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采用反重力技术挤出的直径超过 3 毫米的双层血管。

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

机构信息

Department of Electrical, Electronic and Computer Engineering, University of Ulsan, Ulsan 44610, Republic of Korea.

School of Biological Sciences, University of Ulsan, Ulsan 44610, Republic of Korea.

出版信息

Biofabrication. 2023 Sep 22;15(4). doi: 10.1088/1758-5090/acf61f.

Abstract

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.

摘要

用于治疗严重外周动脉疾病的最有前途的技术之一是使用细胞组织工程血管移植物 (TEVG)。本研究提出了一种反向重力 (IG) 挤出技术,用于制造直径超过 3 毫米的长双层细胞 TEVG。通过简单地将水凝胶的挤出方向从与重力方向对齐改为相反,在 8 毫米直径的管道中实现了三层同轴层状水凝胶的流动。该技术产生了一种挤出的人主动脉平滑肌细胞 (HASMC) 和 I 型胶原混合物,作为具有 3.5 毫米内径的管状结构。经过 21 天的成熟期,HASMC TEVG 的最大爆裂压力、纵向断裂力和周向断裂力分别为 416mmHg、0.69N 和 0.89N。HASMC TEVG 被人脐静脉内皮细胞内皮化,形成模拟人体血管的内皮层。除了在小鼠中的皮下可植入性外,双层血管在暴露于肝素化的小鼠血液后血小板和红细胞的粘附性明显降低,被认为是非溶血的。所提出的 IG 挤出技术可应用于需要大直径多层材料的各个领域。

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