Translational genetics identifies a phosphorylation switch in CARD9 required for innate inflammatory responses

Marta Brandt1, Zhifang Cao2, Chirag Krishna3

  • 1Broad Institute of MIT and Harvard, Cambridge, MA 02142, USA.

Cell Reports
|March 15, 2024
PubMed

Insights

Genetic variants in caspase recruitment domain-containing protein 9 (CARD9) impact immune regulation. A specific CARD9 variant disrupts antifungal responses by altering inflammatory signaling in myeloid cells.

Area of Science:

  • Immunology
  • Genetics
  • Biochemistry

Background:

  • Population genetics identifies genetic variants linked to immune system diseases.
  • Caspase recruitment domain-containing protein 9 (CARD9) is associated with fungal infections and autoimmunity.
  • Understanding CARD9's role is crucial for immune regulation mechanisms.

Purpose of the Study:

  • To uncover the biochemical mechanism of CARD9 activation using the R101C missense variant.
  • To investigate how CARD9 variants affect innate immune responses, particularly in fungal infections.
  • To elucidate the molecular and cellular consequences of CARD9 dysfunction in the skin.

Main Methods:

  • Utilized the CARD9 R101C missense variant for biochemical analysis.
  • Investigated the role of S104 phosphorylation in CARD9 activation and inflammatory signaling.
  • Examined the effects of CARD9 R101C on skin cellular contexture and immune cell communication in a fungal infection model.
  • Analyzed fungal burden and inflammatory responses in CARD9 R101C mice.

Main Results:

  • The R101C variant disrupts a signaling switch, preventing CARD9 autoinhibition release via S104 phosphorylation.
  • CARD9 R101C impairs inflammatory responses in myeloid cells, crucial for antifungal defense.
  • CARD9 R101C alters skin cellular contexture, corrupting inflammatory signaling and cell-cell communication during fungal infection.
  • CARD9 R101C mice exhibit high fungal burden with minimal inflammation, indicating a failure to control dermatophyte infection.

Conclusions:

  • Translational genetics provides insights into molecular and cellular mechanisms of innate immune regulation.
  • The study reveals a specific biochemical pathway for CARD9 activation essential for antifungal immunity.
  • CARD9 dysfunction can lead to uncontrolled fungal infections with aberrant inflammatory responses.

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