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Development and Functional Characterization of Murine Tolerogenic Dendritic Cells
Published on: May 18, 2018
Calcium Dobesilate Modulates PKCδ-NADPH Oxidase- MAPK-NF-κB Signaling Pathway to Reduce CD14, TLR4, and MMP9
Florence Njau1, Hermann Haller1
1Division of Nephrology, Hannover Medical School, 30625 Hannover, Germany.
Insights
Calcium dobesilate (CaD) reduces inflammation by inhibiting monocyte-to-macrophage differentiation. It suppresses key inflammatory markers and pathways, offering potential for treating atherosclerosis and related conditions.
Area of Science:
- Immunology
- Pharmacology
- Cardiovascular Biology
Background:
- Monocyte-to-macrophage differentiation is crucial in atherosclerosis pathogenesis, releasing inflammatory mediators and oxidative stress molecules.
- Calcium dobesilate (CaD) is known for its vasoactive and angioprotective effects, but its impact on monocytes/macrophages remains unclear.
Purpose of the Study:
- To investigate the anti-inflammatory mechanisms of Calcium dobesilate (CaD) during monocyte-to-macrophage differentiation.
- To explore CaD's effects in in vitro models of sepsis and hyperglycemia.
Main Methods:
- Utilized THP-1 monocytic cell line and primary human macrophages.
- Investigated CaD's effects on CD14, TLR4, MMP9 expression, pro-inflammatory cytokines (IL1β, TNFα, MCP-1), ROS generation, and signaling pathways (PKCδ, MAPK, NOX2/p47phox, NF-κB).
Main Results:
- CaD significantly suppressed CD14, TLR4, and MMP9 expression and activity.
- CaD inhibited pro-inflammatory mediators, ROS generation, and key signaling pathway activations (PKCδ, MAPK, NF-κB).
- CaD demonstrated ROS-scavenging properties, suppressing PKCδ activation.
Conclusions:
- Calcium dobesilate exerts anti-inflammatory effects by downregulating monocyte-to-macrophage differentiation via the PKCδ/NADPH oxidase/ROS/MAPK/NF-κB signaling pathway.
- CaD alleviates metabolic and infectious inflammation, presenting a novel therapeutic mechanism for atherosclerosis.
Abstract:
Monocyte-to-macrophage differentiation results in the secretion of various inflammatory mediators and oxidative stress molecules necessary for atherosclerosis pathogenesis. Consequently, this differentiation represents a potential clinical target in atherosclerosis. Calcium dobesilate (CaD), an established vasoactive and angioprotective drug in experimental models of diabetic microvascular complications reduces oxidative stress and inhibits inflammation via diverse molecular targets; however, its effect on monocytes/macrophages is poorly understood. In this study, we investigated the anti-inflammatory mechanism of CaD during phorbol 12-myristate 13-acetate (PMA)-induced monocyte-to-macrophage differentiation in in vitro models of sepsis (LPS) and hyperglycemia, using THP-1 monocytic cell line. CaD significantly suppressed CD14, TLR4, and MMP9 expression and activity, lowering pro-inflammatory mediators, such as IL1β, TNFα, and MCP-1. The effects of CaD translated through to studies on primary human macrophages. CaD inhibited reactive oxygen species (ROS) generation, PKCδ, MAPK (ERK1/2 and p38) phosphorylation, NOX2/p47phox expression, and membrane translocation. We used hydrogen peroxide (H2O2) to mimic oxidative stress, demonstrating that CaD suppressed PKCδ activation via its ROS-scavenging properties. Taken together, we demonstrate for the first time that CaD suppresses CD14, TLR4, MMP9, and signature pro-inflammatory cytokines, in human macrophages, via the downregulation of PKCδ/NADPH oxidase/ROS/MAPK/NF-κB-dependent signaling pathways. Our data present novel mechanisms of how CaD alleviates metabolic and infectious inflammation.
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