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Updated: Jul 2, 2026

A high-throughput method to globally study the organelle morphology in S. cerevisiae
Published on: March 2, 2009
Global analysis of Saccharomyces cerevisiae growth in mucin
Kevin Mercurio1, Dylan Singh1, Elizabeth Walden1
1Department of Biochemistry, Microbiology and Immunology, Ottawa Institute of Systems Biology, University of Ottawa, Ottawa, ON K1H 8M5, Canada.
Abstract:
Metagenomic profiling of the human gut microbiome has discovered DNA from dietary yeasts like Saccharomyces cerevisiae. However, it is unknown if the S. cerevisiae detected by common metagenomic methods are from dead dietary sources, or from live S. cerevisiae colonizing the gut similar to their close relative Candida albicans. While S. cerevisiae can adapt to minimal oxygen and acidic environments, it has not been explored whether this yeast can metabolize mucin, the large, gel-forming, highly glycosylated proteins representing a major source of carbon in the gut mucosa. We reveal that S. cerevisiae can utilize mucin as their main carbon source, as well as perform both a transcriptome analysis and a chemogenomic screen to identify biological pathways required for this yeast to grow optimally in mucin. In total, 739 genes demonstrate significant differential expression in mucin culture, and deletion of 21 genes impact growth in mucin. Both screens suggest that mitochondrial function is required for proper growth in mucin, and through secondary assays we determine that mucin exposure induces mitogenesis and cellular respiration. We further show that deletion of an uncharacterized ORF, YCR095W-A, led to dysfunction in mitochondrial morphology and oxygen consumption in mucin. Finally, we demonstrate that Yps7, an aspartyl protease and homolog to mucin-degrading proteins in C. albicans, is important for growth on mucin. Collectively, our work serves as the initial step toward establishing how this common dietary fungus can survive in the mucus environment of the human gut.
Insights
Saccharomyces cerevisiae can utilize gut mucin as a carbon source, requiring mitochondrial function and specific genes like YPS7 for growth. This study explores how this dietary yeast survives in the human gut mucus environment.
Area of Science:
- Microbiology
- Human Gut Microbiome Research
- Yeast Metabolism
Background:
- Metagenomic studies detect Saccharomyces cerevisiae DNA in the human gut.
- It's unclear if detected S. cerevisiae are viable or from dead dietary sources.
- The ability of S. cerevisiae to metabolize host-derived mucin is unexplored.
Purpose of the Study:
- To investigate if Saccharomyces cerevisiae can utilize mucin as a carbon source.
- To identify genes and pathways essential for S. cerevisiae growth on mucin.
- To understand the survival mechanisms of S. cerevisiae in the gut mucus environment.
Main Methods:
- Culturing S. cerevisiae in mucin as the primary carbon source.
- Transcriptome analysis to identify differentially expressed genes.
- Chemogenomic screening to identify genes impacting growth in mucin.
- Assays for mitochondrial function and morphology.
- Gene deletion studies for specific ORFs and proteases.
Main Results:
- S. cerevisiae can use mucin as its main carbon source.
- 739 genes showed differential expression, and 21 gene deletions impaired growth in mucin.
- Mitochondrial function, mitogenesis, and cellular respiration are crucial for growth on mucin.
- Deletion of YCR095W-A disrupted mitochondrial morphology and oxygen consumption.
- The protease Yps7 is important for S. cerevisiae growth on mucin.
Conclusions:
- Saccharomyces cerevisiae possesses the capability to metabolize and grow on human gut mucin.
- Mitochondrial activity and specific genes, including YPS7, are vital for this adaptation.
- This research provides foundational insights into the survival of dietary yeast in the human gut mucus.
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