生物材料
固定(群体遗传学)
材料科学
植入
生物医学工程
抗剪强度(土壤)
多孔性
3d打印
复合材料
医学
外科
生物
生态学
环境卫生
土壤水分
人口
作者
Michael Tänzer,Philip J. Chuang,C. G. Ngo,Song Li,Kevor S. TenHuisen
出处
期刊:The bone & joint journal
[British Editorial Society of Bone and Joint Surgery]
日期:2019-06-01
卷期号:101-B (6_Supple_B): 62-67
被引量:22
标识
DOI:10.1302/0301-620x.101b6.bjj-2018-1472.r1
摘要
The purpose of this study was to evaluate the biological fixation of a 3D printed porous implant, with and without different hydroxyapatite (HA) coatings, in a canine model.A canine transcortical model was used to evaluate the characteristics of bone ingrowth of Ti6Al4V cylindrical implants fabricated using laser rapid manufacturing (LRM). At four and 12 weeks post-implantation, we performed histological analysis and mechanical push-out testing on three groups of implants: a HA-free control (LRM), LRM with precipitated HA (LRM-PA), and LRM with plasma-sprayed HA (LRM-PSHA).Substantial bone ingrowth was observed in all LRM implants, with and without HA, at both time periods. Bone ingrowth increased from 42% to 52% at four weeks, to 60% to 65% at 12 weeks. Mechanical tests indicated a minimum shear fixation strength of 20 MPa to 24 MPa at four weeks, and 34 MPa to 40 MPa at 12 weeks. There was no significant difference in the amount of bone ingrowth or in the shear strength between the three implant types at either time period.At four and 12 weeks, the 3D printed porous implants exhibited consistent bone ingrowth and high mechanical shear strength. Based on the results of this study, we confirmed the suitability of this novel new additive manufacturing porous material for biological fixation by bone ingrowth. Cite this article: Bone Joint J 2019;101-B(6 Supple B):62-67.
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