Alteration of Fermentative Metabolism Enhances Mucor circinelloides Virulence

Sharel P Díaz-Pérez1, J Alberto Patiño-Medina1, Marco I Valle-Maldonado1

  • 1Instituto de Investigaciones Químico Biológicas, Universidad Michoacana de San Nicolás de Hidalgo (UMSNH), Morelia, Michoacán, México.

Infection and Immunity
|November 6, 2019
PubMed

Insights

A Mucor circinelloides mutant lacking ethanol production showed increased virulence. This acetaldehyde overproduction enhanced fungal toxicity, resistance to host defenses, and induced severe inflammation in mice.

Area of Science:

  • Medical Mycology
  • Fungal Pathogenesis
  • Microbial Metabolism

Background:

  • Mucor circinelloides is an opportunistic human pathogen exhibiting yeast-mold dimorphism.
  • Fungal dimorphism and virulence are influenced by carbon metabolism.
  • The role of ethanol metabolism in M. circinelloides virulence remains largely unexplored.

Purpose of the Study:

  • To investigate the impact of ethanol metabolism on Mucor circinelloides virulence.
  • To determine if defects in ethanol production affect fungal pathogenicity.

Main Methods:

  • Generation and characterization of an adh1 gene mutant (M5) in M. circinelloides.
  • Virulence assessment using a mouse infection model.
  • Evaluation of fungal supernatant toxicity on nematodes.
  • Measurement of acetaldehyde production.
  • Assessment of H2O2 resistance, phagocytosis resistance, and tissue invasiveness.

Main Results:

  • The adh1 mutant (M5) displayed significantly higher virulence in mice compared to wild-type (R7B).
  • M5 exhibited increased acetaldehyde production, correlating with enhanced toxicity to nematodes.
  • M5 showed increased resistance to H2O2, phagocytosis, and invasiveness, alongside a heightened inflammatory response in mice.

Conclusions:

  • Impaired fermentative metabolism, specifically reduced ethanol production, enhances M. circinelloides virulence.
  • Acetaldehyde overproduction by M. circinelloides contributes to its pathogenicity by increasing tissue burden and inflammatory responses.

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