Constructing a 3D-printable, bioceramic sheathed articular spacer assembly for infected hip arthroplasty

Yuan Zhang , Jie Zhu , Zhibing Wang , Yue Zhou , Xia Zhang
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引用次数: 9

Abstract

Total hip arthroplasty (THA) has progressed to be one of the most cost-effective surgical procedures to relieve pain and restore function to the pathological hip. Official retrospective statistics revealed over 500,000 cases of THA were performed per annum in the US alone, but failure cases brought about more than 40,000 revision procedures among them. The revision surgery is usually hard to manipulate due to the formidable difficulty of repairing the critical bone defect. Plenty of attempts aiming at tackling this problem have been dedicated by both tissue engineering and clinical investigators. Despite of the initial success, it is still a great challenge to overcome atypical intertrochanteric and diaphyseal defects of proximal femur to reach a satisfied therapeutic outcome in terms of long-term survivorship of the prosthesis. Given the interdisciplinary integration of biomaterial fabrication, bone tissue engineering, rapid prototyping, and biomacromolecule/drug delivery, we propose a hypothesis to construct a biphasic articular spacer to reach the dual goal of infection control and bone regeneration in this study. To be specific, this complex is consisted by a geometry-specific calcium phosphate sheath, derived from computer aided design and low temperature 3D printing, and an axial bone cement pillar delivering antibiotics. Theoretically, this modularized spacer possesses the potency of enhanced osteogenesis, controlled release of specific drugs, and co-delivery of growth factors. If this strategy is validated, further effort can be made to strengthen the printability of calcium phosphate using the 3D printing technique, and to accelerate its translation from lab to clinics.

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构建用于感染髋关节置换术的3d打印生物陶瓷护套关节垫片组件
全髋关节置换术(THA)已发展成为最具成本效益的外科手术之一,以减轻疼痛和恢复功能的病理髋关节。官方回顾性统计数据显示,仅在美国,每年就有50多万例THA手术,但其中失败的病例导致了4万多例翻修手术。由于修复严重骨缺损的难度很大,翻修手术通常难以操作。组织工程和临床研究人员致力于解决这一问题的大量尝试。尽管取得了初步的成功,但克服股骨近端非典型粗隆间和骨干缺损,以达到令人满意的治疗结果,在假体的长期存活方面仍然是一个巨大的挑战。考虑到生物材料制造、骨组织工程、快速成型、生物大分子/药物传递等跨学科的融合,我们提出了构建双相关节间隔器的假设,以达到感染控制和骨再生的双重目标。具体来说,该复合物由计算机辅助设计和低温3D打印衍生的几何特异性磷酸钙护套和提供抗生素的轴向骨水泥柱组成。理论上,这种模块化的间隔物具有促进成骨、控制特定药物的释放和生长因子的共同递送的效力。如果这一策略得到验证,可以进一步努力加强使用3D打印技术的磷酸钙的可打印性,并加速其从实验室到临床的转化。
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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