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Published on: May 15, 2020
The Role of Extracellular Vesicles in Vein Graft Disease
Georgia R Layton1,2,3, Riyaz Somani1,4, Giovanni Mariscalco2
1College of Life Sciences, University of Leicester, Glenfield Hospital, Leicester LE3 9QP, UK.
Insights
Extracellular vesicles (EVs) play a key role in saphenous vein graft (SVG) failure after coronary artery bypass grafting (CABG). Further research is needed to develop EV-based biomarkers for predicting SVG patency.
Area of Science:
- Cardiovascular Biology
- Biomedical Engineering
- Translational Medicine
Background:
- Coronary artery bypass grafting (CABG) with saphenous vein grafts (SVGs) is common for obstructive atherosclerosis.
- Vein graft disease, including thrombosis, intimal hyperplasia, and atherosclerosis, leads to graft failure and recurrent ischemia.
- Extracellular vesicles (EVs) mediate cell-to-cell communication and influence key processes in vein graft remodeling.
Purpose of the Study:
- To review the role of EVs in SVG pathophysiology.
- To identify EV-associated microRNAs as potential biomarkers for graft failure.
- To discuss therapeutic strategies targeting EV signaling in SVGs.
Main Methods:
- Literature review synthesizing evidence on cell-specific EV contributions (endothelial cells, smooth muscle cells, platelets, macrophages).
- Appraisal of EV-associated microRNAs relevant to graft failure pathways.
- Review of therapeutic strategies modulating EV signaling.
Main Results:
- EVs modulate endothelial dysfunction, vascular smooth muscle cell switching, inflammation, and coagulation, crucial for vein graft remodeling.
- Arterialization forces increase EV release and alter EV cargo, potentially amplifying early graft injury.
- No clinical studies currently evaluate EV biomarkers for SVG patency or predict graft failure.
Conclusions:
- EVs are central to SVG remodeling and failure mechanisms.
- EV-derived microRNAs hold biomarker potential for graft failure.
- Prospective studies linking EV phenotypes and miRNA signatures to graft outcomes are essential for clinical translation.
Abstract:
Coronary artery bypass grafting (CABG) using the autologous saphenous vein (SV) remains widely performed for obstructive atherosclerosis; however, vein graft disease drives recurrent ischaemia through early thrombosis and progressive intimal hyperplasia, and accelerated atherosclerosis developing within the grafts. Extracellular vesicles (EVs) are membrane-bound particles that transfer proteins, lipids, and microRNAs between cells. They modulate endothelial dysfunction, vascular smooth muscle cell phenotypic switching, inflammation, and coagulation, which are core processes in vein graft remodelling. Arterialisation exposes the vein to abrupt rises in shear stress, cyclic stretch, and intraluminal pressure. These forces increase EV release and reshape EV cargo in experimental systems, suggesting a potential mechanism for amplifying early graft injury which warrants direct investigation in vein tissue. This review synthesises current evidence for cell-specific EV contributions from ECs, vascular smooth muscle cells, platelets, and macrophages, and appraises EV-associated microRNAs with biomarker potential relevant to graft failure pathways. We also review therapeutic strategies that may modulate EV signalling including antiplatelet therapy, statins, KCa3.1 inhibition, and pro-reparative mesenchymal stromal cell-derived EVs. No published clinical studies evaluate EV-based biomarkers specifically for saphenous vein graft patency, and none prospectively predict saphenous graft failure. CABG provides a well-defined time zero event that enables longitudinal sampling and risk stratification. Prospective studies linking EV phenotypes and miRNA signatures to imaging-defined graft outcomes are needed to support clinical translation.
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