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Updated: Aug 8, 2026

LDL Cholesterol Uptake Assay Using Live Cell Imaging Analysis with Cell Health Monitoring
Published on: November 17, 2018
Scavenger receptors in atherosclerosis: beyond lipid uptake
Kathryn J Moore1, Mason W Freeman
1Lipid Metabolism Unit, GRJ1328, Massachusetts General Hospital, Harvard Medical School, 55 Fruit St, Boston, MA 02114, USA. kmoore@molbio.mgh.harvard.edu
Insights
Scavenger receptors play a complex role in atherosclerosis, influencing both lipid accumulation and inflammation. Recent research reveals their involvement in cell clearance and pathogen recognition, challenging the view of them as solely proatherogenic.
Area of Science:
- Cardiovascular Biology
- Immunology
- Molecular Medicine
Background:
- Atherosclerotic vascular disease is linked to lipid deposition in artery walls.
- Macrophages utilize scavenger receptors to internalize modified low-density lipoproteins (LDLs), leading to cholesterol accumulation and foam cell formation.
- This lipid uptake is traditionally viewed as a key initiating event in atherosclerosis pathogenesis.
Purpose of the Study:
- To review recent advances in understanding scavenger receptor function in atherosclerosis.
- To explore the multifaceted roles of scavenger receptors beyond modified lipoprotein uptake.
- To examine their impact on lipid metabolism, inflammation, and immune responses within the artery wall.
Main Methods:
- Literature review focusing on recent studies of scavenger receptor regulation and signaling.
- Analysis of scavenger receptor roles in sterile inflammation and infection.
- Investigation of pathways influencing lipid accumulation and inflammatory balance in atherosclerosis.
Main Results:
- Scavenger receptors mediate modified LDL uptake, contributing to foam cell formation.
- Beyond lipid uptake, scavenger receptors regulate apoptotic cell clearance and signal transduction.
- They also act as pattern recognition receptors, influencing inflammatory and anti-inflammatory responses.
Conclusions:
- The role of scavenger receptors in atherogenesis is more complex than previously thought.
- Their functions in cell clearance and pathogen recognition impact the inflammatory milieu.
- Understanding these diverse roles is crucial for developing therapeutic strategies for atherosclerosis.
Abstract:
Atherosclerotic vascular disease arises as a consequence of the deposition and retention of serum lipoproteins in the artery wall. Macrophages in lesions have been shown to express > or = 6 structurally different scavenger receptors for uptake of modified forms of low-density lipoproteins (LDLs) that promote the cellular accumulation of cholesterol. Because cholesterol-laden macrophage foam cells are the primary component of the fatty streak, the earliest atherosclerotic lesion, lipid uptake by these pathways has long been considered a requisite and initiating event in the pathogenesis of atherosclerosis. Although the removal of proinflammatory modified LDLs from the artery wall via scavenger receptors would seem beneficial, the pathways distal to scavenger receptor uptake that metabolize the modified lipoproteins appear to become overwhelmed, leading to the accumulation of cholesterol-laden macrophages and establishment of a chronic inflammatory setting. These observations have led to the current dogma concerning scavenger receptors, which is that they are proatherogenic molecules. However, recent studies suggest that the effects of scavenger receptors on atherogenesis may be more complex. In addition to modified lipoprotein uptake, these proteins are now known to regulate apoptotic cell clearance, initiate signal transduction, and serve as pattern recognition receptors for pathogens, activities that may contribute both to proinflammatory and anti-inflammatory forces regulating atherogenesis. In this review, we focus on recent advances in our knowledge of scavenger receptor regulation and signal transduction, their roles in sterile inflammation and infection, and the potential impact of these pathways in regulating the balance of lipid accumulation and inflammation in the artery wall.
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