Tamimi Faleh, Kumarasami Balamurugan, Doillon Charles, Gbureck Uwe, Le Nihouannen Damien, Cabarcos Enrique Lopez, Barralet Jake E
Faculty of Dentistry, McGill University, Montreal, Quebec, Canada.
Acta Biomater. 2008 Sep;4(5):1315-21. doi: 10.1016/j.actbio.2008.04.003. Epub 2008 Apr 25.
Brushite-based biomaterials are of special interest in bone regeneration due to their biocompatibility and biodegradability; on the other hand, collagen is a well-known osteoconductive biomaterial. In the present study a new brushite-collagen composite biomaterial is reported. This new biomaterial was prepared by combining citric acid/collagen type I solutions with a brushite cement powder. The obtained biomaterial was a cement paste, with improved handling properties. The effect of collagen on the setting reaction of brushite cement was studied, and was found to speed up the cement setting reaction. The cement paste set into a hard ceramic material within 18.5+/-2.1min and had compressive strength similar to that of spongeous bone (48.9+/-5.9MPa in dry conditions and 12.7+/-1.5MPa in humid conditions). The combination of collagen with citric acid revealed an interesting synergistic effect on the compressive strength of the composite material. Moreover, this new biomaterial had excellent cohesion properties (ninefold better than brushite cement), and high cellular adhesion capacity (threefold higher than brushite cement). The composite biomaterial described in this study combines good handling properties, compressive strength, cohesion and cell adhesion capacity, along with the osteoconductive and biodegradable properties inherent in brushite and in collagen-based biomaterials.
由于其生物相容性和生物可降解性,透钙磷石基生物材料在骨再生方面具有特殊的意义;另一方面,胶原蛋白是一种著名的骨传导性生物材料。在本研究中,报道了一种新型的透钙磷石-胶原蛋白复合生物材料。这种新型生物材料是通过将柠檬酸/ I型胶原蛋白溶液与透钙磷石水泥粉末混合制备而成。所得到的生物材料是一种水泥浆体,其操作性能得到了改善。研究了胶原蛋白对透钙磷石水泥凝结反应的影响,发现其能加速水泥的凝结反应。该水泥浆体在18.5±2.1分钟内凝固成一种坚硬的陶瓷材料,其抗压强度与松质骨相似(干燥条件下为48.9±5.9MPa,潮湿条件下为12.7±1.5MPa)。胶原蛋白与柠檬酸的组合对复合材料的抗压强度显示出有趣的协同效应。此外,这种新型生物材料具有优异的粘结性能(比透钙磷石水泥好九倍)和高细胞粘附能力(比透钙磷石水泥高三倍)。本研究中描述的复合生物材料兼具良好的操作性能、抗压强度、粘结性和细胞粘附能力,以及透钙磷石和胶原蛋白基生物材料固有的骨传导性和生物可降解性。