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Updated: Mar 5, 2026

In Silico Identification and Characterization of circRNAs During Host-Pathogen Interactions
Published on: October 21, 2022
A non-canonical RNA degradation pathway suppresses RNAi-dependent epimutations in the human fungal pathogen Mucor
Silvia Calo1, Francisco E Nicolás2, Soo Chan Lee1
1Department of Molecular Genetics and Microbiology, Duke University Medical Center, Durham, North Carolina, United States of America.
Abstract:
Mucorales are a group of basal fungi that includes the casual agents of the human emerging disease mucormycosis. Recent studies revealed that these pathogens activate an RNAi-based pathway to rapidly generate drug-resistant epimutant strains when exposed to stressful compounds such as the antifungal drug FK506. To elucidate the molecular mechanism of this epimutation pathway, we performed a genetic analysis in Mucor circinelloides that revealed an inhibitory role for the non-canonical RdRP-dependent Dicer-independent silencing pathway, which is an RNAi-based mechanism involved in mRNA degradation that was recently identified. Thus, mutations that specifically block the mRNA degradation pathway, such as those in the genes r3b2 and rdrp3, enhance the production of drug resistant epimutants, similar to the phenotype previously described for mutation of the gene rdrp1. Our genetic analysis also revealed two new specific components of the epimutation pathway related to the quelling induced protein (qip) and a Sad-3-like helicase (rnhA), as mutations in these genes prevented formation of drug-resistant epimutants. Remarkably, drug-resistant epimutant production was notably increased in M. circinelloides f. circinelloides isolates from humans or other animal hosts. The host-pathogen interaction could be a stressful environment in which the phenotypic plasticity provided by the epimutant pathway might provide an advantage for these strains. These results evoke a model whereby balanced regulation of two different RNAi pathways is determined by the activation of the RNAi-dependent epimutant pathway under stress conditions, or its repression when the regular maintenance of the mRNA degradation pathway operates under non-stress conditions.
Insights
Mucorales fungi develop drug resistance through an RNAi-dependent epimutation pathway. Blocking mRNA degradation enhances this resistance, while specific gene mutations prevent it, revealing key regulatory mechanisms.
Area of Science:
- Mycology
- Molecular Biology
- Genetics
Background:
- Mucorales fungi cause emerging mucormycosis infections.
- These fungi can rapidly develop drug resistance via epimutation when exposed to antifungal drugs like FK506.
- An RNAi-based pathway is implicated in generating these drug-resistant epimutants.
Purpose of the Study:
- To elucidate the molecular mechanism of the RNAi-dependent epimutation pathway in Mucor circinelloides.
- To identify key genes and pathways involved in the generation of drug-resistant epimutants.
- To investigate the role of host-pathogen interactions in epimutant production.
Main Methods:
- Genetic analysis in Mucor circinelloides.
- Investigated mutations in genes related to RNA silencing and mRNA degradation pathways (e.g., r3b2, rdrp3, rdrp1, qip, rnhA).
- Compared epimutant production in clinical and animal isolates versus environmental strains.
Main Results:
- The non-canonical RdRP-dependent Dicer-independent silencing pathway inhibits epimutation.
- Mutations blocking mRNA degradation (r3b2, rdrp3) enhance drug-resistant epimutant production.
- Mutations in qip and rnhA genes prevent epimutant formation.
- Drug-resistant epimutant production is significantly increased in human and animal host-associated M. circinelloides isolates.
Conclusions:
- Balanced regulation of two RNAi pathways controls epimutation.
- The RNAi-dependent epimutant pathway is activated under stress conditions.
- The mRNA degradation pathway is repressed under non-stress conditions, maintaining stability.
- Phenotypic plasticity via epimutation may confer an advantage to fungal pathogens in host environments.
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