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Author Spotlight: Investigating Bacteriophage-Induced Immune Responses in Gnotobiotic Mice
Published on: January 26, 2024
Escherichia coli phage ΦPNJ-9 adheres to mucus via a variant Hoc protein
Kailai Fu1, Jiaqi Cui1, Yao Li1
1Key Laboratory of Animal Bacteriology, Ministry of Agriculture, College of Veterinary Medicine, Nanjing Agricultural University, Nanjing, Jiangsu, China.
Abstract:
Phages, as antagonists of bacteria, hold significant promise for combating drug-resistant bacterial infections. Their host specificity allows phages to target pathogenic bacteria without disrupting the gut microbiota, offering distinct advantages in the prevention and control of intestinal pathogens. The interaction between the phage and the gut plays a crucial role in the efficacy of phage-mediated bacterial killing. However, the mechanisms underlying these interactions remain poorly understood. In this study, we demonstrate that the clinically isolated T4-like phage, ΦPNJ-9, effectively adheres to the intestinal mucosa in vivo. This adhesion is mediated by the phage's Hoc protein, which interacts with MUC2 in the mucus. The Hoc protein of ΦPNJ-9 represents a variant, consisting of only three domains and lacking Domain 3, in contrast to phage T4. The key interacting sites on ΦPNJ-9 Hoc are amino acids S183, L184, and T185 within Domain 2. Displaying Domain 2 of ΦPNJ-9 Hoc on the surface of M13 phage significantly enhances its adhesion to the intestinal mucosa. Additionally, we identify fucose residues in MUC2 as the critical binding sites for the phage. Through this adhesion, the phage occupies the intestinal niche, thereby protecting the mucosal layer from pathogenic Escherichia coli infections. Our findings highlight the role of Hoc proteins in phage adhesion to intestinal mucus and the variation in binding sites, providing key insights for phage-based strategies aimed at preventing and controlling intestinal pathogens.IMPORTANCEThe rise in antibiotic-resistant pathogenic bacteria has sparked renewed interest in phage therapy as a promising alternative, particularly for targeting intestinal pathogens due to phage's host specificity. However, clinical applications have revealed that many phages are ineffective in eliminating bacteria within the gut, primarily due to the complex interactions between the phage and the gut environment. However, the mechanisms underlying these interactions remain poorly understood. Our previous study demonstrated that a T4-like phage adheres to the intestinal mucosa through the interaction between its Hoc protein and MUC2 in the mucus. Whether this model is widespread among T4-like phages remains unknown. Here, we characterize a variant Hoc protein from a T4-like phage, and identify new binding sites within this protein. Our findings suggest that the interaction between Hoc and MUC2 is likely common, but the critical binding sites vary depending on the specific phage.
Insights
Bacteriophages (phages) adhere to the gut lining using their Hoc protein, which binds to MUC2 mucus. This interaction, involving specific amino acids and fucose residues, helps phages target pathogens like E. coli and prevents infections.
Area of Science:
- Microbiology
- Molecular Biology
- Gastroenterology
Background:
- Phage therapy shows promise for antibiotic-resistant infections due to host specificity.
- Phage-gut interactions are critical for therapeutic efficacy but poorly understood.
- Previous work showed T4-like phage adhesion to intestinal mucosa via Hoc protein and MUC2.
Purpose of the Study:
- To investigate the adhesion mechanisms of T4-like phage ΦPNJ-9 to the intestinal mucosa.
- To identify the specific phage components and host factors involved in this interaction.
- To understand how phage adhesion contributes to protection against intestinal pathogens.
Main Methods:
- In vivo adhesion assays of phage ΦPNJ-9 to the intestinal mucosa.
- Analysis of the phage ΦPNJ-9 Hoc protein structure and function.
- Identification of MUC2 binding sites using biochemical and molecular techniques.
- Functional studies using M13 phage displaying specific phage protein domains.
Main Results:
- Phage ΦPNJ-9 adheres to the intestinal mucosa via its Hoc protein interacting with MUC2.
- A variant Hoc protein (three domains, lacking Domain 3) mediates adhesion.
- Specific amino acids (S183, L184, T185) in Domain 2 of Hoc are key interaction sites.
- Fucose residues in MUC2 are identified as critical binding targets.
- Displaying Domain 2 of Hoc on M13 phage enhances mucosal adhesion.
- Phage adhesion to the mucosa protects against pathogenic Escherichia coli infection.
Conclusions:
- The Hoc protein of T4-like phages plays a significant role in intestinal mucosal adhesion.
- Variations in Hoc protein structure and binding sites exist among different phages.
- Phage-MUC2 interactions are crucial for occupying intestinal niches and preventing pathogen colonization.
- These findings provide insights for developing effective phage-based strategies against intestinal pathogens.
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