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Updated: Jul 17, 2026

Isolation, Characterization, and Purification of Macrophages from Tissues Affected by Obesity-related Inflammation
Published on: April 3, 2017
Selective clearance of macrophages in atherosclerotic plaques by autophagy
Stefan Verheye1, Wim Martinet, Mark M Kockx
1Antwerp Cardiovascular Institute Middelheim, Antwerp, Belgium. stefan.verheye@pandora.be
Objectives:
The purpose of this study was to investigate whether stent-based delivery of an inhibitor of mammalian target of rapamycin (mTOR) can selectively clear macrophages in rabbit atherosclerotic plaques.
Background:
Current pharmacologic approaches to stabilize atherosclerotic plaques have only partially reduced the incidence of acute coronary syndromes and sudden death. Macrophages play a pivotal role in plaque destabilization, whereas smooth muscle cells (SMC) promote plaque stability.
Methods:
Stents eluting the mTOR inhibitor everolimus were implanted in atherosclerotic arteries of cholesterol-fed rabbits. In addition, in vitro experiments using explanted atherosclerotic segments and cultured macrophages as well as SMC were performed.
Results:
Stents eluting everolimus led to a marked reduction in macrophage content without altering the amount of SMC compared with polymer control stents. In vitro studies showed that everolimus treatment induced inhibition of translation in both cultured macrophages and SMC. However, cell death occurred only in macrophages and was characterized by bulk degradation of long-lived proteins, processing of microtubule-associated protein light chain 3, and cytoplasmic vacuolization, which are all markers of autophagy. Everolimus-induced autophagy was mediated by mTOR inhibition, because cell viability was not affected using tacrolimus, an mTOR-independent everolimus analog. Moreover, mTOR gene silencing was associated with selective induction of macrophage cell death. Autophagic macrophage cell death was confirmed by transmission electron microscopy both in cultured cells and in atherosclerotic explants.
Conclusions:
Stent-based delivery of everolimus selectively cleared macrophages in rabbit atherosclerotic plaques by autophagy, an mTOR inhibition-dependent and novel mechanism to induce cell death in mammalian cells.
Insights
Stent-based delivery of an mTOR inhibitor selectively eliminated macrophages in atherosclerotic plaques. This novel approach utilizes autophagy, an mTOR inhibition-dependent mechanism, to induce cell death in macrophages, offering a new strategy for plaque stabilization.
Area of Science:
- Cardiovascular Research
- Cell Biology
- Pharmacology
Background:
- Atherosclerotic plaques pose risks for acute coronary syndromes.
- Macrophages are key drivers of plaque instability, while smooth muscle cells (SMC) promote stability.
- Current treatments offer only partial protection against cardiovascular events.
Purpose of the Study:
- To determine if stent-based delivery of a mammalian target of rapamycin (mTOR) inhibitor can selectively remove macrophages from atherosclerotic plaques.
- To investigate the mechanism of macrophage clearance induced by mTOR inhibitors.
- To assess the impact on smooth muscle cells.
Main Methods:
- Implantation of everolimus-eluting stents in rabbit atherosclerotic arteries.
- In vitro studies using explanted atherosclerotic tissues, cultured macrophages, and SMC.
- Analysis of cell death markers, protein translation, and autophagy.
Main Results:
- Everolimus-eluting stents significantly reduced macrophage content without affecting SMC levels.
- In vitro, everolimus induced autophagy and selective cell death in macrophages, not SMC.
- Macrophage cell death was confirmed as autophagy-dependent and mediated by mTOR inhibition.
Conclusions:
- Stent-based everolimus delivery selectively clears macrophages in atherosclerotic plaques via autophagy.
- This represents a novel, mTOR inhibition-dependent mechanism for inducing cell death in mammalian cells.
- This strategy holds potential for stabilizing atherosclerotic plaques by targeting macrophages.
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