Link Dennis P, van den Dolder Juliette, van den Beucken Jeroen J, Wolke Joop G, Mikos Antonios G, Jansen John A
Department of Periodontology and Biomaterials, Radboud University Nijmegen Medical Center, Nijmegen, P.O. Box 9101, 6500 HB Nijmegen, The Netherlands.
Biomaterials. 2008 Feb;29(6):675-82. doi: 10.1016/j.biomaterials.2007.10.029. Epub 2007 Nov 8.
This study focused at the potential of transforming growth factor beta 1 (TGF-beta 1) loaded gelatin microparticles to enhance the bone response and mechanical strength of rabbit femoral defects filled with injectable calcium phosphate (CaP)/gelatin microparticle composites. Therefore, TGF-beta1 loaded composites and non-loaded controls were injected in circular defects as created in the femoral condyles of rabbits and were left in place for 4, 8 and 12 weeks. The specimens were evaluated mechanically (push-out test), and morphologically (scanning electron microscopy (SEM), histology, and histomorphometry). The results showed a gradual increase in mechanical strength with increasing implantation periods. Histological and histomorphometrical evaluation showed similar results for both composite formulations regarding histological aspect, new bone formation and bone/implant contact. However, TGF-beta1 loading of the composites demonstrated a significant effect on composite degradation after twelve weeks of implantation. The results of this study showed that CaP/gelatin composites show excellent osteogenic properties and a rapid increase in mechanical strength. The addition of TGF-beta1 significantly enhances the bone remodeling process.
本研究聚焦于负载转化生长因子β1(TGF-β1)的明胶微粒增强兔股骨缺损骨反应及机械强度的潜力,该缺损填充有可注射磷酸钙(CaP)/明胶微粒复合材料。因此,将负载TGF-β1的复合材料和未负载的对照组注射到兔股骨髁所形成的圆形缺损中,并留置4、8和12周。对标本进行力学评估(推出试验)以及形态学评估(扫描电子显微镜(SEM)、组织学和组织形态计量学)。结果显示,随着植入时间的增加,机械强度逐渐提高。组织学和组织形态计量学评估表明,两种复合材料配方在组织学方面、新骨形成和骨/植入物接触方面结果相似。然而,复合材料负载TGF-β1在植入12周后对复合材料降解表现出显著影响。本研究结果表明,CaP/明胶复合材料具有优异的成骨特性且机械强度迅速增加。添加TGF-β1可显著增强骨重塑过程。