在不锈钢上涂覆无定形二氧化钛纳米涂层,以改善其生物反应。

Victor I Garcia-Perez, Kelly M Hotchkiss, Phaedra Silva-Bermudez, Miryam Martínez Hernández, Gina Prado-Prone, Rene Olivares-Navarrete, Sandra E Rodil, Argelia Almaguer-Flores
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引用次数: 0

摘要

本研究深入探讨了无定形氧化钛(aTiO2)纳米涂层在增强非钛基金属骨科植入物各关键方面的潜力。这些植入物,如医用级不锈钢(SS),广泛用于要求高强度和耐用性的骨科设备。通过磁控溅射沉积的二氧化钛(aTiO2)纳米涂层是一种独特的尝试,它可以改善骨生成、炎症反应,并减少细菌在不锈钢基底上的定植。对比样品包括未涂层的 SS 和喷砂/酸蚀钛基底(钛)。使用人类间充质干细胞(MSCs)和原代小鼠巨噬细胞对生物效应进行了评估。用两种需氧病原体(金黄色葡萄球菌和表皮葡萄球菌)和一种代表口腔牙齿生物膜的厌氧细菌群进行了细菌测试。涂层增强了间充质干细胞的成骨细胞分化,并表现出与钛表面相似的反应。在 aTiO2 纳米涂层和 Ti 表面培养的巨噬细胞表现出相似的抗炎表型。最重要的是,与未涂层的 SS 基底相比,在各种测试物种上观察到的细菌定植减少了,这进一步支持了 aTiO2 纳米涂层在生物医学应用中的潜力。这将大大提高钛以外的金属生物医学设备的性能。
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Amorphous TiO2nano-coating on stainless steel to improve its biological response.

This study delves into the potential of amorphous titanium oxide (aTiO2) nano-coating to enhance various critical aspects of non-Ti-based metallic orthopedic implants. These implants, such as medical-grade stainless steel (SS), are widely used for orthopedic devices that demand high strength and durability. The aTiO2nano-coating, deposited via magnetron sputtering, is a unique attempt to improve the osteogenesis, the inflammatory response, and to reduce bacterial colonization on SS substrates. The study characterized the nanocoated surfaces (SS-a TiO2) in topography, roughness, wettability, and chemical composition. Comparative samples included uncoated SS and sandblasted/acid-etched Ti substrates (Ti). The biological effects were assessed using human mesenchymal stem cells (MSCs) and primary murine macrophages. Bacterial tests were carried out with two aerobic pathogens (S. aureusandS. epidermidis) and an anaerobic bacterial consortium representing an oral dental biofilm. Results from this study provide strong evidence of the positive effects of the aTiO2nano-coating on SS surfaces. The coating enhanced MSC osteoblastic differentiation and exhibited a response similar to that observed on Ti surfaces. Macrophages cultured on aTiO2nano-coating and Ti surfaces showed comparable anti-inflammatory phenotypes. Most significantly, a reduction in bacterial colonization across tested species was observed compared to uncoated SS substrates, further supporting the potential of aTiO2nano-coating in biomedical applications. The findings underscore the potential of magnetron-sputtering deposition of aTiO2nano-coating on non-Ti metallic surfaces such as medical-grade SS as a viable strategy to enhance osteoinductive factors and decrease pathogenic bacterial adhesion. This could significantly improve the performance of metallic-based biomedical devices beyond titanium.

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