The development of bioresorbable composite polymeric implants with high mechanical strength

材料科学 弹性体 生物相容性 脚手架 生物医学工程 生物吸附支架 复合材料 涂层 组织工程 心肌梗塞 心理学 精神科 经皮冠状动脉介入治疗 医学 冶金
作者
Upma Sharma,Danny Concagh,Lee Core,Yina Kuang,Chang‐Cheng You,Quynh P. Pham,Greg Zugates,Rany Busold,Stephanie Webber,Jonathan Merlo,R.M. Langer,George M. Whitesides,Maria Palasis
出处
期刊:Nature Materials [Nature Portfolio]
卷期号:17 (1): 96-103 被引量:154
标识
DOI:10.1038/nmat5016
摘要

Implants for the treatment of tissue defects should mimic the mechanical properties of the native tissue of interest and should be resorbable as well as biocompatible. In this work, we developed a scaffold from variants of poly(glycolic) acid which were braided and coated with an elastomer of poly(glycolide-co-caprolactone) and crosslinked. The coating of the scaffold with the elastomer led to higher mechanical strength in terms of compression, expansion and elasticity compared to braids without the elastomer coating. These composite scaffolds were found to have expansion properties similar to metallic stents, utilizing materials which are typically much weaker than metal. We optimized the mechanical properties of the implant by tuning the elastomer branching structure, crosslink density, and molecular weight. The scaffolds were shown to be highly resorbable following implantation in a porcine femoral artery. Biocompatibility was studied in vivo in an ovine model by implanting the scaffolds into femoral arteries. The scaffolds were able to support an expanded open lumen over 12 months in vivo and also fully resorbed by 18 months in the ovine model. Metallic stents have been widely used in coronary angioplasty. Here, the authors develop a resorbable self-expanding stent from polymeric elastomers with high mechanical strength for coronary applications.
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