微纳米结构双尺度修饰表面对钛种植体细胞生物相容性、骨诱导和抗菌性能的联合影响。

IF 5 3区 医学 Q1 ENGINEERING, BIOMEDICAL
Shaheer Maher, Nenad L Ignjatović, Miloš Lazarević, Sanja Petrović, Andrijana Žekić, Dusan Losic
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引用次数: 0

摘要

钛具有良好的力学性能和生物相容性,在生物医学领域有着广泛的应用。然而,种植体相关的细菌感染和不理想的骨整合仍然是重大的挑战。最近的研究表明,微纳米结构之间的相互作用可以提高生物相容性和抗菌性能。本研究探讨了微纳米结构的钛表面分层和双重表面形貌的协同效应,以证明它们能够促进细胞生物相容性和骨诱导,同时抑制细菌定植。结合选择性激光熔化(SLM)来创建微结构表面和水热过程来产生独特的纳米柱结构。通过将模拟细胞外基质的纳米尺度特征与影响细胞反应的微尺度地形相结合,我们实现了增强骨整合和抗菌性能之间的平衡。通过使用牙髓干细胞(DPSCs)的细胞分析,这些双尺度拓扑结构的物理化学特性得到了表征,显示出对长期细胞活力(MTT和NR测试中高于78% (p < 0.05),低水平的LDH释放和高水平的细胞迁移)和骨诱导(统计学显著(p < 0.0001) ALP活性增加和更高水平的钙化基质沉积的持续支持。与光滑的表面地形相比,ALP和OCN基因的上调)。对金黄色葡萄球菌和大肠杆菌的抑菌作用显著降低(p < 0.05)细菌附着和生物膜的形成。我们的研究结果强调了多尺度表面修饰作为下一代钛植入物的有前途的策略的潜力,为改善骨科和牙科应用的临床结果铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Combined Effects of Dual-Scale Modified Surface with Micro- and Nanostructures on the Cellular Biocompatibility, Osteoinduction, and Antibacterial Properties of Titanium Implants.

Titanium implants are widely used in biomedical applications due to their excellent mechanical properties and biocompatibility. However, implant-associated bacterial infections and suboptimal osseointegration remain significant challenges. Recent studies have demonstrated that the interplay between micro- and nanostructures can enhance both biocompatibility and antibacterial properties. This study explores the synergistic effects of hierarchical and dual surface topography on Ti surfaces with micro- and nanostructures to demonstrate their ability to promote cellular biocompatibility and osteoinduction while simultaneously inhibiting bacterial colonization. The combination of selective laser melting (SLM) to create micro-structured surfaces and hydrothermal processes is used to generate distinctive nanopillar structures. By integrating nanoscale features that mimic the extracellular matrix with microscale topographies that influence cellular responses, we achieve a balance between enhanced osseointegration and antimicrobial performance. The physicochemical properties of these dual-scale topographies are characterized through cellular assays using dental pulp stem cells (DPSCs), demonstrating sustained support for long-term cell viability (above 78% in MTT and NR assays (p < 0.05), low levels of LDH release, and high levels of cellular migration) and osteoinduction (statistically significant (p < 0.0001) ALP activity increase and higher levels of calcified matrix deposition, upregulation of ALP and OCN genes compared with smooth surface topographies). Their antibacterial properties against S. aureus and E. coli showed a significant reduction (p < 0.05) in bacterial attachment and biofilm formation. Our findings highlight the potential of multi-scale surface modifications as a promising strategy for next-generation titanium implants, paving the way for improved clinical outcomes in orthopedic and dental applications.

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来源期刊
Journal of Functional Biomaterials
Journal of Functional Biomaterials Engineering-Biomedical Engineering
CiteScore
4.60
自引率
4.20%
发文量
226
审稿时长
11 weeks
期刊介绍: Journal of Functional Biomaterials (JFB, ISSN 2079-4983) is an international and interdisciplinary scientific journal that publishes regular research papers (articles), reviews and short communications about applications of materials for biomedical use. JFB covers subjects from chemistry, pharmacy, biology, physics over to engineering. The journal focuses on the preparation, performance and use of functional biomaterials in biomedical devices and their behaviour in physiological environments. Our aim is to encourage scientists to publish their results in as much detail as possible. Therefore, there is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Several topical special issues will be published. Scope: adhesion, adsorption, biocompatibility, biohybrid materials, bio-inert materials, biomaterials, biomedical devices, biomimetic materials, bone repair, cardiovascular devices, ceramics, composite materials, dental implants, dental materials, drug delivery systems, functional biopolymers, glasses, hyper branched polymers, molecularly imprinted polymers (MIPs), nanomedicine, nanoparticles, nanotechnology, natural materials, self-assembly smart materials, stimuli responsive materials, surface modification, tissue devices, tissue engineering, tissue-derived materials, urological devices.
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