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Novel three dimensional biodegradable scaffolds for bone tissue engineering

机译:用于骨组织工程的新型三维可生物降解支架

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We have constructed osteogenic scaffolds using solid freeform fabrication techniques. Blends of biodegradable polymers, polycaprolactone and poly(D,L-lactic-co-glycolic acid), have been examined as scaffolds for applications in bone tissue engineering. Hydroxyapatite granules were incorporated into the blends and porous discs were prepared. Mechanical properties and degradation rates of the composites were determined. The discs were seeded with rabbit bone marrow or cultured bone marrow stromal cells and in vitro studies were conducted. Electron microscopy and histological analysis revealed an osteogenic composite that supports bone cell growth not only on the surface but throughout the 1 mm thick scaffold as well. Seeded and unseeded discs were mechanically assembled in layers and implanted in a rabbit rectus abdominis muscle. Bone growth was evident after eight weeks in vivo. Electron microscopy and histological analyses indicate vascularization and primitive bone formation throughout the seeded composite, and also a "fusion" of the layers to form a single, solid construct. Finally, we have begun to incorporate the growth factor IGF-I into the scaffold to enhance osteogenicity and/or as an alternative to cell seeding.
机译:我们已经使用固体自由形式的制造技术构建了成骨支架。已经研究了可生物降解的聚合物,聚己内酯和聚(D,L-乳酸-乙醇酸共聚物)的共混物,作为在骨组织工程中应用的支架。将羟基磷灰石颗粒掺入到共混物中,并制备多孔盘。测定了复合材料的机械性能和降解速率。圆盘上植入兔骨髓或培养的骨髓基质细胞,并进行了体外研究。电子显微镜和组织学分析揭示了一种成骨复合物,不仅在表面上而且在整个1毫米厚的支架上都支持骨细胞的生长。将播种和未播种的椎间盘机械地分层组装,并植入兔腹直肌中。在体内八周后,骨生长明显。电子显微镜和组织学分析表明整个植入种子的复合物中均具有血管化和原始骨形成,并且还显示了各层的“融合”以形成单个固体构建体。最后,我们已开始将生长因子IGF-1掺入支架中以增强成骨性和/或替代细胞接种。

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