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在生物活性玻璃陶瓷上通过仿生工艺制备的类骨磷灰石层上的体外骨形成。

In vitro bone formation on a bone-like apatite layer prepared by a biomimetic process on a bioactive glass-ceramic.

作者信息

Loty C, Sautier J M, Boulekbache H, Kokubo T, Kim H M, Forest N

机构信息

Laboratoire de Biologie-Odontologie, Faculté de Chirurgie Dentaire, Institut Biomédical des Cordeliers, Université Paris 7, 15-21 rue de l'Ecole de Médecine, 75270 Paris Cedex 06, France.

出版信息

J Biomed Mater Res. 2000 Mar 15;49(4):423-34. doi: 10.1002/(sici)1097-4636(20000315)49:4<423::aid-jbm1>3.0.co;2-7.

Abstract

In this study we have investigated the behavior of fetal rat osteoblasts, cultured up to 23 days, on a bioactive apatite-wollastonite (AW) glass-ceramic and on the same material on which a carbonated apatite layer had been formed by a biomimetic process (AWa). At the last day of culture, the specific activity of alkaline phosphatase activity, as determined biochemically, was about 30% greater on AWa compared with AW disks. After the cell layers had been scraped off, scanning electron microscopic (SEM) observations of the materials' surfaces revealed that mineralized bone nodules remained attached to both surfaces but in larger amounts on AWa. X-ray microanalysis indicated the presence of calcium (Ca) and phosphorus (P) in the bone tissue throughout the AWa surface and Ca, P, and silicon (Si) on the AW surface. The AW/ and AWa/bone interfaces also were analyzed after fracturing of the disks. The interfacial analysis showed firm bone bonding to the AW and AWa surfaces, confirmed by the X-ray microanalytic mappings. These results indicate the importance of surface composition in supporting differentiation of osteogenic cells and the subsequent apposition of bone matrix, which allows a strong bond of the bioactive materials to the bone. Furthermore, prefabrication of a biologic apatite layer by a method that mimics biomineralization could find application to bone-repairing materials.

摘要

在本研究中,我们研究了培养至23天的胎鼠成骨细胞在生物活性磷灰石-硅灰石(AW)微晶玻璃以及通过仿生过程在该材料上形成了碳酸化磷灰石层的相同材料(AWa)上的行为。在培养的最后一天,通过生化测定,碱性磷酸酶活性的比活性在AWa上比在AW盘上大约高30%。刮下细胞层后,对材料表面进行扫描电子显微镜(SEM)观察发现,矿化骨结节附着在两个表面上,但在AWa上的数量更多。X射线微分析表明,在整个AWa表面的骨组织中存在钙(Ca)和磷(P),在AW表面存在Ca、P和硅(Si)。在圆盘断裂后,还对AW/和AWa/骨界面进行了分析。界面分析显示骨与AW和AWa表面牢固结合,X射线微分析图谱证实了这一点。这些结果表明表面组成在支持成骨细胞分化以及随后骨基质的附着方面的重要性,这使得生物活性材料与骨形成牢固的结合。此外,通过模拟生物矿化的方法预制生物磷灰石层可能在骨修复材料中得到应用。

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