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Updated: Jun 1, 2026

Quantification of Monocyte Transmigration and Foam Cell Formation from Individuals with Chronic Inflammatory Conditions
Published on: October 17, 2017
Cytokines, macrophage lipid metabolism and foam cells: implications for cardiovascular disease therapy
James E McLaren1, Daryn R Michael, Tim G Ashlin
1Cardiff School of Biosciences, Cardiff University, Museum Avenue, Cardiff CF10 3AX, UK.
Insights
Atherosclerosis, a leading cause of cardiovascular disease, involves macrophages forming cholesterol-rich foam cells. Understanding macrophage foam cell biology is key to developing new therapies targeting this inflammatory process.
Area of Science:
- Immunology
- Cardiovascular Biology
- Cellular Metabolism
Background:
- Atherosclerosis is a major global health issue, driven by chronic inflammation and lipid accumulation in arteries.
- Macrophages play a critical, yet detrimental, role in atherosclerosis by becoming cholesterol-laden foam cells.
Purpose of the Study:
- To explore the role of macrophage cholesterol metabolism in foam cell formation.
- To understand how cytokines influence macrophage function in atherosclerosis.
- To identify potential targets for novel anti-atherosclerosis therapies.
Main Methods:
- Review of current literature on macrophage biology and atherosclerosis.
- Analysis of the mechanisms of cholesterol homeostasis in macrophages.
- Examination of the impact of cytokines on macrophage-driven inflammation.
Main Results:
- Macrophage foam cell formation disrupts normal cholesterol metabolism.
- Cytokines like interferon-γ and interleukin-10 modulate macrophage responses in atherosclerosis.
- Existing therapies, such as statins, indirectly affect these pathways.
Conclusions:
- Macrophage foam cells are central to atherosclerotic plaque development.
- Targeting macrophage cholesterol metabolism offers a promising therapeutic strategy.
- Further research into foam cell biology could lead to effective clinical interventions for cardiovascular disease.
Abstract:
Cardiovascular disease is the biggest killer globally and the principal contributing factor to the pathology is atherosclerosis; a chronic, inflammatory disorder characterized by lipid and cholesterol accumulation and the development of fibrotic plaques within the walls of large and medium arteries. Macrophages are fundamental to the immune response directed to the site of inflammation and their normal, protective function is harnessed, detrimentally, in atherosclerosis. Macrophages contribute to plaque development by internalizing native and modified lipoproteins to convert them into cholesterol-rich foam cells. Foam cells not only help to bridge the innate and adaptive immune response to atherosclerosis but also accumulate to create fatty streaks, which help shape the architecture of advanced plaques. Foam cell formation involves the disruption of normal macrophage cholesterol metabolism, which is governed by a homeostatic mechanism that controls the uptake, intracellular metabolism, and efflux of cholesterol. It has emerged over the last 20 years that an array of cytokines, including interferon-γ, transforming growth factor-β1, interleukin-1β, and interleukin-10, are able to manipulate these processes. Foam cell targeting, anti-inflammatory therapies, such as agonists of nuclear receptors and statins, are known to regulate the actions of pro- and anti-atherogenic cytokines indirectly of their primary pharmacological function. A clear understanding of macrophage foam cell biology will hopefully enable novel foam cell targeting therapies to be developed for use in the clinical intervention of atherosclerosis.
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