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Updated: Jul 16, 2026

Isolation of Primary Patient-specific Aortic Smooth Muscle Cells and Semiquantitative Real-time Contraction Measurements In Vitro
Published on: February 15, 2022
Matrix metalloproteinases: influence on smooth muscle cells and atherosclerotic plaque stability
1University of Bristol, Bristol Heart Institute, Level 7, Bristol Royal Infirmary, Marlborough Street, Bristol, BS2 8HW, UK. jason.l.johnson@bris.ac.uk
Abstract:
Atherosclerotic plaque rupture, with subsequent occlusive thrombosis, is the underlying cause of most cases of sudden cardiac death. Matrix metalloproteinases (MMPs) are thought to mediate the progression of stable atherosclerotic lesions to an unstable phenotype that is prone to rupture through the destruction of strength-giving extracellular matrix (ECM) proteins. Smooth muscle cells secrete and deposit ECM proteins and are, therefore, considered protective against atherosclerotic plaque destabilization. However, similar to inflammatory cells (e.g., macrophages), smooth muscle cells release numerous MMPs that are capable of digesting ECM proteins. Thus, the interaction of smooth muscle cells and MMPs in atherosclerotic plaques is complex and not fully understood. Recently, research into the roles of MMPs and their endogenous inhibitors (tissue inhibitors of metalloproteinases), and their effects on smooth muscle behavior during plaque destabilization has been aided by the development of reproducible animal models of plaque instability. A plethora of studies has demonstrated that MMPs directly modulate smooth muscle behavior with both beneficial and deleterious effects on atherosclerotic plaque stability, in addition to their canonical effects on ECM remodeling. Consequently, broad-spectrum MMP inhibition may inhibit plaque-stabilizing mechanisms, such as smooth muscle cell growth, while conversely retarding ECM destruction and subsequent rupture. Hence the development of selective MMP inhibitors, that spare inhibitory effects on smooth muscle cell function, may be useful therapies to prevent plaque rupture and in this regard MMP-12 appears to be a particularly attractive target.
Insights
Matrix metalloproteinases (MMPs) play a complex role in atherosclerotic plaque stability. Targeting specific MMPs, like MMP-12, may prevent plaque rupture and sudden cardiac death by preserving smooth muscle cell function.
Area of Science:
- Cardiovascular Biology
- Biochemistry
- Pathology
Background:
- Atherosclerotic plaque rupture causes sudden cardiac death.
- Matrix metalloproteinases (MMPs) are implicated in plaque destabilization via extracellular matrix (ECM) degradation.
- Smooth muscle cells (SMCs) have a complex role, secreting ECM but also releasing MMPs.
Purpose of the Study:
- To elucidate the intricate roles of MMPs and their inhibitors in SMC behavior during atherosclerotic plaque destabilization.
- To explore the potential of targeted MMP inhibition as a therapeutic strategy against plaque rupture.
Main Methods:
- Utilized reproducible animal models of plaque instability.
- Reviewed extensive studies on MMPs, tissue inhibitors of metalloproteinases (TIMPs), and their effects on SMCs and ECM.
- Analyzed the dual effects of MMPs on SMC function and ECM remodeling.
Main Results:
- MMPs exert both beneficial and detrimental effects on atherosclerotic plaque stability.
- Broad-spectrum MMP inhibition may hinder protective SMC functions while reducing ECM degradation.
- MMP-12 emerges as a promising therapeutic target due to its specific role.
Conclusions:
- The interaction between SMCs and MMPs in atherosclerotic plaques is complex and critical for plaque stability.
- Selective MMP inhibition, sparing beneficial SMC effects, holds therapeutic potential for preventing plaque rupture.
- MMP-12 is a particularly attractive target for developing novel anti-rupture therapies.
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