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Updated: Jul 16, 2025

Quantitative Analysis of Cellular Composition in Advanced Atherosclerotic Lesions of Smooth Muscle Cell Lineage-Tracing Mice
Published on: February 20, 2019
New Targets in Atherosclerosis: Vascular Smooth Muscle Cell Plasticity and Macrophage Polarity
Michael Hutton1, Madeleine Frazer1, Alexander Lin2
1Atherosclerosis and Vascular Remodeling Group, Heart Research Institute, Sydney, New South Wales, Australia.
Purpose:
Despite an increase in treatment options, and substantial reductions in cardiovascular mortality over the past half-century, atherosclerosis remains the most prevalent cause of premature mortality worldwide. The development of innovative new therapies is crucial to further minimize atherosclerosis-related deaths. The diverse array of cell phenotypes derived from vascular smooth muscle cells (SMCs) and macrophages within atherosclerotic plaques are increasingly becoming recognized for their beneficial and detrimental roles in plaque stability and disease burden. This review explores how contemporary transcriptomics and fate-mapping studies have revealed vascular cell plasticity as a relatively unexplored target for therapeutic intervention.
Methods:
Recent literature for this narrative review was obtained by searching electronic databases (ie, Google Scholar, PubMed). Additional studies were sourced from reference lists and the authors' personal databases.
Findings:
The lipid-rich and inflammatory plaque milieu induces SMC phenotypic switching to both beneficial and detrimental phenotypes. Likewise, macrophage heterogeneity increases with disease burden to a variety of pro-inflammatory and anti-inflammatory activation states. These vascular cell phenotypes are determinants of plaque structure stability, and it is therefore highly likely that they influence clinical outcomes. Development of clinical treatments targeting deleterious phenotypes or promoting pro-healing phenotypes remains in its infancy. However, existing treatments (statins) have shown beneficial effects toward macrophage polarization, providing a rationale for more targeted approaches. In contrast, beneficial SMC phenotypic modulation with these pharmacologic agents has yet to be achieved. The range of modulated vascular cell phenotypes provides a multitude of novel targets and the potential to reduce future adverse events.
Implications:
Vascular cell phenotypic heterogeneity must continue to be explored to lower cardiovascular events in the future. The rapidly increasing weight of evidence surrounding the role of SMC plasticity and macrophage polarity in plaque vulnerability provides a strong foundation upon which development of new therapeutics must follow. This approach may prove to be crucial in reducing cardiovascular events and improving patient benefit in the future.
Insights
Atherosclerosis remains a leading cause of death. Targeting vascular cell plasticity in smooth muscle cells (SMCs) and macrophages offers new therapeutic avenues to reduce cardiovascular events.
Area of Science:
- Cardiovascular Research
- Cell Biology
- Translational Medicine
Background:
- Atherosclerosis is the primary cause of premature death globally, despite advances in treatment.
- Innovative therapies are essential to further reduce atherosclerosis-related mortality.
- Vascular cell phenotypes within plaques play critical roles in disease progression.
Purpose of the Study:
- To explore vascular cell plasticity as a therapeutic target for atherosclerosis.
- To review how transcriptomics and fate-mapping studies illuminate cell phenotypes in plaque stability.
- To identify novel therapeutic strategies based on vascular cell heterogeneity.
Main Methods:
- A narrative review of recent literature.
- Searches conducted in electronic databases (Google Scholar, PubMed).
- Inclusion of studies from reference lists and author databases.
Main Results:
- SMCs and macrophages exhibit diverse phenotypes influencing plaque stability and disease burden.
- Inflammatory environments drive SMC phenotypic switching and macrophage polarization.
- Existing treatments like statins show effects on macrophage polarization, suggesting targeted approaches.
Conclusions:
- Vascular cell phenotypic heterogeneity is a crucial area for future cardiovascular event reduction.
- SMC plasticity and macrophage polarity offer a strong foundation for developing new atherosclerosis therapeutics.
- Targeting these cell phenotypes holds potential for improved patient outcomes and reduced adverse events.
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