A translational murine model of aseptic loosening with osseointegration failure

IF 2.1 3区 医学 Q2 ORTHOPEDICS
Andrew L. Thomson, Vincentius J. Suhardi, Yingzhen Niu, Anastasia Oktarina, Kevin Döring, Christina Chao, Matthew B. Greenblatt, Lionel B. Ivashkiv, Mathias P. G. Bostrom, Xu Yang
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Abstract

An in vivo animal model of a weight-bearing intra-articular implant is crucial to the study of implant osseointegration and aseptic loosening caused by osseointegration failure. Osseointegration, defined as a direct structural and functional attachment between living bone tissue and the surface of a load-carrying implant, is essential for implant stability and considered a prerequisite for the long-term clinical success of implants in total joint arthroplasty. Compared to large animal models, murine models offer extensive genetic tools for tracing cell differentiation and proliferation. The 18- to 22-week-old C57BL/6J background mice underwent either press-fitted or loose implantation of a titanium implant, achieving osseointegration or fibrous integration. A protocol was developed for both versions of the procedure, including a description of the relevant anatomy. Samples were subjected to microcomputed tomography and underwent biomechanical testing to access osseointegration. Lastly, samples were fixed and embedded for histological evaluation. The absence of mineralized tissue and weakened maximum pull-out force in loose implantation samples indicated that these implants were less mechanically stable compared to the control at 4 weeks postoperation. Histological analysis demonstrated extensive fibrotic tissue in the peri-implant area of loose implantation samples and excellent implant osseointegration in press-fitted samples at 4 weeks. Both mechanically stable and unstable hemiarthroplasty models with either osseous ingrowth or a robust periprosthetic fibrosis were achieved in mice. We hope that this model can help address current limitations for in vivo study of aseptic loosening and lead to necessary translational benefits.

无菌性松动与骨结合失败的小鼠转化模型。
关节内负重种植体的体内动物模型对于研究种植体骨结合和骨结合失败引起的无菌性松动至关重要。骨结合是指活体骨组织与承重植入体表面在结构和功能上的直接附着,对植入体的稳定性至关重要,被认为是全关节成形术中植入体取得长期临床成功的先决条件。与大型动物模型相比,小鼠模型为追踪细胞分化和增殖提供了广泛的遗传工具。18至22周大的C57BL/6J背景小鼠接受了钛植入物的压入式或松动式植入,实现了骨结合或纤维结合。我们为这两种手术制定了操作规程,包括相关解剖结构的描述。对样本进行微计算机断层扫描,并进行生物力学测试,以检测骨结合情况。最后,对样本进行固定和包埋,以进行组织学评估。松动植入样本中矿化组织的缺失和最大拔出力的减弱表明,与对照组相比,这些植入物在术后 4 周的机械稳定性较差。组织学分析表明,松动种植样本的种植体周围区域存在大量纤维化组织,而加压安装样本的种植体在 4 周时骨结合良好。小鼠的半关节成形术模型既有机械稳定性,也有不稳定性,既有骨质增生,也有假体周围纤维化。我们希望该模型能有助于解决目前体内无菌性松动研究的局限性,并带来必要的转化效益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Orthopaedic Research®
Journal of Orthopaedic Research® 医学-整形外科
CiteScore
6.10
自引率
3.60%
发文量
261
审稿时长
3-6 weeks
期刊介绍: The Journal of Orthopaedic Research is the forum for the rapid publication of high quality reports of new information on the full spectrum of orthopaedic research, including life sciences, engineering, translational, and clinical studies.
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