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Generation of Human Monocyte-derived Dendritic Cells from Whole Blood
Published on: December 24, 2016
Human C-reactive protein activates monocyte-derived dendritic cells and induces dendritic cell-mediated T-cell
Emily A Van Vré1, Hidde Bult, Vicky Y Hoymans
1Department of Cardiology, University of Antwerp, B-2610 Wilrijk, Belgium. emily.vanvre@ua.ac.be
Insights
C-reactive protein (CRP) activates dendritic cells (DCs), promoting T-cell responses implicated in cardiovascular disease (CVD). This suggests CRP influences DC function in atherosclerosis, impacting atherogenesis.
Area of Science:
- Immunology
- Cardiovascular Research
- Cell Biology
Background:
- C-reactive protein (CRP) is a marker for cardiovascular disease (CVD).
- Dendritic cells (DCs) are implicated in the development of atherosclerosis.
- A pathogenic role for CRP in atherosclerosis is increasingly recognized.
Purpose of the Study:
- To investigate the effect of CRP on dendritic cell (DC) function.
- To determine if CRP modulates DC activation and their ability to stimulate T-cells.
Main Methods:
- Human monocyte-derived DCs were cultured with varying concentrations of CRP.
- DC activation markers (CD40, CD80, CD83, CCR7, CD86, HLA-DR) were measured by flow cytometry.
- T-cell proliferation and interferon-gamma (IFN-γ) secretion were assessed after co-culture with CRP-pulsed DCs.
Main Results:
- CRP exposure led to increased DC activation markers, including CD40 and CD80.
- DC activation by CRP was concentration-dependent and observed from 2 μg/mL.
- CRP-stimulated DCs enhanced T-cell proliferation and IFN-γ secretion, indicating immune activation.
- Immunohistochemistry confirmed CRP and DC co-localization in human atherosclerotic lesions.
Conclusions:
- CRP can modulate dendritic cell function, promoting an immune response.
- These findings suggest a direct role for CRP in the inflammatory processes of atherogenesis.
- CRP's influence on DCs may contribute to cardiovascular disease progression.
Objective:
Recent studies proposed a pathogenic role for C-reactive protein (CRP), an independent predictor of cardiovascular disease (CVD), in atherosclerosis. Therefore, we tested whether CRP may modulate dendritic cell (DC) function, because these professional antigen-presenting cells have been implicated in atherogenesis.
Methods And Results:
Human monocyte-derived immature DCs were cultured with human CRP (0 to 60 microg/mL) for 24 hours. Thereafter, activation markers were measured by flow-cytometry and DCs were cocultured with CFSE-labeled lymphocytes to measure T-cell proliferation and interferon (IFN)-gamma secretion after 8 days. Exposure to 60 microg/mL CRP (n=5) induced an activated cell morphology and significant (CD40 increase MFI 5.23+/-0.28, P<0.01 paired t test; CD80 6.18+/-0.51, P<0.01) to modest (CD83 1.38+/-0.17, P<0.05, CCR7 1.60+/-0.29, P=0.05) upregulation of DC activation markers. The expression of CD86 and HLA-DR was high, but not affected. T-lymphocytes incubated with CRP-pulsed DCs displayed increased IFN-gamma secretion and proliferation (P<0.001). DC activation was concentration-dependent and detected from 2 mug/mL CRP; the maximum effect was equivalent to that seen with 0.1 microg/mL lipopolysaccharide (LPS). Polymyxin B abolished the LPS response, without influencing CRP effects. Finally, immunohistochemistry could demonstrate DC/CRP colocalization in human atherosclerotic lesions.
Conclusions:
These findings suggest that CRP in plaques or found circulating in CVD patients can influence DC function during atherogenesis.
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