The sustainability of vascular access for hemodialysis is limited by frequent interventions and the inability of synthetic grafts to self-heal. Tissue engineering offers a solution through biodegradable grafts that remodel into autologous tissue. Here we assess electrospun polycarbonate-bis urea (PC-BU) vascular scaffolds (6mm-inner-Ã), reinforced with 3D-printed polycaprolactone coils, in a goat model, and compared them to expanded polytetrafluoroethylene (ePTFE) controls. The tissue-engineered grafts were repeatedly cannulated starting two weeks after implantation and were evaluated using computed tomography and histological analyses. By 12 weeks, the PC-BU grafts remodel into autologous tissue while maintaining structural integrity, maintaining integrity without dilations, ruptures, or aneurysms. Cannulation does not interfere with scaffold degradation or neo-tissue formation. Although the patency rate is lower for the PC-BU grafts (50%) compared to ePTFE (100%), the engineered grafts exhibit a self-healing response not seen in ePTFE. These findings demonstrate the potential of PC-BU tissue-engineered grafts as healing, functional vascular access solutions for hemodialysis, supporting cannulation during tissue transformation.
Evaluation of in situ tissue-engineered arteriovenous grafts suitable for cannulation in a large animal model.
在大动物模型中评估适用于插管的原位组织工程动静脉移植物
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作者:Besseling Paul J, Szymczyk Wojciech, Teraa Martin, Toorop Raechel J, Bartels Paul A A, Arts Boris, Driessen Rob C H, Lichauco Arturo M, Bakker Hidde C, Fledderus Joost O, de Borst Gert J, Dankers Patricia Y W, Bouten Carlijn V C, Verhaar Marianne C
| 期刊: | Communications Materials | 影响因子: | 9.600 |
| 时间: | 2025 | 起止号: | 2025;6(1):151 |
| doi: | 10.1038/s43246-025-00879-z | ||
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