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Updated: Aug 20, 2025

A Human Ex Vivo Atherosclerotic Plaque Model to Study Lesion Biology
Published on: May 6, 2014
The intracellular signaling pathways governing macrophage activation and function in human atherosclerosis
1School of Medicine, Medical Sciences and Nutrition, Institute of Medical Sciences, University of Aberdeen, Aberdeen AB25 2ZD, U.K.
Insights
Macrophages play a dual role in atherosclerosis, a chronic inflammatory disease. Understanding their signals and pathways is key to developing new treatments for preventing and managing this cardiovascular condition.
Area of Science:
- Cardiovascular Biology
- Immunology
- Cell Biology
Background:
- Atherosclerosis is a chronic inflammatory disease involving lipid accumulation and plaque formation in arteries.
- Macrophage accumulation is a hallmark of atherosclerosis, influencing disease activity and plaque stability.
- Macrophages contribute to plaque progression and rupture but also possess functions that can stabilize plaques.
Conclusions:
- Macrophage heterogeneity is a critical determinant of atherosclerotic plaque development and stability.
- Targeting macrophage signaling pathways offers a promising therapeutic strategy for atherosclerosis.
- Further research into the complex interplay of stimuli and signaling is essential for effective pharmacological modulation.
Abstract:
Atherosclerosis is a chronic inflammatory disease characterized by lipid accumulation and plaque formation in arterial vessel walls. Atherosclerotic plaques narrow the arterial lumen to increase the risk of heart attacks, ischemic stroke and peripheral vascular disease, which are major and worldwide health and economic burdens. Macrophage accumulation within plaques is characteristic of all stages of atherosclerosis and their presence is a potential marker of disease activity and plaque stability. Macrophages engulf lipids and modified lipoproteins to form foam cells that express pro-inflammatory and chemotactic effector molecules, stress inducing factors and reactive oxygen species. They control plaque stability and rupture through secretion of metalloproteinases and extracellular matrix degradation. Although macrophages can worsen disease by propagating inflammation, they can stabilize atherosclerotic plaques through tissue remodeling, promoting the formation of a fibrous cap, clearing apoptotic cells to prevent necrotic core formation and through vascular repair. In atherosclerosis, macrophages respond to dyslipidaemia, cytokines, dying cells, metabolic factors, lipids, physical stimuli and epigenetic factors and exhibit heterogeneity in their activation depending on the stimuli they receive. Understanding these signals and the pathways driving macrophage function within developing and established plaques and how they can be pharmacologically modulated, represents a strategy for the prevention and treatment of atherosclerosis. This review focusses on the current understanding of factors controlling macrophage heterogeneity and function in atherosclerosis. Particular attention is given to the macrophage intracellular signaling pathways and transcription factors activated by biochemical and biophysical stimuli within plaques, and how they are integrated to regulate plaque formation and stability.
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