Tovar Nick, Jimbo Ryo, Witek Lukasz, Anchieta Rodolfo, Yoo Daniel, Manne Lakshmipradha, Machado Lucas, Gangolli Riddhi, Coelho Paulo G
Department of Biomaterials and Biomimetics, New York University College of Dentistry, NY, USA.
Department of Prosthodontics, Faculty of Odontology, Malmo University, Sweden; Department of Applied Prosthodontics, Graduate School of Biomedical Sciences, Nagasaki University, Nagasaki, Japan.
Mater Sci Eng C Mater Biol Appl. 2014 Oct;43:472-80. doi: 10.1016/j.msec.2014.07.048. Epub 2014 Jul 21.
In this study, the physicochemical characteristics of calcium phosphate based bioactive ceramics of different compositions and blends presenting similar micro/nanoporosity and micrometer scale surface texture were characterized and evaluated in an in vivo model. Prior to the animal experiment, the porosity, surface area, particle size distribution, phase quantification, and dissolution of the materials tested were evaluated. The bone regenerative properties of the materials were evaluated using a rabbit calvaria model. After 2, 4, and 8 weeks, the animals were sacrificed and all samples were subjected to histologic observation and histomorphometric analysis. The material characterization showed that all materials tested presented variation in particle size, porosity and composition with different degrees of HA/TCP/lower stoichiometry phase ratios. Histologically, the calvarial defects presented temporal bone filling suggesting that all material groups were biocompatible and osteoconductive. Among the different materials tested, there were significant differences found in the amount of bone formation as a function of time. At 8 weeks, the micro/nanoporous material presenting ~55%TCP:45%HA composition ratio presented higher amounts of new bone regeneration relative to other blends and a decrease in the amount of soft tissue infiltration.
在本研究中,对具有相似微/纳米孔隙率和微米级表面纹理的不同组成和混合物的磷酸钙基生物活性陶瓷的物理化学特性进行了表征,并在体内模型中进行了评估。在动物实验之前,对测试材料的孔隙率、表面积、粒度分布、相定量和溶解情况进行了评估。使用兔颅骨模型评估材料的骨再生特性。在2周、4周和8周后,处死动物,并对所有样本进行组织学观察和组织形态计量分析。材料表征表明,所有测试材料在粒度、孔隙率和组成方面存在差异,具有不同程度的HA/TCP/较低化学计量比相比例。组织学上,颅骨缺损呈现出随时间的骨填充,表明所有材料组都具有生物相容性和骨传导性。在测试的不同材料中,发现骨形成量随时间存在显著差异。在8周时,呈现约55%TCP:45%HA组成比例的微/纳米多孔材料相对于其他混合物表现出更高的新骨再生量,并且软组织浸润量减少。