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Rapid One-step Enzymatic Synthesis and All-aqueous Purification of Trehalose Analogues
Published on: February 17, 2017
Role of trehalose biosynthesis in Aspergillus fumigatus development, stress response, and virulence
Nadia Al-Bader1, Ghyslaine Vanier, Hong Liu
1Department of Microbiology and Immunology, Faculty of Medicine, McGill University, Montreal, Quebec, Canada.
Abstract:
Aspergillus fumigatus is a pathogenic mold which causes invasive, often fatal, pulmonary disease in immunocompromised individuals. Recently, proteins involved in the biosynthesis of trehalose have been linked with virulence in other pathogenic fungi. We found that the trehalose content increased during the developmental life cycle of A. fumigatus, throughout which putative trehalose synthase genes tpsA and tpsB were significantly expressed. The trehalose content of A. fumigatus hyphae also increased after heat shock but not in response to other stressors. This increase in trehalose directly correlated with an increase in expression of tpsB but not tpsA. However, deletion of both tpsA and tpsB was required to block trehalose accumulation during development and heat shock. The DeltatpsAB double mutant had delayed germination at 37 degrees C, suggesting a developmental defect. At 50 degrees C, the majority of DeltatpsAB spores were found to be nonviable, and those that were viable had severely delayed germination, growth, and subsequent sporulation. DeltatpsAB spores were also susceptible to oxidative stress. Surprisingly, the DeltatpsAB double mutant was hypervirulent in a murine model of invasive aspergillosis, and this increased virulence was associated with alterations in the cell wall and resistance to macrophage phagocytosis. Thus, while trehalose biosynthesis is required for a number of biological processes that both promote and inhibit virulence, in A. fumigatus the predominant effect is a reduction in pathogenicity. This finding contrasts sharply with those for other fungi, in which trehalose biosynthesis acts to enhance virulence.
Insights
Trehalose biosynthesis in Aspergillus fumigatus is essential for development and stress resistance. Deleting trehalose synthase genes unexpectedly increased fungal virulence in mice, contrary to other fungi.
Area of Science:
- Medical Mycology
- Molecular Biology
- Fungal Pathogenesis
Background:
- Aspergillus fumigatus causes life-threatening infections in immunocompromised patients.
- Trehalose biosynthesis is implicated in virulence in other pathogenic fungi.
- Trehalose accumulation and gene expression in A. fumigatus were investigated.
Purpose of the Study:
- To investigate the role of trehalose biosynthesis in Aspergillus fumigatus development, stress response, and virulence.
- To determine the function of trehalose synthase genes (tpsA and tpsB).
Main Methods:
- Quantification of trehalose content during fungal development and after stress.
- Analysis of tpsA and tpsB gene expression.
- Construction and phenotypic characterization of a tpsA and tpsB double deletion mutant (DeltatpsAB).
- Assessment of DeltatpsAB mutant virulence in a murine model of invasive aspergillosis.
Main Results:
- Trehalose content increased during A. fumigatus development and heat shock, correlating with tpsB expression.
- Deletion of both tpsA and tpsB blocked trehalose accumulation and caused developmental defects, including delayed germination and reduced viability under stress.
- The DeltatpsAB mutant exhibited hypervirulence in a murine model, with altered cell walls and increased resistance to phagocytosis.
Conclusions:
- Trehalose biosynthesis in A. fumigatus is crucial for development and stress tolerance.
- Contrary to other fungi, trehalose biosynthesis in A. fumigatus primarily reduces pathogenicity.
- The DeltatpsAB mutant's hypervirulence highlights a complex role for trehalose in fungal-host interactions.
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