A Nondestructive Fiber-Based Imaging System to Assess Tissue-Engineered Vascular Grafts
Bryce M. Whited, Matthias Hofmann, Peng Lu, Christopher G. Rylander, Shay Söker, Ge Wang, Yong Xu, Marissa Nichole Rylander
Abstract
Bryce M. Whited, Matthias Hofmann, Peng Lu, Christopher G. Rylander, Shay Söker, Ge Wang, Yong Xu, Marissa Nichole Rylander
Abstract
The clinical need for alternatives to autologous vein and artery grafts for small-diameter vascular reconstruction have led researches to a tissue-engineering approach. Bioengineered vascular grafts provide a mechanically robust conduit for blood flow while implanted autologous cells remodel the construct to form a fully functional vessel [1]. A typical tissue-engineering approach involves fabricating a vascular scaffold from natural or synthetic materials, seeding the lumen of a vessel with endothelial cells (EC) and the vessel wall with smooth muscle cells or fibroblasts to mimic the functional properties of a native vessel. The cell-seeded vascular scaffold is then preconditioned in vitro using a pulsatile bioreactor to mimic in vivo conditions to enhance vessel maturation before implantation (Fig. 1).
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The clinical need for alternatives to autologous vein and artery grafts for small-diameter vascular reconstruction have led researches to a tissue-engineering approach. Bioengineered vascular grafts provide a mechanically robust conduit for blood flow while implanted autologous cells remodel the construct to form a fully functional vessel [1]. A typical tissue-engineering approach involves fabricating a vascular scaffold from natural or synthetic materials, seeding the lumen of a vessel with endothelial cells (EC) and the vessel wall with smooth muscle cells or fibroblasts to mimic the functional properties of a native vessel. The cell-seeded vascular scaffold is then preconditioned in vitro using a pulsatile bioreactor to mimic in vivo conditions to enhance vessel maturation before implantation (Fig. 1).
Key concepts: Tissue engineering, Biomedical engineering, Scaffold, Lumen (anatomy), Blood vessel, Pulsatile flow, Materials science, Vascular graft