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万古霉素包裹水凝胶负载的微弧氧化3D打印多孔Ti6Al4V植入物用于感染性骨缺损:重建、抗感染及骨整合

Vancomycin-encapsulated hydrogel loaded microarc-oxidized 3D-printed porous Ti6Al4V implant for infected bone defects: Reconstruction, anti-infection, and osseointegration.

作者信息

Zhang Teng, Zhou Wenhao, Yang Wanliang, Bi Jingwei, Li Hao, Gao Xianlei, Zhang Baoliang, Shi Guidong, Li Ka, Wei Zhijian, Pan Xin, Feng Shiqing

机构信息

Department of Orthopedics, Qilu Hospital of Shandong University, Jinan, 250012, China.

Shaanxi Key Laboratory of Biomedical Metallic Materials, Northwest Institute for Non-ferrous Metal Research, Xi'an, 710016, China.

出版信息

Bioact Mater. 2024 Aug 21;42:18-31. doi: 10.1016/j.bioactmat.2024.07.035. eCollection 2024 Dec.

Abstract

Infected bone defect is a formidable clinical challenge. Conventional approaches to prevention and treatment for infected bone defects are unsatisfactory. The key elements of the treatment are bone defect reconstruction, anti-infection, and osteogenesis. Conventional treatment methods remain unsatisfactory owing to the absence of composite integrating materials with anti-infective, and osteogenic activities as well as proper mechanical strength at the same time. In this study, we fabricated a vancomycin-encapsulated hydrogel with bacteria-responsive release properties combined with a shaved porous (submicron-micron) three-dimensional-printed Ti6Al4V implant. The implant surface, modified with submicron-sized pores through microarc oxidation (MAO), showed enhanced osteogenic activity and integrated well with the hydrogel drug release system, enabling sustained vancomycin release. experiments underscored the commendable antibacterial ability, biosafety, and osteoinductive potential. Effective antibacterial and osteogenic abilities of the implant were further demonstrated in infected rabbit bone defects. These results showed that the vancomycin-encapsulated hydrogel-loaded microarc-oxidized 3D-printed porous Ti6Al4V can repair the infected bone defects with satisfactory anti-infection and osseointegration effects.

摘要

感染性骨缺损是一项严峻的临床挑战。传统的感染性骨缺损预防和治疗方法并不令人满意。治疗的关键要素包括骨缺损重建、抗感染和成骨。由于缺乏同时具有抗感染、成骨活性以及适当机械强度的复合整合材料,传统治疗方法仍然不尽人意。在本研究中,我们制备了一种具有细菌响应释放特性的万古霉素包封水凝胶,并将其与刮削多孔(亚微米-微米)三维打印的Ti6Al4V植入物相结合。通过微弧氧化(MAO)修饰的具有亚微米级孔隙的植入物表面显示出增强的成骨活性,并与水凝胶药物释放系统良好整合,实现了万古霉素的持续释放。实验强调了其值得称赞的抗菌能力、生物安全性和骨诱导潜力。在感染的兔骨缺损模型中进一步证明了该植入物有效的抗菌和成骨能力。这些结果表明,负载万古霉素包封水凝胶的微弧氧化3D打印多孔Ti6Al4V能够修复感染性骨缺损,具有令人满意的抗感染和骨整合效果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5f11/11388676/67694f2a0dbc/ga1.jpg

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