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Use of Single Chain MHC Technology to Investigate Co-agonism in Human CD8+ T Cell Activation
Published on: February 28, 2019
CD8 alpha is expressed by human monocytes and enhances Fc gamma R-dependent responses
Derrick J Gibbings1, Marcelo Marcet-Palacios, Yokananth Sekar
1Pulmonary Research Group, Division of Pulmonary Medicine, Department of Medicine, University of Alberta, Canada. gibbings@ualberta.ca
Insights
Human monocytes express CD8 alpha, a molecule previously known to aid T cell receptor responses. This study shows CD8 alpha enhances Fc receptor responses in monocytes, suggesting a new role in innate immunity.
Area of Science:
- Immunology
- Cell Biology
Background:
- CD8 alpha enhances T cell receptor (TCR) activation by binding MHC class I, promoting signaling.
- CD8 alpha is found on dendritic cells and macrophages, but its role with other receptors like Fc receptors (FcR) is unknown.
- CD8 alpha+ monocytes are linked to diseases involving FcR-mediated pathology.
Purpose of the Study:
- To investigate CD8 alpha expression in human monocytes.
- To determine if CD8 alpha influences Fc receptor-mediated responses in human monocytes.
Main Methods:
- Flow cytometry and western blotting to detect CD8 alpha on human monocytes and THP-1 cells.
- Analysis of CD8 alpha mRNA expression.
- 2-D electrophoresis to compare CD8 alpha from monocytes and T cells.
- Stimulation of monocytes with immune complexes and anti-CD8 alpha monoclonal antibodies (mAbs) to measure TNF release.
Main Results:
- Human monocytes and THP-1 cells express CD8 alpha, but not CD8 beta.
- CD8 alpha expression on monocytes is independent of FcR and CD8 alpha is synthesized by monocytes.
- Co-engagement of CD8 alpha and FcR significantly enhanced monocyte TNF release when stimulated with immune complexes.
Conclusions:
- Human monocytes express CD8 alpha.
- CD8 alpha acts as a co-activator for Fc receptors on human monocytes.
- Fc receptors may represent a novel partner receptor for CD8 alpha on innate immune cells.
Background:
CD8 alpha enhances the responses of antigen-specific CTL activated through TCR through binding MHC class I, favoring lipid raft partitioning of TCR, and inducing intracellular signaling. CD8 alpha is also found on dendritic cells and rat macrophages, but whether CD8 alpha enhances responses of a partner receptor, like TCR, to activate these cells is not known. TCR and FcR, use analogous or occasionally interchangeable signaling mechanisms suggesting the possibility that CD8 alpha co-activates FcR responses. Interestingly, CD8 alpha+ monocytes are often associated with rat models of disease involving immune-complex deposition and FcR-mediated pathology, such as arthritis, glomerulonephritis, ischaemia, and tumors. While rat macrophages have been shown to express CD8 alpha evidence for CD8 alpha expression by mouse or human monocytes or macrophages was incomplete.
Results:
We detected CD8 alpha, but not CD8 beta on human monocytes and the monocytic cell line THP-1 by flow cytometry. Reactivity of anti-CD8 alpha mAb with monocytes is at least partly independent of FcR as anti-CD8 alpha mAb detect CD8 alpha by western blot and inhibit binding of MHC class I tetramers. CD8 alpha mRNA is also found in monocytes and THP-1 suggesting CD8 alpha is synthesized by monocytes and not acquired from other CD8 alpha+ cell types. Interestingly, CD8 alpha from monocytes and blood T cells presented distinguishable patterns by 2-D electrophoresis. Anti-CD8 alpha mAb alone did not activate monocyte TNF release. In comparison, TNF release by human monocytes stimulated in a FcR-dependent manner with immune-complexes was enhanced by inclusion of anti-CD8 alpha mAb in immune-complexes.
Conclusion:
Human monocytes express CD8 alpha. Co-engagement of CD8 alpha and FcR enhances monocyte TNF release, suggesting FcR may be a novel partner receptor for CD8 alpha on innate immune cells.
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