4.7 Article

Double-layered blood vessels over 3 mm in diameter extruded by the inverse-gravity technique

期刊

BIOFABRICATION
卷 15, 期 4, 页码 -

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IOP Publishing Ltd
DOI: 10.1088/1758-5090/acf61f

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inverse-gravity extrusion; double-layered blood vessels; human blood vessels

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The study proposes an inverse-gravity extrusion technique for creating long double-layered cellular tissue-engineered vascular grafts with diameters over 3 mm. The technique produced a tubular structure with high strength and functionality, suitable for various applications.
One of the most promising techniques for treating severe peripheral artery disease is the use of cellular tissue-engineered vascular grafts (TEVGs). This study proposes an inverse-gravity (IG) extrusion technique for creating long double-layered cellular TEVGs with diameters over 3 mm. A three-layered coaxial laminar hydrogel flow in an 8 mm-diameter pipe was realised simply by changing the extrusion direction of the hydrogel from being aligned with the direction of gravity to against it. This technique produced an extruded mixture of human aortic smooth muscle cells (HASMCs) and type-I collagen as a tubular structure with an inner diameter of 3.5 mm. After a 21 day maturation period, the maximal burst pressure, longitudinal breaking force, and circumferential breaking force of the HASMC TEVG were 416 mmHg, 0.69 N, and 0.89 N, respectively. The HASMC TEVG was endothelialised with human umbilical vein endothelial cells to form a tunica intima that simulated human vessels. Besides subcutaneous implantability on mice, the double-layered blood vessels showed a considerably lower adherence of platelets and red blood cells once exposed to heparinised mouse blood and were considered nonhaemolytic. The proposed IG extrusion technique can be applied in various fields requiring multilayered materials with large diameters.

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