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Propionate metabolism in a human pathogenic fungus: proteomic and biochemical analyses
Luiz Paulo Araújo Santos1, Leandro do Prado Assunção1, Patrícia de Souza Lima1,2
1Laboratório de Biologia Molecular, Instituto de Ciências Biológicas, Universidade Federal de Goiás, Goiânia, Brazil.
Abstract:
Fungi of the complex Paracoccidioides spp. are thermodimorphic organisms that cause Paracoccidioidomycosis, one of the most prevalent mycoses in Latin America. These fungi present metabolic mechanisms that contribute to the fungal survival in host tissues. Paracoccidioides lutzii activates glycolysis and fermentation while inactivates aerobic metabolism in iron deprivation, a condition found during infection. In lungs Paracoccidioides brasiliensis face a glucose poor environment and relies on the beta-oxidation to support energy requirement. During mycelium to yeast transition P. lutzii cells up-regulate transcripts related to lipid metabolism and cell wall remodeling in order to cope with the host body temperature. Paracoccidioides spp. cells also induce transcripts/enzymes of the methylcitrate cycle (MCC), a pathway responsible for propionyl-CoA metabolism. Propionyl-CoA is a toxic compound formed during the degradation of odd-chain fatty acids, branched chain amino acids and cholesterol. Therefore, fungi require a functional MCC for full virulence and the ability to metabolize propionyl-CoA is related to the virulence traits in Paracoccidioides spp. On this way we sought to characterize the propionate metabolism in Paracoccidioides spp. The data collected showed that P. lutzii grows in propionate and activates the MCC by accumulating transcripts and proteins of methylcitrate synthase (MCS), methylcitrate dehydratase (MCD) and methylisocitrate lyase (MCL). Biochemical characterization of MCS showed that the enzyme is regulated by phosphorylation, an event not yet described. Proteomic analyses further indicate that P. lutzii yeast cells degrades lipids and amino acids to support the carbon requirement for propionate metabolism. The induction of a putative propionate kinase suggests that fungal cells use propionyl-phosphate as an intermediate in the production of toxic propionyl-CoA. Concluding, the metabolism of propionate in P. lutzii is under regulation at transcriptional and phosphorylation levels and that survival on this carbon source requires additional mechanisms other than activation of MCC.
Insights
Paracoccidioides fungi utilize propionate metabolism for survival, activating the methylcitrate cycle (MCC). This process is regulated by phosphorylation and transcriptional changes, crucial for virulence.
Area of Science:
- Medical Mycology
- Fungal Pathogenesis
- Molecular Biology
Background:
- Paracoccidioides spp. are thermodimorphic fungi causing Paracoccidioidomycosis, a significant mycosis in Latin America.
- These fungi possess metabolic adaptations for survival within host tissues, including nutrient deprivation.
- Propionyl-CoA, a toxic byproduct of various metabolic pathways, requires detoxification via the methylcitrate cycle (MCC).
Purpose of the Study:
- To investigate the propionate metabolism in Paracoccidioides spp.
- To elucidate the regulatory mechanisms governing the methylcitrate cycle (MCC) in Paracoccidioides lutzii.
- To understand the role of propionate metabolism in fungal virulence.
Main Methods:
- Cultivation of Paracoccidioides lutzii in propionate-containing media.
- Transcriptional and proteomic analyses to assess MCC enzyme expression (MCS, MCD, MCL).
- Biochemical characterization of methylcitrate synthase (MCS) activity and regulation.
- Analysis of lipid and amino acid degradation pathways.
Main Results:
- Paracoccidioides lutzii effectively grows on propionate, upregulating MCC transcripts and proteins.
- Methylcitrate synthase (MCS) activity is regulated by phosphorylation, a novel finding.
- Yeast cells degrade lipids and amino acids to support propionate metabolism, with evidence for a propionate kinase pathway.
Conclusions:
- Propionate metabolism in Paracoccidioides lutzii is tightly regulated at both transcriptional and post-translational (phosphorylation) levels.
- The methylcitrate cycle (MCC) is essential for utilizing propionate as a carbon source.
- Additional mechanisms beyond MCC activation are required for fungal survival on propionate, contributing to virulence.
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