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Updated: Mar 8, 2026

Experimental Analysis of Apoptotic Thymocyte Engulfment by Macrophages
Published on: May 24, 2019
The walking dead: macrophage inflammation and death in atherosclerosis
Mary M Kavurma1, Katey J Rayner, Denuja Karunakaran
1aHeart Research Institute, Sydney, New South Wales, Australia bCardiometabolic microRNA Laboratory, University of Ottawa Heart Institute, Ottawa, Ontario, Canada.
Purpose Of Review:
To highlight recent studies that describe novel inflammatory and signaling mechanisms that regulate macrophage death in atherosclerosis.
Recent Findings:
Macrophages contribute to all stages of atherosclerosis. The traditional dogma states that in homeostatic conditions, macrophages undergo apoptosis and are efficiently phagocytosed to be cleared by a process called efferocytosis. In advanced atherosclerosis, however, defective efferocytosis results in secondary necrosis of these uncleared apoptotic cells, which ultimately contributes to the formation of the characteristic necrotic core and the vulnerable plaque. Here, we outline the different types of lesional macrophage death: apoptosis, autophagic and the newly defined necroptosis (i.e. a type of programmed necrosis). Recent discoveries demonstrate that macrophage necroptosis directly contributes to necrotic core formation and plaque instability. Further, promoting the resolution of inflammation using preresolving mediators has been shown to enhance efferocytosis and decrease plaque vulnerability. Finally, the canonical 'don't eat me' signal CD47 has recently been described as playing an important role in atherosclerotic lesion progression by impairing efficient efferocytosis. Although we have made significant strides in improving our understanding of cell death and clearance mechanisms in atherosclerosis, there still remains unanswered questions as to how these pathways can be harnessed using therapeutics to promote lesion regression and disease stability.
Summary:
Improving our understanding of the mechanisms that regulate macrophage death in atherosclerosis, in particular apoptosis, necroptosis and efferocytosis, will provide novel therapeutic opportunities to resolve atherosclerosis and promote plaque stability.
Insights
Understanding macrophage death, including apoptosis and necroptosis, is key to developing new atherosclerosis treatments. Enhancing efferocytosis can reduce plaque vulnerability and promote healing.
Area of Science:
- Cardiovascular Research
- Immunology
- Cell Biology
Background:
- Macrophages are central to atherosclerosis development and progression.
- Defective efferocytosis leads to necrotic cell accumulation, forming vulnerable plaques.
- Macrophage death pathways, including apoptosis and necroptosis, are critical in lesion evolution.
Purpose of the Study:
- To review recent findings on inflammatory and signaling mechanisms governing macrophage death in atherosclerosis.
- To highlight the roles of apoptosis, necroptosis, and efferocytosis in atherosclerotic plaque development.
- To explore potential therapeutic strategies targeting macrophage death pathways.
Main Methods:
- Review of recent scientific literature on macrophage death in atherosclerosis.
- Analysis of inflammatory and signaling pathways regulating macrophage apoptosis, necroptosis, and efferocytosis.
- Synthesis of findings on the impact of these processes on plaque stability and progression.
Main Results:
- Macrophage necroptosis directly contributes to necrotic core formation and plaque instability.
- Impaired efferocytosis in advanced atherosclerosis leads to secondary necrosis and plaque vulnerability.
- Resolution of inflammation via pro-resolving mediators enhances efferocytosis and reduces plaque vulnerability.
- The 'don't eat me' signal CD47 impairs efferocytosis, promoting atherosclerotic lesion progression.
Conclusions:
- Understanding macrophage death mechanisms (apoptosis, necroptosis, efferocytosis) offers novel therapeutic targets.
- Targeting these pathways can promote atherosclerosis regression and enhance plaque stability.
- Further research is needed to translate these findings into effective clinical treatments.
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