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.

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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