Omae Hiromichi, Mochizuki Yu, Yokoya Shin, Adachi Nobuo, Ochi Mitsuo
Department of Orthopaedic Surgery, Graduate School of Biomedical Sciences, Hiroshima University, 1-2-3 Kasumi, Hiroshima 734-8551, Japan.
J Biomed Mater Res A. 2006 Nov;79(2):329-37. doi: 10.1002/jbm.a.30797.
The purpose of this study was to evaluate histologically and biomechanically the interface between porous hydroxyapatite ceramics and a tendon grafted into ceramics, and to compare the interface in two ceramics with different porous structures: interconnected porous calcium hydroxyapatite ceramics (IP-CHA) with an effective porosity index (interpore diameter > 20 microm) of 63.6%, and porous calcium hydroxyapatite ceramics with less interconnection (HA-L) with an effective porosity index of 5.5%. The tendon-IP-CHA complex and the tendon-HA-L complex were implanted into the bone defects made in both knees of rabbits. With IP-CHA, abundant fibrous tissue, including vessels and collagen fiber continuity, was observed inside interface-region pores. The amount of osseous tissue in interface-region pores increased over time, and at 24 weeks after operation, the tendon was in direct contact with the osseous tissue in IP-CHA. With HA-L, the amount of fibrous tissue in interface-region pores was low and did not increase. The results of biomechanical analysis revealed that the maximum tendon pull-out load from IP-CHA was significantly higher than that from HA-L. With the porous hydroxyapatite ceramics having highly interconnecting porous structure, a bioactive interface was achieved between ceramics and grafted tendon. On the basis of these results, we conclude that bone defects, including tendon insertion, can be reconstructed using IP-CHA.
本研究的目的是从组织学和生物力学方面评估多孔羟基磷灰石陶瓷与移植到陶瓷中的肌腱之间的界面,并比较两种具有不同多孔结构的陶瓷中的界面:有效孔隙率指数(孔间直径>20微米)为63.6%的相互连通多孔羟基磷灰石陶瓷(IP-CHA),以及有效孔隙率指数为5.5%的连通性较差的多孔羟基磷灰石陶瓷(HA-L)。将肌腱-IP-CHA复合物和肌腱-HA-L复合物植入兔双膝制造的骨缺损处。对于IP-CHA,在界面区域孔隙内观察到丰富的纤维组织,包括血管和胶原纤维连续性。界面区域孔隙内的骨组织量随时间增加,术后24周时,肌腱与IP-CHA中的骨组织直接接触。对于HA-L,界面区域孔隙内的纤维组织量较少且没有增加。生物力学分析结果显示,IP-CHA的最大肌腱拔出负荷显著高于HA-L。对于具有高度相互连通多孔结构的多孔羟基磷灰石陶瓷,在陶瓷与移植肌腱之间实现了生物活性界面。基于这些结果,我们得出结论,包括肌腱附着处在内的骨缺损可以使用IP-CHA进行重建。