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Metabolic Characterization of Polarized M1 and M2 Bone Marrow-derived Macrophages Using Real-time Extracellular Flux Analysis
Published on: November 28, 2015
Macrophage polarization and metabolism in atherosclerosis
Pengbo Hou1,2, Jiankai Fang2, Zhanhong Liu1,2
1Department of Experimental Medicine, TOR, University of Rome Tor Vergata, Rome, Italy.
Insights
Macrophages are key players in atherosclerosis, a condition causing plaque buildup in arteries. Understanding their diverse roles and metabolic changes offers new avenues for treating heart attack and stroke risks.
Area of Science:
- Cardiovascular Biology
- Immunology
- Cellular Metabolism
Background:
- Atherosclerosis is a chronic inflammatory vascular disease driven by lipid deposition and plaque formation.
- Plaque progression involves complex cellular interactions, particularly the multifaceted roles of macrophages.
- Macrophage heterogeneity and plasticity significantly influence plaque microenvironment and disease outcomes.
Purpose of the Study:
- To review the origin, diversity, metabolic shifts, and functions of macrophages in atherosclerosis.
- To explore macrophage interactions with other cells, especially T cells, within atherosclerotic plaques.
- To highlight the therapeutic potential of targeting macrophage pathways for precision medicine.
Main Methods:
- Literature review focusing on macrophage biology in atherosclerosis.
- Analysis of cellular and molecular mechanisms driving plaque development.
- Synthesis of current research on macrophage phenotypes and metabolic states.
Main Results:
- Macrophages exhibit significant heterogeneity and plasticity, influencing lipid accumulation, inflammation, and cell death within plaques.
- Macrophage metabolic and functional states dictate atherosclerotic progression or regression.
- Interactions between macrophages and T cells are critical in modulating the inflammatory response.
Conclusions:
- Targeting macrophage polarization pathways presents promising therapeutic strategies for atherosclerosis.
- Further understanding of macrophage biology in plaques can optimize clinical treatments.
- Precision medicine approaches targeting macrophages may reduce risks of heart attack and stroke.
Abstract:
Atherosclerosis is a chronic inflammatory disease characterized by the accumulation of fatty deposits in the inner walls of vessels. These plaques restrict blood flow and lead to complications such as heart attack or stroke. The development of atherosclerosis is influenced by a variety of factors, including age, genetics, lifestyle, and underlying health conditions such as high blood pressure or diabetes. Atherosclerotic plaques in stable form are characterized by slow growth, which leads to luminal stenosis, with low embolic potential or in unstable form, which contributes to high risk for thrombotic and embolic complications with rapid clinical onset. In this complex scenario of atherosclerosis, macrophages participate in the whole process, including the initiation, growth and eventually rupture and wound healing stages of artery plaque formation. Macrophages in plaques exhibit high heterogeneity and plasticity, which affect the evolving plaque microenvironment, e.g., leading to excessive lipid accumulation, cytokine hyperactivation, hypoxia, apoptosis and necroptosis. The metabolic and functional transitions of plaque macrophages in response to plaque microenvironmental factors not only influence ongoing and imminent inflammatory responses within the lesions but also directly dictate atherosclerotic progression or regression. In this review, we discuss the origin of macrophages within plaques, their phenotypic diversity, metabolic shifts, and fate and the roles they play in the dynamic progression of atherosclerosis. It also describes how macrophages interact with other plaque cells, particularly T cells. Ultimately, targeting pathways involved in macrophage polarization may lead to innovative and promising approaches for precision medicine. Further insights into the landscape and biological features of macrophages within atherosclerotic plaques may offer valuable information for optimizing future clinical treatment for atherosclerosis by targeting macrophages.
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