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High compliance vascular grafts based on semi-interpenetrating networks

机译:基于半互穿网络的高顺应性血管移植物

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摘要

Current synthetic vascular grafts have poor patency rates in small diameter applications (<6 mm) due to intimal hyperplasia arising from a compliance mismatch between the graft and native vasculature. Enormous efforts have focused on improving biomechanical properties; however, polymeric grafts are often constrained by an inverse relationship between burst pressure and compliance. We have developed a new, semi-interpenetrating network (semi-IPN) approach to improve compliance without sacrificing burst pressure. The effects of heat treatment on graft morphology, fiber architecture, and resultant biomechanical properties are presented. In addition, biomechanical properties after equilibration at physiological temperature were investigated in relation to polyurethane microstructure to better predict in vivo performance. Compliance values as high as 9.2 ± 2.7 %/mmHg x 10−4 were observed for the semi-IPN graft while also maintaining high burst pressure, 1780 ± 230 mm Hg. The high compliance of these heat-treated poly(carbonate urethane) (PCU) and semi-IPN grafts is expected to improve long-term patency rates beyond even saphenous vein autografts by preventing intimal hyperplasia. The fundamental structure-property relationships gained from this work may also be utilized to advance biomedical device designs based on thermoplastic polyurethanes.
机译:当前的合成血管移植物在小直径应用(<6 mm)中由于由移植物与天然脉管系统之间的顺应性不匹配而引起的内膜增生而具有较差的通畅率。巨大的努力集中在改善生物力学性能上。然而,聚合物接枝物通常受破裂压力与顺应性之间的反比关系约束。我们已经开发了一种新的半互穿网络(semi-IPN)方法,以在不牺牲爆破压力的情况下提高顺应性。提出了热处理对接枝形态,纤维结构和所得生物力学性能的影响。另外,研究了在生理温度下平衡后的生物力学性能与聚氨酯微观结构的关系,以更好地预测体内性能。对于半IPN移植物,观察到的顺应性值高达9.2±2.7%/ mmHg x 10 −4 ,同时还保持了1780±230 mm Hg的高爆破压力。这些经过热处理的聚碳酸亚氨基甲酸酯(PCU)和半IPN移植物的高顺应性有望通过防止内膜增生,甚至使大隐静脉自体移植物改善长期通畅率。从这项工作中获得的基本结构-特性关系也可以用于推进基于热塑性聚氨酯的生物医学设备设计。

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