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Updated: Feb 15, 2026

Isolation of Murine Coronary Vascular Smooth Muscle Cells
Published on: May 30, 2016
Vascular smooth muscle cell death, autophagy and senescence in atherosclerosis
Mandy O J Grootaert1, Manon Moulis2, Lynn Roth3
1Division of Cardiovascular Medicine, Department of Medicine, University of Cambridge, Box 110, Addenbrooke's Centre for Clinical Investigation, Addenbrooke's Hospital, Cambridge CB2 0QQ, UK.
Abstract:
In the present review, we describe the causes and consequences of loss of vascular smooth muscle cells (VSMCs) or their function in advanced atherosclerotic plaques and discuss possible mechanisms such as cell death or senescence, and induction of autophagy to promote cell survival. We also highlight the potential use of pharmacological modulators of these processes to limit plaque progression and/or improve plaque stability. VSMCs play a pivotal role in atherogenesis. Loss of VSMCs via initiation of cell death leads to fibrous cap thinning and promotes necrotic core formation and calcification. VSMC apoptosis is induced by pro-inflammatory cytokines, oxidized low density lipoprotein, high levels of nitric oxide and mechanical injury. Apoptotic VSMCs are characterized by a thickened basal lamina surrounding the cytoplasmic remnants of the VSMC. Inefficient clearance of apoptotic VSMCs results in secondary necrosis and subsequent inflammation. A critical determinant in the VSMC stress response and phenotypic switching is autophagy, which is activated by various stimuli, including reactive oxygen and lipid species, cytokines, growth factors and metabolic stress. Successful autophagy stimulates VSMC survival, whereas reduced autophagy promotes age-related changes in the vasculature. Recently, an interesting link between autophagy and VSMC senescence has been uncovered. Defective VSMC autophagy accelerates not only the development of stress-induced premature senescence but also atherogenesis, albeit without worsening plaque stability. VSMC senescence in atherosclerosis is likely a result of replicative senescence and/or stress-induced premature senescence in response to DNA damaging and/or oxidative stress-inducing stimuli. The finding that VSMC senescence can promote atherosclerosis further illustrates that normal, adequate VSMC function is crucial in protecting the vessel wall against atherosclerosis.
Insights
Loss of vascular smooth muscle cells (VSMCs) in atherosclerosis leads to plaque instability. Strategies targeting cell death, autophagy, and senescence may limit disease progression and improve plaque stability.
Area of Science:
- Cardiovascular Biology
- Cellular Mechanisms of Atherosclerosis
Background:
- Vascular smooth muscle cells (VSMCs) are crucial in maintaining blood vessel integrity.
- Loss or dysfunction of VSMCs contributes significantly to the development and progression of advanced atherosclerotic plaques.
Purpose of the Study:
- To review the causes and consequences of VSMC loss and dysfunction in atherosclerosis.
- To explore mechanisms like cell death, autophagy, and senescence influencing VSMC fate.
- To discuss potential pharmacological interventions targeting these processes for plaque stabilization.
Main Methods:
- Review of existing literature on VSMC biology in atherosclerosis.
- Analysis of mechanisms including apoptosis, autophagy, and senescence.
- Discussion of pharmacological modulators of VSMC fate.
Main Results:
- VSMC loss, through apoptosis and secondary necrosis, leads to fibrous cap thinning, necrotic core expansion, and calcification.
- Autophagy plays a dual role, promoting VSMC survival under stress but reduced autophagy accelerates vascular aging.
- Defective autophagy accelerates senescence and atherogenesis, though senescence itself may not worsen plaque stability.
Conclusions:
- VSMC apoptosis, impaired autophagy, and senescence are key drivers of atherosclerotic plaque progression and instability.
- Targeting VSMC death, autophagy, and senescence presents a promising therapeutic avenue for managing atherosclerosis.
- Maintaining normal VSMC function is critical for vascular health and protection against atherosclerosis.
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