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.

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.

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