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Updated: Apr 6, 2026

A Mouse Model to Assess Innate Immune Response to Staphylococcus aureus Infection
Published on: February 28, 2019
Staphylococcus aureus Colonization of the Mouse Gastrointestinal Tract Is Modulated by Wall Teichoic Acid, Capsule,
Yoshiki Misawa1, Kathryn A Kelley1, Xiaogang Wang1
1Division of Infectious Diseases, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, Massachusetts, United States of America.
Abstract:
Staphylococcus aureus colonizes the nose, throat, skin, and gastrointestinal (GI) tract of humans. GI carriage of S. aureus is difficult to eradicate and has been shown to facilitate the transmission of the bacterium among individuals. Although staphylococcal colonization of the GI tract is asymptomatic, it increases the likelihood of infection, particularly skin and soft tissue infections caused by USA300 isolates. We established a mouse model of persistent S. aureus GI colonization and characterized the impact of selected surface antigens on colonization. In competition experiments, an acapsular mutant colonized better than the parental strain Newman, whereas mutants defective in sortase A and clumping factor A showed impaired ability to colonize the GI tract. Mutants lacking protein A, clumping factor B, poly-N-acetyl glucosamine, or SdrCDE showed no defect in colonization. An S. aureus wall teichoic acid (WTA) mutant (ΔtagO) failed to colonize the mouse nose or GI tract, and the tagO and clfA mutants showed reduced adherence in vitro to intestinal epithelial cells. The tagO mutant was recovered in lower numbers than the wild type strain in the murine stomach and duodenum 1 h after inoculation. This reduced fitness correlated with the in vitro susceptibility of the tagO mutant to bile salts, proteases, and a gut-associated defensin. Newman ΔtagO showed enhanced susceptibility to autolysis, and an autolysin (atl) tagO double mutant abrogated this phenotype. However, the atl tagO mutant did not survive better in the mouse GI tract than the tagO mutant. Our results indicate that the failure of the tagO mutant to colonize the GI tract correlates with its poor adherence and susceptibility to bactericidal factors within the mouse gut, but not to enhanced activity of its major autolysin.
Insights
Staphylococcus aureus gastrointestinal colonization is challenging to eliminate. Wall teichoic acid is crucial for S. aureus colonization, impacting adherence and survival against gut factors.
Area of Science:
- Microbiology
- Infectious Diseases
- Bacterial Pathogenesis
Background:
- Staphylococcus aureus commonly colonizes human mucosal sites, including the gastrointestinal (GI) tract.
- GI carriage of S. aureus is persistent, aids transmission, and increases infection risk, particularly skin and soft tissue infections.
- Understanding factors governing S. aureus GI colonization is vital for infection control.
Purpose of the Study:
- To establish a mouse model for persistent S. aureus GI colonization.
- To investigate the role of specific surface antigens in S. aureus GI colonization.
- To identify key bacterial factors enabling successful gut colonization.
Main Methods:
- Development of a persistent S. aureus GI colonization mouse model.
- Competition experiments using various S. aureus mutants (e.g., acapsular, sortase A, clumping factor A, wall teichoic acid deficient).
- In vitro assays assessing bacterial adherence to intestinal cells and susceptibility to bile salts, proteases, and defensins.
Main Results:
- Mutants lacking sortase A and clumping factor A exhibited impaired GI colonization.
- A wall teichoic acid (WTA) mutant (ΔtagO) failed to colonize the nose and GI tract.
- The ΔtagO mutant showed reduced in vitro adherence and increased susceptibility to gut bactericidal factors, correlating with colonization defects.
Conclusions:
- Wall teichoic acid (WTA) is essential for S. aureus colonization of the mouse GI tract.
- Impaired colonization by the ΔtagO mutant is linked to poor adherence and susceptibility to host defense mechanisms.
- While autolysis is affected, it does not explain the colonization failure of the ΔtagO mutant in the GI tract.
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