Application of electrochemical deposition of CeO₂ nanoparticles modified 3D printed porous Ti6Al4V scaffold in bone defect repair.

Dechao Fan, Kun Ding, Junfeng Lu, Ziwen Zhao, Yuanfu Mao, Guofou Yang
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Abstract

Due to the limited self-regeneration capacity of bone, medical interventions is often required for large segmental bone defects. In this study, the application of porous titanium alloy (Ti6Al4V) scaffold in bone defect repair was investigated. Owing to its excellent mechanical properties and biocompatibility, Ti6Al4V is a preferred choice for orthopedic implants. To reduce the negative impact of its high elastic modulus on bone tissue, 3D printing technology was utilized to manufacture porous structures to approximate the elastic modulus of human bone, reducing the stress shielding phenomenon. In addition, electrochemical deposition technology was employed to deposit CeO2 nanoparticles (CNPs) onto the scaffold surface, aiming to improve its biological activity. According to the experimental findings, adding CNPs significantly enhanced the scaffold osteogenic capability. In vitro experiments on proliferation and expression of osteogenic markers verified its biological activity, while in vivo experiments further confirmed its potential to promote bone regeneration. Through detailed material characterization and biological evaluation, this study demonstrated the application prospect of 3D printed porous Ti6Al4V scaffold combined with CNPs, providing a new idea for the clinical repair of bone defects. .

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电化学沉积纳米tio2修饰3D打印多孔Ti6Al4V支架在骨缺损修复中的应用。
由于骨的自我再生能力有限,对于较大的节段性骨缺损往往需要医疗干预。本研究探讨多孔钛合金(Ti6Al4V)支架在骨缺损修复中的应用。由于其优异的力学性能和生物相容性,Ti6Al4V是骨科植入物的首选。为了减少其高弹性模量对骨组织的负面影响,利用3D打印技术制造多孔结构,以近似人骨的弹性模量,减少应力屏蔽现象。此外,采用电化学沉积技术将CeO2纳米颗粒(CNPs)沉积在支架表面,以提高其生物活性。实验结果显示,添加CNPs可显著增强支架成骨能力。体外成骨标志物增殖和表达实验证实了其生物活性,体内实验进一步证实了其促进骨再生的潜力。本研究通过详细的材料表征和生物学评价,展示了3D打印多孔Ti6Al4V支架联合CNPs的应用前景,为临床骨缺损修复提供了新的思路。
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