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Multi-omics characterization of the necrotrophic mycoparasite Saccharomycopsis schoenii
Klara Junker1, Anna Chailyan1, Ana Hesselbart1
1Yeast & Fermentation, Carlsberg Research Laboratory, Copenhagen, Denmark.
Abstract:
Pathogenic yeasts and fungi are an increasing global healthcare burden, but discovery of novel antifungal agents is slow. The mycoparasitic yeast Saccharomycopsis schoenii was recently demonstrated to be able to kill the emerging multi-drug resistant yeast pathogen Candida auris. However, the molecular mechanisms involved in the predatory activity of S. schoenii have not been explored. To this end, we de novo sequenced, assembled and annotated a draft genome of S. schoenii. Using proteomics, we confirmed that Saccharomycopsis yeasts have reassigned the CTG codon and translate CTG into serine instead of leucine. Further, we confirmed an absence of all genes from the sulfate assimilation pathway in the genome of S. schoenii, and detected the expansion of several gene families, including aspartic proteases. Using Saccharomyces cerevisiae as a model prey cell, we honed in on the timing and nutritional conditions under which S. schoenii kills prey cells. We found that a general nutrition limitation, not a specific methionine deficiency, triggered predatory activity. Nevertheless, by means of genome-wide transcriptome analysis we observed dramatic responses to methionine deprivation, which were alleviated when S. cerevisiae was available as prey, and therefore postulate that S. schoenii acquired methionine from its prey cells. During predation, both proteomic and transcriptomic analyses revealed that S. schoenii highly upregulated and translated aspartic protease genes, probably used to break down prey cell walls. With these fundamental insights into the predatory behavior of S. schoenii, we open up for further exploitation of this yeast as a biocontrol yeast and/or source for novel antifungal agents.
Insights
The yeast Saccharomycopsis schoenii preys on other yeasts, like Candida auris, by breaking down their cell walls. This study reveals the molecular mechanisms behind this predatory behavior, offering potential for new antifungal treatments.
Area of Science:
- Microbiology
- Mycology
- Genomics
Background:
- Pathogenic yeasts and fungi pose a growing global health challenge, with a slow discovery rate for new antifungal drugs.
- The mycoparasitic yeast Saccharomycopsis schoenii has shown potential in combating the multi-drug resistant pathogen Candida auris.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying the predatory activity of Saccharomycopsis schoenii against other yeast species.
- To identify potential novel antifungal agents or biocontrol strategies derived from S. schoenii.
Main Methods:
- De novo genome sequencing, assembly, and annotation of S. schoenii.
- Proteomic and transcriptomic analyses to identify upregulated genes and proteins during predation.
- Nutritional studies using Saccharomyces cerevisiae as a model prey to determine predatory triggers.
Main Results:
- The S. schoenii genome was sequenced, revealing a reassigned CTG codon (translating to serine) and absence of sulfate assimilation genes.
- Predatory activity was triggered by general nutrient limitation, with S. schoenii acquiring methionine from prey.
- Aspartic protease genes were significantly upregulated during predation, suggesting their role in breaking down prey cell walls.
Conclusions:
- S. schoenii possesses unique genomic features and employs aspartic proteases for predation.
- Understanding these mechanisms opens avenues for developing S. schoenii as a biocontrol agent or a source of novel antifungal compounds.
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