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Updated: Sep 20, 2025

Quantitation of Endothelial Cell Adhesiveness In Vitro
Published on: June 18, 2015
Endothelial ACKR3 drives atherosclerosis by promoting immune cell adhesion to vascular endothelium
Selin Gencer1, Yvonne Döring2,3,4, Yvonne Jansen1
1Institute for Cardiovascular Prevention (IPEK), Ludwig-Maximilians University Munich, Pettenkoferstr 9, 80336, Munich, Germany.
Insights
Arterial endothelial ACKR3 promotes atherosclerosis by increasing immune cell adhesion via MAPK and NF-kB pathways. Targeting this receptor may offer new therapeutic strategies for cardiovascular disease.
Area of Science:
- Cardiovascular Research
- Immunology
- Molecular Biology
Background:
- Atherosclerosis, a major cause of cardiovascular disease, involves arterial plaque formation and inflammation.
- Current treatments leave significant residual risk, necessitating novel anti-inflammatory therapeutic targets.
- The chemokine axis CXCL12-CXCR4 is implicated in atherosclerosis, but the role of its high-affinity receptor, ACKR3, remains unclear.
Purpose of the Study:
- To investigate the role of arterial ACKR3 in the development of atherosclerosis.
- To elucidate the molecular mechanisms by which ACKR3 influences vascular inflammation and immune cell interaction.
Main Methods:
- Utilized western diet-fed Apoe-/- mice with ACKR3 deficiency in arterial endothelial and smooth muscle cells.
- Employed ACKR3 silencing in human coronary artery endothelial cells to assess adhesion molecule expression and pathway activation.
- Analyzed immune cell adhesion, invasion, and inflammatory pathway mediators (MAPK, NF-kB).
Main Results:
- Arterial endothelial ACKR3 deficiency significantly attenuated atherosclerosis, reducing immune cell adhesion and invasion.
- ACKR3 silencing in human endothelial cells decreased adhesion molecules and downregulated MAPK/ERK1/2 and NF-kB p65 phosphorylation.
- Endothelial cells in ACKR3-deficient mice showed reduced phospho-NF-kB p65 expression.
- Smooth muscle cell-specific or hematopoietic ACKR3 deficiency did not affect atherosclerosis.
Conclusions:
- Arterial endothelial ACKR3 is a key driver of atherosclerosis by promoting endothelium-immune cell adhesion.
- ACKR3 likely mediates these effects through inflammatory MAPK and NF-kB signaling pathways.
- Targeting arterial endothelial ACKR3 presents a potential therapeutic strategy for atherosclerosis.
Abstract:
Atherosclerosis is the foundation of potentially fatal cardiovascular diseases and it is characterized by plaque formation in large arteries. Current treatments aimed at reducing atherosclerotic risk factors still allow room for a large residual risk; therefore, novel therapeutic candidates targeting inflammation are needed. The endothelium is the starting point of vascular inflammation underlying atherosclerosis and we could previously demonstrate that the chemokine axis CXCL12-CXCR4 plays an important role in disease development. However, the role of ACKR3, the alternative and higher affinity receptor for CXCL12 remained to be elucidated. We studied the role of arterial ACKR3 in atherosclerosis using western diet-fed Apoe-/- mice lacking Ackr3 in arterial endothelial as well as smooth muscle cells. We show for the first time that arterial endothelial deficiency of ACKR3 attenuates atherosclerosis as a result of diminished arterial adhesion as well as invasion of immune cells. ACKR3 silencing in inflamed human coronary artery endothelial cells decreased adhesion molecule expression, establishing an initial human validation of ACKR3's role in endothelial adhesion. Concomitantly, ACKR3 silencing downregulated key mediators in the MAPK pathway, such as ERK1/2, as well as the phosphorylation of the NF-kB p65 subunit. Endothelial cells in atherosclerotic lesions also revealed decreased phospho-NF-kB p65 expression in ACKR3-deficient mice. Lack of smooth muscle cell-specific as well as hematopoietic ACKR3 did not impact atherosclerosis in mice. Collectively, our findings indicate that arterial endothelial ACKR3 fuels atherosclerosis by mediating endothelium-immune cell adhesion, most likely through inflammatory MAPK and NF-kB pathways.
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