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Published on: December 9, 2016
Antifungal drug resistance evoked via RNAi-dependent epimutations
Silvia Calo1, Cecelia Shertz-Wall1, Soo Chan Lee1
1Department of Molecular Genetics and Microbiology, Duke University Medical Center, Durham, North Carolina 27710, USA.
Abstract:
Microorganisms evolve via a range of mechanisms that may include or involve sexual/parasexual reproduction, mutators, aneuploidy, Hsp90 and even prions. Mechanisms that may seem detrimental can be repurposed to generate diversity. Here we show that the human fungal pathogen Mucor circinelloides develops spontaneous resistance to the antifungal drug FK506 (tacrolimus) via two distinct mechanisms. One involves Mendelian mutations that confer stable drug resistance; the other occurs via an epigenetic RNA interference (RNAi)-mediated pathway resulting in unstable drug resistance. The peptidylprolyl isomerase FKBP12 interacts with FK506 forming a complex that inhibits the protein phosphatase calcineurin. Calcineurin inhibition by FK506 blocks M. circinelloides transition to hyphae and enforces yeast growth. Mutations in the fkbA gene encoding FKBP12 or the calcineurin cnbR or cnaA genes confer FK506 resistance and restore hyphal growth. In parallel, RNAi is spontaneously triggered to silence the fkbA gene, giving rise to drug-resistant epimutants. FK506-resistant epimutants readily reverted to the drug-sensitive wild-type phenotype when grown without exposure to the drug. The establishment of these epimutants is accompanied by generation of abundant fkbA small RNAs and requires the RNAi pathway as well as other factors that constrain or reverse the epimutant state. Silencing involves the generation of a double-stranded RNA trigger intermediate using the fkbA mature mRNA as a template to produce antisense fkbA RNA. This study uncovers a novel epigenetic RNAi-based epimutation mechanism controlling phenotypic plasticity, with possible implications for antimicrobial drug resistance and RNAi-regulatory mechanisms in fungi and other eukaryotes.
Insights
Mucor circinelloides develops antifungal drug resistance through stable Mendelian mutations or unstable epigenetic RNA interference (RNAi)-mediated silencing of the fkbA gene.
Area of Science:
- Mycology
- Molecular Biology
- Genetics
Background:
- Microorganisms evolve diverse mechanisms for adaptation.
- Antifungal drug resistance is a growing public health concern.
- The human fungal pathogen Mucor circinelloides's adaptation mechanisms are not fully understood.
Purpose of the Study:
- To investigate the mechanisms of spontaneous resistance to the antifungal drug FK506 (tacrolimus) in Mucor circinelloides.
- To elucidate the role of Mendelian mutations and epigenetic pathways in drug resistance.
- To uncover novel RNA interference (RNAi)-based epimutation mechanisms.
Main Methods:
- Genetic analysis of mutations in fkbA, cnbR, and cnaA genes.
- Assessment of FK506 resistance and hyphal growth.
- RNA interference (RNAi) pathway analysis.
- Detection of fkbA small RNAs and antisense RNA generation.
Main Results:
- Two distinct mechanisms of FK506 resistance were identified: stable Mendelian mutations and unstable RNAi-mediated epigenetic silencing of fkbA.
- RNAi-mediated silencing leads to drug-resistant epimutants that readily revert to the sensitive phenotype.
- Silencing involves the generation of double-stranded RNA triggers and requires the RNAi pathway.
- FK506-resistant epimutants are associated with abundant fkbA small RNAs.
Conclusions:
- Mucor circinelloides employs a novel epigenetic RNAi-based epimutation mechanism for phenotypic plasticity and drug resistance.
- This mechanism provides a rapid, albeit unstable, adaptation strategy.
- Findings have implications for understanding antimicrobial drug resistance and RNAi regulation in eukaryotes.
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