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Updated: Jul 14, 2025

Isolation and Th17 Differentiation of Naïve CD4 T Lymphocytes
Published on: September 26, 2013
Card9/neutrophil signalling axis promotes IL-17A-mediated ankylosing spondylitis
Holly L Rosenzweig1,2, Emily E Vance1,2, Kofi Asare-Konadu1
1Molecular Microbiology and Immunology, Oregon Health & Science University, Portland, Oregon, USA.
Insights
Card9 (caspase recruitment domain-containing protein 9) plays a crucial role in neutrophil function, driving pathogenic Th17 responses and ankylosing spondylitis (AS) development. This study uncovers a novel neutrophil-intrinsic mechanism underlying AS pathogenesis.
Area of Science:
- Immunology
- Rheumatology
- Molecular Biology
Background:
- Polymorphisms in CARD9 are linked to ankylosing spondylitis (AS).
- Understanding the cellular mechanisms of CARD9 in AS pathogenesis is crucial.
Purpose of the Study:
- To investigate how CARD9 controls pathogenic Th17 responses.
- To elucidate the role of CARD9 in AS onset in murine models and human patients.
Main Methods:
- Experiments in SKG mice (wild-type, Card9 knockout, neutrophil-depleted) and in vitro co-cultures of murine neutrophils and CD4+ T cells.
- Analysis of neutrophil-to-T cell ratios and the Bath Ankylosing Spondylitis Functional Index in AS patients.
- In vitro studies using autologous neutrophil: T cell co-cultures to assess CARD9 variants and IL-17A production.
Main Results:
- Card9 is essential for Th17 cell induction, arthritis, and spondylitis in SKG mice, functioning downstream of Dectin-1.
- Card9 expression in T cells is dispensable for arthritis; neutrophils are key drivers of Th17 expansion and disease.
- Neutrophils expressing CARD9 potentiate IL-17A production by CD4+ T cells.
- A similar mechanism was observed in AS patients, where neutrophils from HLA-B27+ patients expanded Th17 cells, and the CARD9 S12N variant increased IL-17A.
Conclusions:
- CARD9 has a novel neutrophil-intrinsic function in promoting arthritogenic Th17 responses.
- This finding provides insights into CARD9-specific mechanisms in spondyloarthritis pathogenesis.
Objective:
Polymorphisms in the antifungal signalling molecule CARD9 are associated with ankylosing spondylitis (AS). Here, we investigated the cellular mechanism by which CARD9 controls pathogenic Th17 responses and the onset of disease in both experimental murine AS and patients.
Methods:
Experiments in SKG, Card9-/-SKG, neutrophil-deplete SKG mice along with in vitro murine, neutrophil and CD4+ T cell cocultures examined Card9 function in neutrophil activation, Th17 induction and arthritis in experimental AS. In AS patients the neutrophil: Bath Ankylosing Spondylitis Functional Index relationship was analysed. In vitro studies with autologous neutrophil: T cell cocultures examined endogenous CARD9 versus the AS-associated variant (rs4075515) of CARD9 in T cellular production of IL-17A.
Results:
Card9 functioned downstream of Dectin-1 and was essential for induction of Th17 cells, arthritis and spondylitis in SKG mice. Card9 expression within T cells was dispensable for arthritis onset in SKG mice. Rather, Card9 expression controlled neutrophil function; and neutrophils in turn, were responsible for triggering Th17 expansion and disease in SKG mice. Mechanistically, cocultures of zymosan prestimulated neutrophils and SKG T cells revealed a direct cellular function for Card9 within neutrophils in the potentiation of IL-17 production by CD4+ T cells on TCR-ligation. The clinical relevance of the neutrophil-Card9-coupled mechanism in Th17-mediated disease is supported by a similar observation in AS patients. Neutrophils from HLA-B27+ AS patients expanded autologous Th17 cells in vitro, and the AS-associated CARD9S12N variant increased IL-17A.
Conclusions:
These data reveal a novel neutrophil-intrinsic role for Card9 in arthritogenic Th17 responses and AS pathogenesis. These data provide valuable utility in our future understanding of CARD9-specific mechanisms in spondyloarthritis .
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