Department of periodontology, Research institute of periodontal regeneration, Yonsei University College of Dentistry, Seoul, South Korea.
J Biomed Mater Res B Appl Biomater. 2019 Oct;107(7):2254-2262. doi: 10.1002/jbm.b.34317. Epub 2019 Jan 24.
The purpose of this study is to evaluate the efficacy of bone regeneration and volume maintenance of the three-dimensional (3D) structured biphasic calcium phosphate (BCP) block with porous hexahedron channels in a rabbit calvarial model. In this work, four circular defects (diameter: 8 mm) in calvarium of rabbits were randomly assigned to (1) negative control (control), (2) 3D hexahedron channel structured BCP block, (3) deproteinized bovine bone mineral particle, and (4) deproteinized porcine bone mineral particle. Animals were euthanized at 2 (n = 5) and 8 weeks (n = 5). Outcome measures included micro-computed tomography (CT) and histomorphometrical analysis. Results indicated that in micro-CT, BCP group showed the highest new bone volume with significant difference compared to control (p = 0.008) at 8 weeks. Histomorphometrically, total augmented area of BCP group was the highest with significant difference compared to control (p = 0.008) at 8 weeks. BCP group also maintained total volume of the original defect without collapsing. BCP block with 3D hexahedron channel structure seems to have favorable osteogenic and volume maintaining ability and highly porous structure might attribute to new bone formation. Further studies regarding the optimal internal structure and porosity of the BCP block bone substitute are needed. © 2019 Wiley Periodicals, Inc. J Biomed Mater Res Part B: Appl Biomater 107B: 2254-2262, 2019.
本研究旨在评估具有六方棱柱形多孔通道的三维(3D)双相磷酸钙(BCP)块在兔颅骨模型中的骨再生和体积维持效果。在这项工作中,将 4 个(直径:8mm)圆形缺陷随机分配到(1)阴性对照(对照组)、(2)3D 六方棱柱形通道结构 BCP 块、(3)去蛋白牛骨矿物质颗粒和(4)去蛋白猪骨矿物质颗粒。动物在 2 周(n = 5)和 8 周(n = 5)时处死。评估指标包括微计算机断层扫描(CT)和组织形态计量学分析。结果表明,在微 CT 中,与对照组相比,BCP 组在 8 周时表现出最高的新骨体积,差异具有统计学意义(p = 0.008)。组织形态计量学上,与对照组相比,BCP 组的总扩增面积在 8 周时最高,差异具有统计学意义(p = 0.008)。BCP 组还维持了原始缺陷的总容积,没有塌陷。具有 3D 六方棱柱形通道结构的 BCP 块似乎具有良好的成骨和体积维持能力,而高度多孔的结构可能有助于新骨形成。需要进一步研究 BCP 块骨替代物的最佳内部结构和孔隙率。© 2019 Wiley 期刊,公司。J 生物医学材料研究部分 B:应用生物材料 107B:2254-2262,2019。