Chłopek Jan, Morawska-Chochół Anna, Bajor Grzegorz, Adwent Marek, Cieślik-Bielecka Agata, Cieślik Magdalena, Sabat Daniel
Department of Biomaterials, Faculty of Materials Science and Ceramics, AGH University of Science and Technology, 30 Mickiewicza Avenue, 30-059 Cracow, Poland.
J Biomater Sci Polym Ed. 2007;18(11):1355-68. doi: 10.1163/156856207782246858.
In this study the influence of short carbon fibres (CF) on mechanical properties and degradation time of the lactide-glycolide co-polymer (PGLA) and on the mechanism of bone ingrowth into the implants was determined. Mechanical properties and push-out tests were measured. The pH of solutions and the implants' weights were tested after incubation in Ringer fluid. Analysis was based upon FT-IR and SEM with EDS studies. Pathological examinations were also performed. The in vitro examination revealed that carbon fibres accelerated polymer degradation process and increased the mechanical strength of polymer. In the case of PGLA + CF under in vivo conditions, initially, the superficial polymer degradation with new tissue in-growth was observed. Next, the degradation process included also the inner part of the implant, while the bone began to grow on exposed carbon fibres. In the case of pure PGLA the growth of soft tissue can be observed at the bone-implant interface and in the implant area. Our research indicates that PGLA + CF composite can be used in bone surgery as a short-term multifunctional load-bearing implant, which initially provides a mechanical support. During the time of controlled resorption of PGLA, carbon fibres act as a scaffold for the bone growth.
在本研究中,测定了短碳纤维(CF)对丙交酯-乙交酯共聚物(PGLA)的力学性能和降解时间以及对植入物中骨长入机制的影响。测量了力学性能并进行了推出试验。在林格液中孵育后,测试了溶液的pH值和植入物的重量。分析基于傅里叶变换红外光谱(FT-IR)和带有能谱分析(EDS)研究的扫描电子显微镜(SEM)。还进行了病理检查。体外检查显示,碳纤维加速了聚合物的降解过程并提高了聚合物的机械强度。在体内条件下,对于PGLA + CF,最初观察到表面聚合物降解并伴有新组织长入。接下来,降解过程也包括植入物的内部,而骨开始在暴露的碳纤维上生长。对于纯PGLA,在骨-植入物界面和植入物区域可观察到软组织生长。我们的研究表明,PGLA + CF复合材料可作为短期多功能承重植入物用于骨外科手术,它最初提供机械支撑。在PGLA可控吸收期间,碳纤维充当骨生长的支架。