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基于非热常压等离子体的纳米结构钛的增强骨整合和生物去污。

Enhanced Osseointegration and Bio-Decontamination of Nanostructured Titanium Based on Non-Thermal Atmospheric Pressure Plasma.

机构信息

Department of Removable Prosthodontics and Occlusion, Osaka Dental University, 8-1, Kuzuhahanazono-cho, Hirakata-shi, Osaka 573-1121, Japan.

The Institute of Scientific and Industrial Research, Osaka University, Suita, Osaka 565-0871, Japan.

出版信息

Int J Mol Sci. 2020 May 16;21(10):3533. doi: 10.3390/ijms21103533.

Abstract

Alkali-treated titanate layer with nanonetwork structures (TNS) is a promising surface for improving osseointegration capacity in implants. Nevertheless, there is a risk of device failure as a result of insufficient resistance to biofilm contamination. This study tested whether treatment using a handheld non-thermal plasma device could efficiently eliminate biofilm contamination without destroying the surface nanostructure while re-establishing a surface that promoted new bone generation. TNS specimens were treated by a piezoelectric direct discharge (PDD) plasma generator. The effect of decontamination was performed utilizing . The evaluation of initial cell attachment with adhesion images, alkaline phosphatase activity, extracellular matrix mineralization, and expression of genes related to osteogenesis was performed using rat bone marrow mesenchymal stem cells, and the bone response were evaluated in vivo using a rat femur model. Nanotopography and surface roughness did not significantly differ before and after plasma treatments. Cell and bone formation activity were improved by TNS plasma treatment. Furthermore, plasma treatment effectively eliminated biofilm contamination from the surface. These results suggested that this plasma treatment may be a promising approach for the treatment of nanomaterials immediately before implantation and a therapeutic strategy for peri-implantitis.

摘要

碱处理的纳米网络结构钛酸盐层(TNS)是一种提高植入物骨整合能力的有前途的表面。然而,由于对生物膜污染的抵抗力不足,存在器械失效的风险。本研究测试了使用手持式非热等离子体装置处理是否可以在不破坏表面纳米结构的情况下有效消除生物膜污染,同时重新建立促进新骨生成的表面。TNS 标本采用压电直接放电(PDD)等离子体发生器进行处理。使用 进行了去污效果评估。使用大鼠骨髓间充质干细胞进行了初始细胞附着的粘附图像、碱性磷酸酶活性、细胞外基质矿化以及与成骨相关基因表达的评估,并使用大鼠股骨模型进行了体内骨反应评估。等离子体处理前后的纳米形貌和表面粗糙度没有显著差异。TNS 等离子体处理可提高细胞和骨形成活性。此外,等离子体处理可有效消除表面的生物膜污染。这些结果表明,这种等离子体处理可能是植入前处理纳米材料的一种很有前途的方法,也是治疗种植体周围炎的一种策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ab08/7278937/cf330d8e536b/ijms-21-03533-g001.jpg

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