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使用超临界气体发泡法制备的陶瓷增强聚乳酸支架修复大鼠颅骨临界尺寸缺损。

Repair of critical size defects in the rat cranium using ceramic-reinforced PLA scaffolds obtained by supercritical gas foaming.

作者信息

Montjovent Marc-Olivier, Mathieu Laurence, Schmoekel Hugo, Mark Silke, Bourban Pierre-Etienne, Zambelli Pierre-Yves, Laurent-Applegate Lee Ann, Pioletti Dominique P

机构信息

Laboratoire de Biomécanique en Orthopédie EPFL-HOSR, Ecole Polytechnique Fédérale de Lausanne, CH-1015 Lausanne, Switzerland.

出版信息

J Biomed Mater Res A. 2007 Oct;83(1):41-51. doi: 10.1002/jbm.a.31208.

Abstract

Bioresorbable scaffolds made of poly(L-lactic acid) (PLA) obtained by supercritical gas foaming were recently described as suitable for tissue engineering, portraying biocompatibility with primary osteoblasts in vitro and interesting mechanical properties when reinforced with ceramics. The behavior of such constructs remained to be evaluated in vivo and therefore the present study was undertaken to compare different PLA/ceramic composite scaffolds obtained by supercritical gas foaming in a critical size defect craniotomy model in Sprague-Dawley rats. The host-tissue reaction to the implants was evaluated semiquantitatively and similar tendencies were noted for all graft substitutes: initially highly reactive but decreasing with time implanted. Complete bone-bridging was observed 18 weeks after implantation with PLA/ 5 wt % beta-TCP (PLA/TCP) and PLA/5 wt % HA (PLA/HA) scaffolds as assessed by histology and radiography. We show here for the first time that this solvent-free technique provides a promising approach in tissue engineering demonstrating both the biocompatibility and osteoconductivity of the processed structures in vivo.

摘要

最近有研究报道,通过超临界气体发泡法制备的聚(L-乳酸)(PLA)生物可吸收支架适用于组织工程,在体外与原代成骨细胞具有生物相容性,在用陶瓷增强时具有有趣的力学性能。此类构建体在体内的行为仍有待评估,因此本研究旨在比较通过超临界气体发泡法获得的不同PLA/陶瓷复合支架在Sprague-Dawley大鼠临界尺寸颅骨切开术模型中的情况。对植入物的宿主组织反应进行了半定量评估,所有移植替代物均呈现相似趋势:最初反应强烈,但随植入时间延长而减弱。组织学和放射学评估显示,植入PLA/5 wt%β-磷酸三钙(PLA/TCP)和PLA/5 wt%羟基磷灰石(PLA/HA)支架18周后观察到完全骨桥接。我们首次在此表明,这种无溶剂技术在组织工程中提供了一种有前景的方法,证明了加工结构在体内的生物相容性和骨传导性。

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