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Updated: Apr 4, 2026

Procedure for Human Saphenous Veins Ex Vivo Perfusion and External Reinforcement
Published on: October 1, 2014
Human Saphenous Vein Response to Trans-wall Oxygen Gradients in a Novel Ex Vivo Conditioning Platform
Marco Piola1, Francesca Prandi2, Gianfranco Beniamino Fiore3
1Dipartimento di Elettronica, Informazione e Bioingegneria, Politecnico di Milano, P.zza Leonardo da Vinci 32, 20133, Milan, Italy. marco.piola@polimi.it.
Insights
Vein graft disease, a cause of bypass failure, may stem from low oxygen in the vein
Area of Science:
- Vascular biology
- Biomedical engineering
- Cardiovascular research
Background:
- Autologous saphenous veins are standard for coronary artery bypass grafting (CABG).
- Vein graft disease causes progressive graft failure.
- The role of metabolic cues, particularly oxygen gradients, in vein graft disease is poorly understood.
Purpose of the Study:
- To investigate the impact of adventitial hypoxia on vein graft pathophysiology.
- To develop an ex vivo system simulating in vivo oxygen gradients within arterialized veins.
Main Methods:
- Designed an ex vivo culture system with separated luminal and adventitial circuits.
- Integrated a de-oxygenator module to create a trans-wall oxygen gradient (high luminal, low adventitial).
- Cultured veins under bypass-specific conditions versus standard culture.
Main Results:
- Bypass-specific conditions significantly increased proliferation of cells around adventitial vasa vasorum.
- Elevated length density of small and large caliber vasa vasorum was observed.
- Demonstrated a link between adventitial hypoxia and neo-vascularization.
Conclusions:
- Adventitial hypoxia in vein grafts promotes neo-vascularization.
- This neo-vascularization is a potential driver of vein graft disease and restenosis.
- The ex vivo system effectively models relevant physiological conditions for studying vein graft disease.
Abstract:
Autologous saphenous veins are commonly used for the coronary artery bypass grafting even if they are liable to progressive patency reduction, known as 'vein graft disease'. Although several cellular and molecular causes for vein graft disease have been identified using in vivo models, the metabolic cues induced by sudden interruption of vasa vasorum blood supply have remained unexplored. In the present manuscript, we describe the design of an ex vivo culture system allowing the generation of an oxygen gradient between the luminal and the adventitial sides of the vein. This system featured a separation between the inner and the outer vessel culture circuits, and integrated a purpose-developed de-oxygenator module enabling the trans-wall oxygen distribution (high oxygen level at luminal side and low oxygen level at the adventitial side) existing in arterialized veins. Compared with standard cultures the bypass-specific conditions determined a significant increase in the proliferation of cells around adventitial vasa vasorum and an elevation in the length density of small and large caliber vasa vasorum. These results suggest, for the first time, a cause-effect relationship between the vein adventitial hypoxia and a neo-vascularization process, a factor known to predispose the arterialized vein conduits to restenosis.
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