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三种含磷灰石玻璃陶瓷的骨结合行为

Bone bonding behavior of three kinds of apatite containing glass ceramics.

作者信息

Kitsugi T, Yamamuro T, Nakamura T, Higashi S, Kakutani Y, Hyakuna K, Ito S, Kokubo T, Takagi M, Shibuya T

出版信息

J Biomed Mater Res. 1986 Nov-Dec;20(9):1295-307. doi: 10.1002/jbm.820200906.

Abstract

We have produced three kinds of apatite-containing glass ceramics of the same chemical composition: MgO (4.6), CaO (44.9), SiO2 (34.2), P2O5 (16.3), CaF2 (0.5) (in weight ratio). They contain different crystal combinations and have different mechanical properties. The first glass ceramic (A-GC) was prepared by heating a glass plate to 870 degrees C. It contains only oxy- and fluoroapatite (35 wt%). The second glass ceramic (A-W-GC), and the third (A-W-CP-GC), were prepared by heating glass powder compacts to 1050 degrees C and 1200 degrees C, respectively. A-W-GC contains oxyapatite and fluoroapatite (Ca10(PO4)6(O,F2] (35 wt%) and beta-wollastonite (40 wt%). A-W-CP-GC contains oxyapatite and fluoroapatite (20 wt%), beta-wollastonite (CaO X SiO2) (55 wt%), and beta-whitlockite (3CaO X P2O5) (15 wt%). The bending strengths of A-GC, A-W-GC, and A-W-CP-GC were 88MPa, 178MPa, and 213MPa, respectively, in air. Rectangular ceramic plates (15mm X 10mm X 2mm) were implanted into a rabbit tibia. Ten and 25 weeks after implantation, the segment of tibia with implant was excised for examination. The segment was held by a special jig and the traction breaking load (failure load) was measured by an autograph. A-GC showed a lower load than A-W-GC and A-W-CP-GC. The loads for A-W-GC and A-W-CP-GC were almost equal. The failure loads did not change significantly between 10 and 25 weeks for any of the materials. The interface was examined by Giemsa surface staining, contact micro-radiography, and SEM-EPMA. Giemsa surface staining and CMR revealed direct bonding between the materials and the bone for all the three materials. SEM-EPMA showed that Si and Mg content decreased, Ca content did not change, and P content increased at the reaction zone between all three glass ceramics and bone. This was observed at 10 weeks, as well as at 25 weeks, after implantation. The reaction zone was narrowest with A-GC, wider with A-W-GC, and widest with A-W-CP-GC.

摘要

我们制备了三种化学成分相同的含磷灰石玻璃陶瓷

MgO(4.6)、CaO(44.9)、SiO2(34.2)、P2O5(16.3)、CaF2(0.5)(重量比)。它们含有不同的晶体组合,具有不同的力学性能。第一种玻璃陶瓷(A-GC)通过将玻璃板加热至870℃制备而成。它仅含有氧磷灰石和氟磷灰石(35重量%)。第二种玻璃陶瓷(A-W-GC)和第三种(A-W-CP-GC)分别通过将玻璃粉末压块加热至1050℃和1200℃制备而成。A-W-GC含有氧磷灰石和氟磷灰石(Ca10(PO4)6(O,F2](35重量%)和β-硅灰石(40重量%)。A-W-CP-GC含有氧磷灰石和氟磷灰石(20重量%)、β-硅灰石(CaO·SiO2)(55重量%)和β-白磷钙矿(3CaO·P2O5)(15重量%)。在空气中,A-GC、A-W-GC和A-W-CP-GC的抗弯强度分别为88MPa、178MPa和213MPa。将矩形陶瓷板(15mm×10mm×2mm)植入兔胫骨。植入后10周和25周,切除带有植入物的胫骨段进行检查。该段由特殊夹具固定,并用自动绘图仪测量牵引断裂载荷(破坏载荷)。A-GC的载荷低于A-W-GC和A-W-CP-GC。A-W-GC和A-W-CP-GC的载荷几乎相等。对于任何一种材料,10周和25周之间的破坏载荷均无显著变化。通过吉姆萨表面染色、接触微放射摄影和扫描电子显微镜-电子探针微分析(SEM-EPMA)对界面进行检查。吉姆萨表面染色和接触微放射摄影显示,所有三种材料与骨之间均存在直接结合。SEM-EPMA表明,在所有三种玻璃陶瓷与骨之间的反应区,Si和Mg含量降低,Ca含量不变,P含量增加。植入后10周以及25周均观察到这种情况。A-GC的反应区最窄,A-W-GC的反应区较宽,A-W-CP-GC的反应区最宽。

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