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一种采用微弧氧化和水热处理技术改性的新型多孔椎间融合器可加速绵羊的骨整合和脊柱融合。

A novel porous interbody fusion cage modified by microarc oxidation and hydrothermal treatment technology accelerate osseointegration and spinal fusion in sheep.

作者信息

Sun Jiang, Liu Shan-Shan, Zou Da, Ni Ren-Hua, Wei Chong-Bin, Wang Hao, Li Wei-Shi

机构信息

Peking University Third Hospital Beijing 100191 China

Engineering Research Center of Bone and Joint Precision Medicine Department of Orthopedics Beijing 100191 China.

出版信息

RSC Adv. 2024 Oct 9;14(44):31966-31978. doi: 10.1039/d3ra08185k.

Abstract

The clinical outcome of spinal fusion surgery is closely related to the success of bone fusion. Nowadays, the interbody cage which is used to replace the disc for spinal fusion is expected to have biological activity to improve osseointegration, especially for the aging and osteoporotic patients. Here, through micro-arc oxidation and hydrothermal treatment (MAO + HT), a bioactive CaP coating with micro/nano multilevel morphology was developed on 3D printed Ti6Al4V alloy then verified and in sheep anterior cervical decompression fusion model systematically. studies have confirmed the positive effects of characteristic micro/nano morphology and hydrophilicity of the coating formed after surface treatment on the adhesion, proliferation, and osteogenic differentiation of osteoblast precursor cells. Furthermore, the MAO + HT treated interbody cage showed a closer integration with the surrounding bone tissue, improved kinetic stability of the implanted segment, and significantly reduced incidence of fusion failure during the early postoperative period, which indicated that such a surface modification strategy is applicable to the biomechanical and biological microenvironment of the intervertebral space.

摘要

脊柱融合手术的临床结果与骨融合的成功密切相关。如今,用于替代椎间盘进行脊柱融合的椎间融合器有望具有生物活性以改善骨整合,尤其是对于老年和骨质疏松患者。在此,通过微弧氧化和水热处理(MAO + HT),在3D打印的Ti6Al4V合金上制备了具有微/纳米多级形貌的生物活性CaP涂层,然后在绵羊颈椎前路减压融合模型中进行了系统验证。研究证实,表面处理后形成的涂层的特征性微/纳米形貌和亲水性对成骨前体细胞的粘附、增殖和成骨分化具有积极作用。此外,经MAO + HT处理的椎间融合器与周围骨组织的融合更紧密,植入节段的动力学稳定性得到改善,术后早期融合失败的发生率显著降低,这表明这种表面改性策略适用于椎间隙的生物力学和生物微环境。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c97c/11462409/ed3c9b00aac8/d3ra08185k-f1.jpg

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