材料科学
成骨细胞
粘附
细胞粘附
陶瓷
粒度
纳米技术
蛋白质吸附
生物物理学
化学工程
复合材料
体外
化学
生物化学
生物
工程类
聚合物
作者
Thomas J. Webster,Celaletdin Ergun,Robert H. Doremus,Richard W. Siegel,Rena Bizios
出处
期刊:Journal of Biomedical Materials Research
[Wiley]
日期:2000-01-01
卷期号:51 (3): 475-483
被引量:956
标识
DOI:10.1002/1097-4636(20000905)51:3<475::aid-jbm23>3.0.co;2-9
摘要
Osteoblast, fibroblast, and endothelial cell adhesion on nanophase (that is, materials with grain sizes less than 100 nm) alumina, titania, and hydroxyapatite (HA) was investigated using in vitro cellular models. Osteoblast adhesion was significantly (p < 0.01) greater after 4 h on nanophase alumina, titania, and HA than it was on conventional formulations of the same ceramics. In contrast, compared to conventional alumina, titania, and HA, after 4 h fibroblast adhesion was significantly (p < 0.01) less on nanophase ceramics. Examination of the underlying mechanism(s) of cell adhesion on nanophase ceramics revealed that these ceramics adsorbed significantly (p < 0.01) greater quantities of vitronectin, which, subsequently, may have contributed to the observed select enhanced adhesion of osteoblasts. Select enhanced osteoblast adhesion was independent of surface chemistry and material phase but was dependent on the surface topography (specifically on grain and pore size) of nanophase ceramics. The capability of synthesizing and processing nanomaterials with tailored (through, for example, specific grain and pore size) structures and topographies to control select subsequent cell functions provides the possibility of designing the novel proactive biomaterials (that is, materials that elicit specific, timely, and desirable responses from surrounding cells and tissues) necessary for improved implant efficacy.
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