A COMPARATIVE-STUDY OF ULTRASTRUCTURES OF THE INTERFACES BETWEEN 4 KINDS OF SURFACE-ACTIVE CERAMIC AND BONE

被引:226
作者
NEO, M
KOTANI, S
NAKAMURA, T
YAMAMURO, T
OHTSUKI, C
KOKUBO, T
BANDO, Y
机构
[1] KYOTO UNIV, INST CHEM RES, UJI, KYOTO 611, JAPAN
[2] NATL INST RES INORGAN MAT, TSUKUBA 305, JAPAN
来源
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH | 1992年 / 26卷 / 11期
关键词
D O I
10.1002/jbm.820261103
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The interfaces between four kinds of surface-active ceramic and bone were studied by scanning electron microscopy (SEM) and transmission electron microscopy (TEM) using undecalcified specimens. The materials were Bioglass(R)-type (glass (Bioglass(R)), Ceravital-type glass-ceramic KGS), apatite- and wollastonite-containing glass-ceramic (A-W . GC) and hydroxyapatite (HA). Particles of these materials, ranging between about 100 and 300 mum in diameter, were implanted into rat tibiae, and specimens were prepared for observation at 8 weeks after implantation. All materials were observed to bond to bone through a collagen-free layer consisting of fine apatite crytals distinct from those in bone. The crystals of this apatite layer and those of bone were intermingled at their interface, suggesting chemical bonding. In Bioglass(R), which had only a glassy phase, several tens of microns of the material surface had changed to such an apatite layer. In KGS and A-W . GC, which had macrocrystals in the glassy phase, an intervening apatite layer about 0.5 mum thick was observed between the materials and bone. Furthermore, fine apatite crystals were also observed among the macrocrystals near the surface of the materials. In HA, which had no glassy phase, an intervening apatite layer was much less distinct and sometimes absent. These differences were considered to be attributable to the differences in chemical composition, crystallization, and solubility of the materials.
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页码:1419 / 1432
页数:14
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