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Updated: Feb 2, 2026

Author Spotlight: Advancements in Understanding and Combatting Shigella Infections
Published on: February 9, 2024
Bacteriophage Therapy Testing Against Shigella flexneri in a Novel Human Intestinal Organoid-Derived Infection Model
Alejandro Llanos-Chea1,2, Robert J Citorik3,4, Kourtney P Nickerson1,2
1Division of Pediatric Gastroenterology and Nutrition, Mucosal Immunology and Biology Research Center, Massachusetts General Hospital.
Objective:
Enteric bacterial pathogens cause diarrheal disease and mortality at significant rates throughout the world, particularly in children younger than 5 years. Our ability to combat bacterial pathogens has been hindered by antibiotic resistance, a lack of effective vaccines, and accurate models of infection. With the renewed interest in bacteriophage therapy, we sought to use a novel human intestinal model to investigate the efficacy of a newly isolated bacteriophage against Shigella flexneri.
Methods:
An S. flexneri 2457T-specific bacteriophage was isolated and assessed through kill curve experiments and infection assays with colorectal adenocarcinoma HT-29 cells and a novel human intestinal organoid-derived epithelial monolayer model. In our treatment protocol, organoids were generated from intestinal crypt stem cells, expanded in culture, and seeded onto transwells to establish 2-dimensional monolayers that differentiate into intestinal cells.
Results:
The isolated bacteriophage efficiently killed S. flexneri 2457T, other S. flexneri strains, and a strain of 2457T harboring an antibiotic resistance cassette. Analyses with laboratory and commensal Escherichia coli strains demonstrated that the bacteriophage was specific to S. flexneri, as observed under co-culture conditions. Importantly, the bacteriophage prevented both S. flexneri 2457T epithelial cell adherence and invasion in both infection models.
Conclusions:
Bacteriophages offer feasible alternatives to antibiotics for eliminating enteric pathogens, confirmed here by the bacteriophage-targeted killing of S. flexneri. Furthermore, application of the organoid model has provided important insight into Shigella pathogenesis and bacteriophage-dependent intervention strategies. The screening platform described herein provides proof-of-concept analysis for the development of novel bacteriophage therapies to target antibiotic-resistant pathogens.
Insights
A novel bacteriophage effectively targets and kills Shigella flexneri, offering a promising alternative to antibiotics for treating diarrheal diseases. This study demonstrates bacteriophage therapy
Area of Science:
- Microbiology
- Gastroenterology
- Infectious Diseases
Background:
- Enteric bacterial pathogens cause significant global diarrheal disease and mortality, especially in young children.
- Antibiotic resistance, lack of vaccines, and inadequate infection models hinder the fight against these pathogens.
- Bacteriophage therapy is gaining renewed interest as a potential alternative to antibiotics.
Purpose of the Study:
- To investigate the efficacy of a newly isolated bacteriophage against Shigella flexneri.
- To utilize a novel human intestinal model to assess bacteriophage therapeutic potential.
- To explore bacteriophage-dependent intervention strategies for Shigella infections.
Main Methods:
- Isolation and characterization of an S. flexneri-specific bacteriophage.
- Kill curve experiments and infection assays using HT-29 cells and a human intestinal organoid-derived epithelial monolayer model.
- Organoid generation from intestinal crypt stem cells, expansion, and seeding onto transwells for monolayer differentiation.
Main Results:
- The isolated bacteriophage demonstrated efficient killing of S. flexneri 2457T and other S. flexneri strains, including antibiotic-resistant ones.
- Co-culture analyses confirmed the bacteriophage's specificity to S. flexneri, showing no activity against E. coli strains.
- The bacteriophage successfully prevented S. flexneri epithelial cell adherence and invasion in both tested infection models.
Conclusions:
- Bacteriophages present a viable alternative to antibiotics for eliminating enteric pathogens like S. flexneri.
- The human intestinal organoid model provides valuable insights into Shigella pathogenesis and bacteriophage interventions.
- The developed screening platform validates the potential for novel bacteriophage therapies against antibiotic-resistant pathogens.
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