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Updated: Feb 11, 2026

Surgical Technique for the Implantation of Tissue Engineered Vascular Grafts and Subsequent In Vivo Monitoring
Published on: April 3, 2015
Current Strategies for the Manufacture of Small Size Tissue Engineering Vascular Grafts
Michele Carrabba1, Paolo Madeddu1
1School of Clinical Sciences, Bristol Heart Institute, University of Bristol, Bristol, United Kingdom.
Insights
Tissue-engineered vascular grafts (TEVGs) offer a promising solution for occlusive arterial disease, addressing limitations of current bypass methods. Research explores scaffold-based and self-assembled techniques for TEVG development and clinical translation.
Area of Science:
- Biomaterials Science
- Regenerative Medicine
- Vascular Surgery
Background:
- Occlusive arterial diseases like coronary heart disease (CHD) and peripheral arterial disease (PAD) are leading causes of mortality.
- Current revascularization methods (angioplasty, stenting, bypass grafting) have limitations, especially for small-diameter vessels.
- Autologous grafts are limited by availability and invasive harvesting; synthetic grafts show poor patency in small vessels.
Purpose of the Study:
- To review methods for creating tissue-engineered vascular grafts (TEVGs).
- To categorize TEVG manufacturing approaches.
- To highlight progress in translating TEVG technology from research to clinical application.
Main Methods:
- Categorization of TEVG fabrication techniques into scaffold-based (synthetic, natural, hybrid) and self-assembled (cell-sheet, microtissue aggregation, bioprinting).
- Review of research investigating TEVG creation over recent decades.
- Analysis of strategies for clinical translation of TEVG technology.
Main Results:
- Scaffold-based methods utilize various materials to create graft structures.
- Self-assembled methods focus on cell-based construction without traditional scaffolds.
- Both approaches aim to create functional vascular conduits that can grow and remodel in vivo.
Conclusions:
- Tissue-engineered vascular grafts (TEVGs) represent a potential future solution for vascular reconstruction.
- Diverse manufacturing strategies are being explored to overcome limitations of current grafts.
- Translational efforts are crucial for bringing TEVG technology to clinical practice.
Abstract:
Occlusive arterial disease, including coronary heart disease (CHD) and peripheral arterial disease (PAD), is the main cause of death, with an annual mortality incidence predicted to rise to 23.3 million worldwide by 2030. Current revascularization techniques consist of angioplasty, placement of a stent, or surgical bypass grafting. Autologous vessels, such as the saphenous vein and internal thoracic artery, represent the gold standard grafts for small-diameter vessels. However, they require invasive harvesting and are often unavailable. Synthetic vascular grafts represent an alternative to autologous vessels. These grafts have shown satisfactory long-term results for replacement of large- and medium-diameter arteries, such as the carotid or common femoral artery, but have poor patency rates when applied to small-diameter vessels, such as coronary arteries and arteries below the knee. Considering the limitations of current vascular bypass conduits, a tissue-engineered vascular graft (TEVG) with the ability to grow, remodel, and repair in vivo presents a potential solution for the future of vascular surgery. Here, we review the different methods that research groups have been investigating to create TEVGs in the last decades. We focus on the techniques employed in the manufacturing process of the grafts and categorize the approaches as scaffold-based (synthetic, natural, or hybrid) or self-assembled (cell-sheet, microtissue aggregation and bioprinting). Moreover, we highlight the attempts made so far to translate this new strategy from the bench to the bedside.
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