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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.
Abstract:
The fungus Mucor circinelloides undergoes yeast-mold dimorphism, a developmental process associated with its capability as a human opportunistic pathogen. Dimorphism is strongly influenced by carbon metabolism, and hence the type of metabolism likely affects fungus virulence. We investigated the role of ethanol metabolism in M. circinelloides virulence. A mutant in the adh1 gene (M5 strain) exhibited higher virulence than the wild-type (R7B) and the complemented (M5/pEUKA-adh1+) strains, which were nonvirulent when tested in a mouse infection model. Cell-free culture supernatant (SS) from the M5 mutant showed increased toxic effect on nematodes compared to that from R7B and M5/pEUKA-adh1+ strains. The concentration of acetaldehyde excreted by strain M5 in the SS was higher than that from R7B, which correlated with the acute toxic effect on nematodes. Remarkably, strain M5 showed higher resistance to H2O2, resistance to phagocytosis, and invasiveness in mouse tissues and induced an enhanced systemic inflammatory response compared with R7B. The mice infected with strain M5 under disulfiram treatment exhibited only half the life expectancy of those infected with M5 alone, suggesting that acetaldehyde produced by M. circinelloides contributes to the toxic effect in mice. These results demonstrate that the failure in fermentative metabolism, in the step of the production of ethanol in M. circinelloides, contributes to its virulence, inducing a more severe tissue burden and inflammatory response in mice as a consequence of acetaldehyde overproduction.
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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