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Updated: Mar 31, 2026

Author Spotlight: Investigating Bacteriophage-Induced Immune Responses in Gnotobiotic Mice
Published on: January 26, 2024
Subdiffusive motion of bacteriophage in mucosal surfaces increases the frequency of bacterial encounters
Jeremy J Barr1, Rita Auro2, Nicholas Sam-Soon3
1Department of Biology, San Diego State University, San Diego, CA 92182; jeremybarr85@gmail.com.
Abstract:
Bacteriophages (phages) defend mucosal surfaces against bacterial infections. However, their complex interactions with their bacterial hosts and with the mucus-covered epithelium remain mostly unexplored. Our previous work demonstrated that T4 phage with Hoc proteins exposed on their capsid adhered to mucin glycoproteins and protected mucus-producing tissue culture cells in vitro. On this basis, we proposed our bacteriophage adherence to mucus (BAM) model of immunity. Here, to test this model, we developed a microfluidic device (chip) that emulates a mucosal surface experiencing constant fluid flow and mucin secretion dynamics. Using mucus-producing human cells and Escherichia coli in the chip, we observed similar accumulation and persistence of mucus-adherent T4 phage and nonadherent T4∆hoc phage in the mucus. Nevertheless, T4 phage reduced bacterial colonization of the epithelium >4,000-fold compared with T4∆hoc phage. This suggests that phage adherence to mucus increases encounters with bacterial hosts by some other mechanism. Phages are traditionally thought to be completely dependent on normal diffusion, driven by random Brownian motion, for host contact. We demonstrated that T4 phage particles displayed subdiffusive motion in mucus, whereas T4∆hoc particles displayed normal diffusion. Experiments and modeling indicate that subdiffusive motion increases phage-host encounters when bacterial concentration is low. By concentrating phages in an optimal mucus zone, subdiffusion increases their host encounters and antimicrobial action. Our revised BAM model proposes that the fundamental mechanism of mucosal immunity is subdiffusion resulting from adherence to mucus. These findings suggest intriguing possibilities for engineering phages to manipulate and personalize the mucosal microbiome.
Insights
Bacteriophages (phages) use subdiffusive motion in mucus to enhance encounters with bacteria, improving mucosal immunity. This revised model suggests engineering phages for personalized microbiome manipulation.
Area of Science:
- Microbiology
- Biophysics
- Immunology
Background:
- Bacteriophages (phages) are crucial for defending mucosal surfaces against bacterial infections.
- The interactions between phages, bacterial hosts, and mucus-covered epithelia are not fully understood.
- Previous research proposed a bacteriophage adherence to mucus (BAM) model based on T4 phage capsid proteins (Hoc) adhering to mucins.
Purpose of the Study:
- To test the BAM model of mucosal immunity using a microfluidic device.
- To investigate the role of phage adherence and motion in mucus on host encounters and bacterial colonization.
- To revise the BAM model based on experimental findings.
Main Methods:
- Development of a microfluidic device emulating mucosal surfaces with fluid flow and mucin secretion.
- Utilizing mucus-producing human cells and Escherichia coli within the chip.
- Observing phage accumulation, persistence, and bacterial colonization.
- Analyzing phage particle motion (subdiffusion vs. normal diffusion) using experiments and modeling.
Main Results:
- Both mucus-adherent T4 phage and nonadherent T4∆hoc phage showed similar accumulation and persistence in mucus.
- T4 phage reduced bacterial colonization >4,000-fold compared to T4∆hoc phage.
- T4 phage exhibited subdiffusive motion in mucus, while T4∆hoc displayed normal diffusion.
- Subdiffusive motion was found to increase phage-host encounters, especially at low bacterial concentrations.
Conclusions:
- Phage adherence to mucus enhances host encounters and antimicrobial action through subdiffusive motion.
- The revised BAM model posits subdiffusion from mucus adherence as a fundamental mechanism of mucosal immunity.
- Findings offer possibilities for engineering phages to modulate the mucosal microbiome.
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