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戊二醛交联的羟基磷灰石/胶原蛋白自组装纳米复合材料

Glutaraldehyde cross-linked hydroxyapatite/collagen self-organized nanocomposites.

作者信息

Kikuchi Masanori, Matsumoto Hiroko N, Yamada Takeki, Koyama Yoshihisa, Takakuda Kazuo, Tanaka Junzo

机构信息

Biomaterials Center, National Institute for Materials Science, 1-1, Namiki, Tsukuba, Ibaraki, 305-0044, Japan.

出版信息

Biomaterials. 2004 Jan;25(1):63-9. doi: 10.1016/s0142-9612(03)00472-1.

Abstract

To control the mechanical properties and biodegradability of self-organized hydroxyapatite/collagen (HAp/Col) nanocomposites, cross-linkage was introduced into the composites with glutaraldehyde (GA). The HAp/Col composite suspensions, prepared by a simultaneous titration method and aged for 3h, were cross-linked with the reagents for 10min under vigorous stirring. The precipitates obtained were filtrated and compacted by dehydration under a uniaxial pressure. The particle size distribution, 3-point bending strength, contained water amount and swelling ratio of the composites were examined as a function of cross-linkage amount; the biodegradability was estimated by animal tests using rabbits. As regards the cross-linked composites, no long-rage alignment of HAp crystals along collagen molecules was found with a transmission electron microscope, suggesting that the cross-linking reagents suppressed their long-range self-organization mechanism. The 3-point bending strength increased with the GA content and took a maximal value at 1.35mmol/g(col). The animal tests indicated no toxicity and osteoclastic resorption with good osteoconductivity. The resorption rate was decreased with increasing GA concentration. These results suggest that GA cross-linkage controls mechanical properties and resorption rate without reducing high biocompatibility of the composite.

摘要

为了控制自组装羟基磷灰石/胶原蛋白(HAp/Col)纳米复合材料的机械性能和生物降解性,使用戊二醛(GA)对复合材料进行交联。通过同步滴定法制备并老化3小时的HAp/Col复合悬浮液,在剧烈搅拌下与试剂交联10分钟。将得到的沉淀物过滤,并在单轴压力下脱水压实。研究了复合材料的粒径分布、三点弯曲强度、含水量和溶胀率随交联量的变化;通过对兔子进行动物试验来评估其生物降解性。对于交联复合材料,透射电子显微镜未发现HAp晶体沿胶原分子的长程排列,这表明交联试剂抑制了它们的长程自组装机制。三点弯曲强度随GA含量的增加而增加,并在1.35mmol/g(col)时达到最大值。动物试验表明没有毒性和破骨细胞吸收,且具有良好的骨传导性。随着GA浓度的增加,吸收速率降低。这些结果表明,GA交联可控制机械性能和吸收速率,而不会降低复合材料的高生物相容性。

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