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.

Plos Genetics
|March 25, 2017
PubMed

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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