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聚己内酯聚氨酯中空纤维膜作为小直径血管移植物的合成与表征

Synthesis and characterization of polycaprolactone urethane hollow fiber membranes as small diameter vascular grafts.

作者信息

Mercado-Pagán Ángel E, Stahl Alexander M, Ramseier Michelle L, Behn Anthony W, Yang Yunzhi

机构信息

Department of Orthopedic Surgery, Stanford University, Stanford, CA, USA.

Department of Orthopedic Surgery, Stanford University, Stanford, CA, USA; Department of Chemistry, Stanford University, Stanford, CA, USA.

出版信息

Mater Sci Eng C Mater Biol Appl. 2016 Jul 1;64:61-73. doi: 10.1016/j.msec.2016.03.068. Epub 2016 Mar 23.

Abstract

The design of bioresorbable synthetic small diameter (<6mm) vascular grafts (SDVGs) capable of sustaining long-term patency and endothelialization is a daunting challenge in vascular tissue engineering. Here, we synthesized a family of biocompatible and biodegradable polycaprolactone (PCL) urethane macromers to fabricate hollow fiber membranes (HFMs) as SDVG candidates, and characterized their mechanical properties, degradability, hemocompatibility, and endothelial development. The HFMs had smooth surfaces and porous internal structures. Their tensile stiffness ranged from 0.09 to 0.11N/mm and their maximum tensile force from 0.86 to 1.03N, with minimum failure strains of approximately 130%. Permeability varied from 1 to 14×10(-6)cm/s, burst pressures from 1158 to 1468mmHg, and compliance from 0.52 to 1.48%/100mmHg. The suture retention forces ranged from 0.55 to 0.81N. HFMs had slow degradation profiles, with 15 to 30% degradation after 8weeks. Human endothelial cells proliferated well on the HFMs, creating stable cell layer coverage. Hemocompatibility studies demonstrated low hemolysis (<2%), platelet activation, and protein adsorption. There were no significant differences in the hemocompatibility of HFMs in the absence and presence of endothelial layers. These encouraging results suggest great promise of our newly developed materials and biodegradable elastomeric HFMs as SDVG candidates.

摘要

设计能够维持长期通畅性和内皮化的生物可吸收合成小直径(<6mm)血管移植物(SDVG)是血管组织工程中一项艰巨的挑战。在此,我们合成了一系列具有生物相容性和可生物降解性的聚己内酯(PCL)聚氨酯大分子单体,以制备中空纤维膜(HFM)作为SDVG候选物,并对其力学性能、降解性、血液相容性和内皮发育进行了表征。HFM表面光滑,内部结构多孔。其拉伸刚度范围为0.09至0.11N/mm,最大拉伸力为0.86至1.03N,最小破坏应变为约130%。渗透率从1至14×10(-6)cm/s不等,爆破压力从1158至1468mmHg不等,顺应性从0.52至1.48%/100mmHg不等。缝线保留力范围为0.55至0.81N。HFM具有缓慢的降解曲线,8周后降解15%至30%。人内皮细胞在HFM上增殖良好,形成稳定的细胞层覆盖。血液相容性研究表明溶血率低(<2%)、血小板活化和蛋白质吸附低。有无内皮层的HFM血液相容性无显著差异。这些令人鼓舞的结果表明,我们新开发的材料和可生物降解弹性体HFM作为SDVG候选物具有很大的前景。

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