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Updated: Oct 10, 2025

Animal Model of Implant-Associated Infections in Mice
Published on: June 27, 2025
Immune Response to Persistent Staphyloccocus Aureus Periprosthetic Joint Infection in a Mouse Tibial Implant Model
Upneet K Sokhi1,2, Yunwei Xia1,2, Branden Sosa1,3
1Research Institute, Hospital for Special Surgery, New York, NY, USA.
Abstract:
Staphyloccocus aureus is one of the major pathogens in orthopedic periprosthetic joint infection (PJI), a devastating complication of total joint arthroplasty that often results in chronic and persistent infections that are refractory to antibiotics and require surgical interventions. Biofilm formation has been extensively investigated as a reason for persistent infection. The cellular composition, activation status, cytokine profile, and role of the immune response during persistent S. aureus PJI are incompletely understood. In this study, we used histology, multiparametric flow cytometry, and gene expression analysis to characterize the immune response in a clinically relevant orthopedic PJI model. We tested the hypothesis that persistent S. aureus infection induces feedback mechanisms that suppress immune cell activation, thereby affecting the course of infection. Surprisingly, persistent infection was characterized by strikingly high cytokine gene expression indicative of robust activation of multiple components of innate and adaptive immunity, along with ongoing severe neutrophil-dominated inflammation, in infected joint and bone tissues. Activation and expansion of draining lymph nodes and a bone marrow stress granulopoiesis reaction were also maintained during late phase infection. In parallel, feedback mechanisms involving T-cell inhibitory receptors and exhaustion markers, suppressive cytokines, and regulatory T cells were activated and associated with decreased T-cell proliferation and tissue infiltration during the persistent phase of infection. These results identify the cellular and molecular components of the mouse immune response to persistent S. aureus PJI and indicate that neutrophil infiltration, inflammatory cytokine responses, and ongoing lymph node and bone marrow reactions are insufficient to clear infection and that immune effector mechanisms are suppressed by feedback inhibitory pathways. These immune-suppressive mechanisms are associated with diminished T-cell proliferation and tissue infiltration and can be targeted as part of adjuvant immunotherapeutic strategies in combination with debridement of biofilm, antibiotics, and other therapeutic modalities to promote eradication of infection. © 2021 American Society for Bone and Mineral Research (ASBMR).
Insights
Persistent Staphylococcus aureus periprosthetic joint infection (PJI) shows robust immune activation but suppressed T-cell responses. These immune suppressive pathways hinder infection clearance and suggest novel therapeutic targets.
Area of Science:
- Immunology
- Microbiology
- Orthopedics
Background:
- Staphylococcus aureus is a primary cause of orthopedic periprosthetic joint infection (PJI), often leading to persistent, antibiotic-refractory infections.
- Biofilm formation is a known factor in PJI persistence, but the immune response dynamics remain unclear.
- Understanding the immune cellular composition, activation, and cytokine profiles in S. aureus PJI is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the immune response in a mouse model of chronic Staphylococcus aureus periprosthetic joint infection (PJI).
- To test the hypothesis that persistent S. aureus infection triggers immune-suppressive feedback mechanisms.
- To identify cellular and molecular components of the immune response that contribute to infection persistence.
Main Methods:
- Histology, multiparametric flow cytometry, and gene expression analysis were employed.
- A clinically relevant orthopedic PJI model in mice was utilized.
- Immune cell activation, cytokine profiles, T-cell responses, and lymph node/bone marrow reactions were assessed.
Main Results:
- Persistent S. aureus PJI exhibited high cytokine gene expression and neutrophil-dominated inflammation.
- Draining lymph nodes showed activation and expansion, with bone marrow exhibiting stress granulopoiesis.
- Immune suppression was evident through activated T-cell inhibitory receptors, suppressive cytokines, and regulatory T cells, leading to decreased T-cell proliferation and tissue infiltration.
Conclusions:
- Despite robust innate immune activation and inflammation, the immune system fails to clear persistent S. aureus PJI.
- Feedback mechanisms actively suppress T-cell responses, diminishing their proliferation and tissue infiltration.
- Targeting these immune-suppressive pathways offers potential for novel adjuvant immunotherapeutic strategies against PJI.

