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Updated: May 29, 2026

Culture of Macrophage Colony-stimulating Factor Differentiated Human Monocyte-derived Macrophages
Published on: June 30, 2016
Vav protein guanine nucleotide exchange factor regulates CD36 protein-mediated macrophage foam cell formation via
S Ohidar Rahaman1, Gang Zhou1, Roy L Silverstein2
1Department of Cell Biology, Lerner Research Institute, Cleveland Clinic, Cleveland, Ohio 44195.
Insights
Vav proteins regulate foam cell formation by controlling calcium signals and dynamin 2 activity in macrophages. This pathway is crucial for CD36-mediated uptake of oxidized LDL, offering new therapeutic targets for atherosclerosis.
Area of Science:
- Cardiovascular Biology
- Cellular Signaling
- Immunology
Background:
- Atherosclerosis involves lipid accumulation in macrophages, forming foam cells.
- CD36 scavenger receptor mediates oxidized LDL uptake and foam cell formation.
- Vav proteins are implicated in CD36-dependent oxidized LDL uptake.
Purpose of the Study:
- To elucidate the mechanisms by which Vav proteins regulate CD36-dependent foam cell formation.
- To identify key signaling molecules in the Vav-mediated pathway.
Main Methods:
- Utilized mouse macrophages and oxidized LDL (oxLDL) stimulation.
- Investigated calcium signaling, phospholipase C-γ (PLC-γ) activity, and dynamin 2 function.
- Employed siRNA for gene knockdown and immunofluorescence microscopy.
Main Results:
- A Vav-dynamin signaling axis critically regulates calcium signals in response to oxLDL.
- Inhibition of intracellular Ca(2+) or PLC-γ significantly reduced Vav activation and foam cell formation.
- Dynamin 2 knockdown or inhibition blocked oxLDL uptake and foam cell formation.
- Vav1 and dynamin 2 colocalized with internalized oxLDL; dynamin 2 activation was impaired in Vav-deficient cells.
Conclusions:
- Vav proteins regulate oxLDL uptake and foam cell formation through calcium- and dynamin 2-dependent pathways.
- Identified novel components of the CD36 signaling pathway.
- Vav proteins and associated signaling molecules represent potential therapeutic targets for atherosclerosis.
Abstract:
Atherosclerosis, a chronic inflammatory disease, results in part from the accumulation of modified lipoproteins in the arterial wall and formation of lipid-laden macrophages, known as "foam cells." Recently, we reported that CD36, a scavenger receptor, contributes to activation of Vav-family guanine nucleotide exchange factors by oxidatively modified LDL in macrophages. We also discovered that CD36-dependent uptake of oxidized LDL (oxLDL) in vitro and foam cell formation in vitro and in vivo was significantly reduced in macrophages deficient of Vav proteins. The goal of the present study was to identify the mechanisms by which Vav proteins regulate CD36-dependent foam cell formation. We now show that a Vav-dynamin signaling axis plays a critical role in generating calcium signals in mouse macrophages exposed to CD36-specific oxidized phospholipid ligands. Chelation of intracellular Ca(2+) or inhibition of phospholipase C-γ (PLC-γ) inhibited Vav activation (85 and 70%, respectively, compared with vehicle control) and reduced foam cell formation (approximately 75%). Knockdown of expression by siRNA or inhibition of GTPase activity of dynamin 2, a Vav-interacting protein involved in endocytic vesicle fission, significantly blocked oxLDL uptake and inhibited foam cell formation. Immunofluorescence microscopy studies showed that Vav1 and dynamin 2 colocalized with internalized oxLDL in macrophages and that activation and mobilization of dynamin 2 by oxLDL was impaired in vav null cells. These studies identified previously unknown components of the CD36 signaling pathway, demonstrating that Vav proteins regulate oxLDL uptake and foam cell formation via calcium- and dynamin 2-dependent processes and thus represent novel therapeutic targets for atherosclerosis.
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