven resistance may influence the pathogenesis of fungal infections.
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