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Extensive Metabolic Remodeling Differentiates Non-pathogenic and Pathogenic Growth Forms of the Dimorphic Pathogen
Shivani Pasricha1, James I MacRae2, Hwa H Chua2
1Genetics, Genomics and Systems Biology, School of BioSciences, University of MelbourneParkville, VIC, Australia.
Abstract:
Fungal infections are an increasing public health problem, particularly in immunocompromised individuals. While these pathogenic fungi show polyphyletic origins with closely related non-pathogenic species, many undergo morphological transitions to produce pathogenic cell types that are associated with increased virulence. However, the characteristics of these pathogenic cells that contribute to virulence are poorly defined. Talaromyces marneffei grows as a non-pathogenic hyphal form at 25°C but undergoes a dimorphic transition to a pathogenic yeast form at 37°C in vitro and following inhalation of asexual conidia by a host. Here we show that this transition is associated with major changes in central carbon metabolism, and that these changes are correlated with increased virulence of the yeast form. Comprehensive metabolite profiling and 13C-labeling studies showed that hyphal cells exhibited very active glycolytic metabolism and contain low levels of internal carbohydrate reserves. In contrast, yeast cells fully catabolized glucose in the mitochondrial TCA cycle, and store excess glucose in large intracellular pools of trehalose and mannitol. Inhibition of the yeast TCA cycle inhibited replication in culture and in host cells. Yeast, but not hyphae, were also able to use myo-inositol and amino acids as secondary carbon sources, which may support their survival in host macrophages. These analyses suggest that T. marneffei yeast cells exhibit a more efficient oxidative metabolism and are capable of utilizing a diverse range of carbon sources, which contributes to their virulence in animal tissues, highlighting the importance of dimorphic switching in pathogenic yeast.
Insights
Talaromyces marneffei switches to a pathogenic yeast form, altering its metabolism for increased virulence. This dimorphic transition involves enhanced oxidative metabolism and diverse carbon source utilization, crucial for fungal infection survival.
Area of Science:
- Medical Mycology
- Molecular Biology
- Metabolic Engineering
Background:
- Fungal infections pose a growing public health threat, especially for immunocompromised individuals.
- Pathogenic fungi often exhibit morphological transitions linked to increased virulence, but the underlying mechanisms are unclear.
- Talaromyces marneffei shifts from a non-pathogenic hyphal form to a pathogenic yeast form at host body temperature.
Purpose of the Study:
- To investigate the metabolic changes associated with the dimorphic transition of Talaromyces marneffei.
- To correlate these metabolic shifts with the increased virulence of the yeast form.
- To understand how Talaromyces marneffei survives within host macrophages.
Main Methods:
- Comprehensive metabolite profiling of hyphal and yeast forms.
- 13C-labeling studies to trace carbon metabolism.
- Inhibition of the yeast tricarboxylic acid (TCA) cycle to assess its role in replication and virulence.
Main Results:
- Hyphal cells display active glycolysis with low carbohydrate reserves.
- Yeast cells exhibit robust TCA cycle activity, storing excess glucose as trehalose and mannitol.
- Yeast cells can utilize myo-inositol and amino acids as secondary carbon sources, unlike hyphal cells.
- Inhibiting the yeast TCA cycle impaired replication in vitro and within host cells.
Conclusions:
- The dimorphic transition in Talaromyces marneffei is characterized by significant alterations in central carbon metabolism.
- Enhanced oxidative metabolism and versatile carbon source utilization in the yeast form contribute to its virulence.
- Metabolic flexibility is critical for Talaromyces marneffei survival and pathogenesis within host environments.
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