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仿生多孔 Ti6Al4V 植入物:一种通过凝胶铸造技术促进脊柱融合的新型椎间融合器。

Biomimetic Porous Ti6Al4V Implants: A Novel Interbody Fusion Cage via Gel-Casting Technique to Promote Spine Fusion.

机构信息

Department of Orthopedics, Peking University Third Hospital, Beijing, 100191, China.

Department of Spine Surgery, Shandong Provincial Hospital Affiliated to Shandong First Medical University, Jinan, 250000, China.

出版信息

Adv Healthc Mater. 2024 Oct;13(27):e2400550. doi: 10.1002/adhm.202400550. Epub 2024 Jul 19.

Abstract

An interbody fusion cage (Cage) is crucial in spinal decompression and fusion procedures for restoring normal vertebral curvature and rebuilding spinal stability. Currently, these Cages suffer from issues related to mismatched elastic modulus and insufficient bone integration capability. Therefore, a gel-casting technique is utilized to fabricate a biomimetic porous titanium alloy material from Ti6Al4V powder. The biomimetic porous Ti6Al4V is compared with polyetheretherketone (PEEK) and 3D-printed Ti6Al4V materials and their respective Cages. Systematic validation is performed through mechanical testing, in vitro cell, in vivo rabbit bone defect implantation, and ovine anterior cervical discectomy and fusion experiments to evaluate the mechanical and biological performance of the materials. Although all three materials demonstrate good biocompatibility and osseointegration properties, the biomimetic porous Ti6Al4V, with its excellent mechanical properties and a structure closely resembling bone trabecular tissue, exhibited superior bone ingrowth and osseointegration performance. Compared to the PEEK and 3D-printed Ti6Al4V Cages, the biomimetic porous Ti6Al4V Cage outperforms in terms of intervertebral fusion performance, achieving excellent intervertebral fusion without the need for bone grafting, thereby enhancing cervical vertebra stability. This biomimetic porous Ti6Al4V Cage offers cost-effectiveness, presenting significant potential for clinical applications in spinal surgery.

摘要

椎间融合 cage( Cage)在减压和融合手术中至关重要,可恢复正常的脊柱曲率并重建脊柱稳定性。目前,这些 Cage存在弹性模量不匹配和骨整合能力不足等问题。因此,采用凝胶铸造技术,使用 Ti6Al4V 粉末制造仿生多孔钛合金材料。将仿生多孔 Ti6Al4V 与聚醚醚酮(PEEK)和 3D 打印 Ti6Al4V 材料及其各自的 Cage 进行比较,并通过机械测试、体外细胞、体内兔骨缺损植入以及绵羊颈椎前路椎间盘切除和融合实验进行系统验证,以评估材料的力学和生物学性能。虽然这三种材料均表现出良好的生物相容性和骨整合特性,但仿生多孔 Ti6Al4V 由于具有出色的机械性能和与骨小梁组织非常相似的结构,因此具有更好的骨长入和骨整合性能。与 PEEK 和 3D 打印 Ti6Al4V Cage 相比,仿生多孔 Ti6Al4V Cage 在椎间融合性能方面表现更优,无需植骨即可实现出色的椎间融合,从而增强颈椎稳定性。这种仿生多孔 Ti6Al4V Cage 具有成本效益,在脊柱外科中具有重要的临床应用潜力。

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