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Evaluation of the Storage Stability of Extracellular Vesicles
Published on: May 22, 2019
Extracellular vesicles in atherosclerotic cardiovascular disease: mechanisms and therapeutic implications
Nicolas Amabile1,2, Elena Aikawa3,4, Françoise Dignat-George5,6
1Department of interventional Cardiology, Institut Cardiovasculaire Paris Sud, 6 avenue du Noyer Lambert, 91300 Massy, France.
Insights
Extracellular vesicles (EVs) are key in cardiovascular disease. These cell-derived vesicles drive atherosclerosis inflammation, plaque instability, and vascular calcification, offering potential therapeutic targets and biomarkers.
Area of Science:
- Cardiovascular Biology
- Cellular and Molecular Medicine
- Biomaterials Science
Background:
- Extracellular vesicles (EVs) are critical mediators of intercellular communication in cardiovascular pathology.
- In atherosclerosis, EVs from various cell types (endothelial cells, leukocytes, platelets, erythrocytes, VSMCs) promote arterial inflammation and lesion development.
- EVs contribute to plaque maturation, macrophage foam cell formation, VSMC phenotypic switching, and extracellular matrix remodeling.
Purpose of the Study:
- To elucidate the multifaceted roles of extracellular vesicles (EVs) in the initiation, progression, and complications of atherosclerosis.
- To highlight the involvement of EVs in key pathological processes including inflammation, plaque instability, and vascular calcification.
- To explore the potential of EVs as diagnostic biomarkers and therapeutic targets for atherosclerotic disease.
Main Methods:
- Review and synthesis of current literature on extracellular vesicle (EV) function in atherosclerosis.
- Analysis of EV cargo (proteins, microRNAs, lipids) and their impact on cellular processes.
- Examination of EV involvement in vascular calcification and plaque instability mechanisms.
Main Results:
- Endothelial-derived EVs promote inflammation and endothelial dysfunction.
- Platelet- and leukocyte-derived EVs amplify inflammatory responses and thrombosis.
- EVs contribute to VSMC phenotypic changes, foam cell formation, and vascular calcification, impacting plaque stability.
- EVs facilitate hydroxyapatite deposition in vascular calcification.
Conclusions:
- Extracellular vesicles (EVs) are pivotal in driving atherosclerosis progression and complications.
- EVs represent promising biomarkers for monitoring atherosclerosis and potential targets for novel therapeutic strategies.
- Modulating EV activity or utilizing EV-based delivery systems offers innovative approaches for treating atherosclerotic disease.
Abstract:
Extracellular vesicles (EVs) have emerged as central regulators of intercellular communication in cardiovascular pathology. In atherosclerosis, EVs derived from endothelial, leukocytes, platelets, erythrocytes, and vascular smooth muscle cells (VSMCs) actively participate in the initiation and progression of arterial wall inflammation. Endothelial-derived EVs can carry pro-inflammatory proteins and microRNAs that impair endothelial function, promote leukocyte adhesion, and enhance oxidative stress, thereby facilitating early lesion formation. Platelet- and leukocyte-derived EVs further amplify these processes by stimulating monocyte recruitment, cytokine release, and thrombotic signalling within the developing plaque. As atherosclerotic lesions mature, EVs contribute to key cellular phenotypes, including macrophage foam cell formation and VSMC switching towards synthetic or osteogenic states. These vesicles transport bioactive lipids, enzymes, and nucleic acids that influence cholesterol handling, extracellular matrix remodelling, and apoptotic signalling, ultimately contributing to plaque instability. EVs are also critical drivers of vascular calcification, a hallmark of advanced atherosclerosis. VSMC- and macrophage-derived EVs can serve as nucleation sites for hydroxyapatite deposition, particularly when enriched with phosphatidylserine, annexins, or calcification-regulatory microRNAs. Dysregulated mineral metabolism, oxidative stress, and inflammation further modify EV cargo in ways that favour calcifying microenvironments. As these microcalcifications coalesce, they increase arterial stiffness but also contribute to plaque instability. Given their accessibility in circulation and their mechanistic involvement, EVs offer promising opportunities as biomarkers for monitoring atherosclerosis development, as well as therapeutic targets. Modulating EV release, modifying their composition, or engineering EV-based delivery systems represents an innovative frontier for future therapeutic strategies in atherosclerotic disease.
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