Host Mucin Is Exploited by Pseudomonas aeruginosa To Provide Monosaccharides Required for a Successful Infection
Casandra L Hoffman1, Jonathan Lalsiamthara1, Alejandro Aballay2
1Molecular Microbiology and Immunology Department, Oregon Health and Sciences University, Portland, Oregon, USA.
Abstract:
One of the primary functions of the mucosal barrier, found lining epithelial cells, is to serve as a first-line of defense against microbial pathogens. The major structural components of mucus are heavily glycosylated proteins called mucins. Mucins are key components of the innate immune system as they aid in the clearance of pathogens and can decrease pathogen virulence. It has also been recently reported that individual mucins and derived glycans can attenuate the virulence of the human pathogen Pseudomonas aeruginosa Here, we show data indicating that mucins not only play a role in host defense but that they can also be subverted by P. aeruginosa to cause disease. We found that the mucin MUL-1 and mucin-derived monosaccharides N-acetyl-galactosamine and N-acetylglucosamine are required for P. aeruginosa killing of Caenorhabditis elegans We also found that the defective adhesion of P. aeruginosa to human lung alveolar epithelial cells, deficient in the mucin MUC1, can be reversed by the addition of individual monosaccharides. The monosaccharides identified in this study are found in a wide range of organisms where they act as host factors required for bacterial pathogenesis. While mucins in C. elegans lack sialic acid caps, which makes their monosaccharides readily available, they are capped in other species. Pathogens such as P. aeruginosa that lack sialidases may rely on enzymes from other bacteria to utilize mucin-derived monosaccharides.IMPORTANCE One of the first lines of defense present at mucosal epithelial tissues is mucus, which is a highly viscous material formed by mucin glycoproteins. Mucins serve various functions, but importantly they aid in the clearance of pathogens and debris from epithelial barriers and serve as innate immune factors. In this study, we describe a requirement of host monosaccharides, likely derived from host mucins, for the ability of Pseudomonas aeruginosa to colonize the intestine and ultimately cause death in Caenorhabditis elegans We also demonstrate that monosaccharides alter the ability of bacteria to bind to both Caenorhabditis elegans intestinal cells and human lung alveolar epithelial cells, suggesting that there are conserved mechanisms underlying host-pathogen interactions in a range of organisms. By gaining a better understanding of pathogen-mucin interactions, we can develop better approaches to protect against pathogen infection.
Insights
Pseudomonas aeruginosa subverts host mucins and their derived monosaccharides, N-acetyl-galactosamine and N-acetylglucosamine, for pathogenesis in C. elegans and adhesion to human lung cells.
Area of Science:
- Microbiology
- Immunology
- Glycobiology
Background:
- Mucosal barriers, composed of mucins, are crucial for innate immunity and host defense against pathogens.
- Mucins and their derived glycans can modulate pathogen virulence, including that of Pseudomonas aeruginosa.
Purpose of the Study:
- To investigate the role of mucins and their derived monosaccharides in Pseudomonas aeruginosa pathogenesis.
- To determine if host-derived monosaccharides are essential for P. aeruginosa colonization and virulence.
Main Methods:
- Utilized Caenorhabditis elegans as a model organism to study P. aeruginosa infection.
- Assessed P. aeruginosa adhesion to human lung alveolar epithelial cells.
- Analyzed the role of specific monosaccharides (N-acetyl-galactosamine, N-acetylglucosamine) in bacterial pathogenesis and adhesion.
Main Results:
- Mucin MUL-1 and derived monosaccharides are essential for P. aeruginosa-mediated killing of C. elegans.
- Defective P. aeruginosa adhesion to MUC1-deficient human lung cells was restored by adding specific monosaccharides.
- Identified host monosaccharides as critical factors for bacterial pathogenesis across different organisms.
Conclusions:
- Pseudomonas aeruginosa can subvert host mucins and their monosaccharides for disease development.
- Host-derived monosaccharides play a conserved role in bacterial pathogenesis and host-pathogen interactions.
- Understanding mucin-pathogen interactions can lead to novel strategies for combating infections.
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