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导电聚合物在无细胞肌肉组织构建物中的原位聚合。

In situ polymerization of a conductive polymer in acellular muscle tissue constructs.

作者信息

Peramo Antonio, Urbanchek Melanie G, Spanninga Sarah A, Povlich Laura K, Cederna Paul, Martin David C

机构信息

Department of Materials Science and Engineering, University of Michigan, Ann Arbor, Michigan 48109, USA.

出版信息

Tissue Eng Part A. 2008 Mar;14(3):423-32. doi: 10.1089/tea.2007.0123.

Abstract

We present a method to chemically deposit a conductive polymer, poly(3,4-ethylenedioxythiophene) (PEDOT), on acellularized muscle tissue constructs. Morphology and structure of the deposition was characterized using optical and scanning electron microscopies (SEM). The micrographs showed elongated, smooth, tubular PEDOT structures completely penetrating and surrounding the tissue fibers. The chemical polymerization was performed using iron chloride, a mild oxidizer. Remaining iron and chlorine in the tissue constructs were reduced to acceptable metabolic levels, while preserving the structural integrity of the tissue. We expect that these acellular, polymerized tissue implants will remain essentially unmodified in cellular environments in vitro and in vivo because of the chemical and thermal stability of the PEDOT polymer depositions. Our results indicate that in situ polymerization occurs throughout the tissue, converting it into an extensive acellular, non-antigenic substrate of interest for in vivo experiments related to nerve repair and bioartificial prosthesis. We expect these conducting polymer scaffolds to be useful for direct integration with electronically and ionically active tissues.

摘要

我们提出了一种在脱细胞肌肉组织构建物上化学沉积导电聚合物聚(3,4-乙撑二氧噻吩)(PEDOT)的方法。使用光学显微镜和扫描电子显微镜(SEM)对沉积物的形态和结构进行了表征。显微照片显示,细长、光滑的管状PEDOT结构完全穿透并围绕组织纤维。化学聚合反应使用温和的氧化剂氯化铁进行。组织构建物中残留的铁和氯被降低到可接受的代谢水平,同时保持组织的结构完整性。我们预计,由于PEDOT聚合物沉积物的化学和热稳定性,这些脱细胞、聚合的组织植入物在体外和体内的细胞环境中基本上不会发生改变。我们的结果表明,原位聚合反应在整个组织中发生,将其转化为一种广泛的脱细胞、无抗原的底物,这对于与神经修复和生物人工假体相关的体内实验具有重要意义。我们预计这些导电聚合物支架将有助于与电子和离子活性组织直接整合。

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