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Effect of titanium surface topography on plasma deposition of antibacterial polymer coatings

机译:钛表面形貌对抗菌聚合物涂料血浆沉积的影响

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摘要

Plasma processing, e.g., functionalisation and deposition of antibacterial coatings, is often used to enhance surface properties of biomaterials. Plasma is, however, a non-uniform active medium, and the result of processing depends on the nature of both the plasma and the substratum. Here we show that when an antibacterial coating (i.e., polyterpenol) is plasma polymerised onto four types of titanium substrata that differ in their micro-and nano-scale topography (but not the bulk chemistry), the distribution of functional groups, e.g., -OH and -C=O, in the polymer across the surface differs sufficiently, and so does the antibacterial activity of the resulting material system. While the addition of a coating hinders biofilm formation by Staphylococcus aureus and Pseudomonas aeruginosa, the bactericidal effect is significantly stronger in polymers deposited onto surfaces possessing lower degrees of nanoscale roughness, e.g., substrata after mechanical and chemical polishing. The reduced antibacterial efficacy of polymers on substrata with greater surface roughness (e.g., on mechanically polished or lotus leaf-like surfaces) is attributed to a greater extent of thickness non-uniformity and heterogeneity in the functional group distribution across the surface. These findings suggest that the magnitude and distribution of topographical features of the substratum should be considered when designing plasma-enabled surface modification strategies.
机译:血浆加工,例如抗菌涂料的官能化和沉积,通常用于增强生物材料的表面性质。然而,等离子体是非均匀的活性培养基,并且加工结果取决于血浆和下皮的性质。在这里,我们表明,当抗菌涂层(即,POLETERPENOL)被聚合到其微且纳米级地形(但不是散装化学)的四种类型的钛亚亚替钛基质中,官能团的分布,例如 - OH和-C = O,在表面上的聚合物中足够不同,因此所得材料体系的抗菌活性也是如此。虽然通过金黄色葡萄球菌和假单胞菌铜绿假单胞菌添加了涂层的生物膜形成,但在沉积在具有较低纳米级粗糙度的表面上的聚合物中,杀菌效果显着更强,例如,在机械和化学抛光之后的副数据。聚合物对具有更大表面粗糙度(例如,机械抛光或莲花状表面)的抗菌效果降低(例如,在机械抛光或莲花状表面上)归因于表面上官能团分布中的厚度不均匀性和异质性。这些研究结果表明,在设计支持等离子体的表面改性策略时,应考虑底层的地形特征的大小和分布。

著录项

  • 来源
    《Applied Surface Science》 |2020年第15期|146375.1-146375.16|共16页
  • 作者单位

    School of Science College of Science Engineering and Health RMIT University Melbourne 3000 VIC Australia;

    Research School of Electrical Energy and Materials Engineering The Australian National University ACT 2601 Australia Institute for Future Environments Queensland University of Technology Brisbane 4000 QLD Australia Plasma Sources and Application Center/Space Propulsion Centre Singapore NIE and Institute of Advanced Studies Nanyang Technological University Singapore College of Science & Engineering James Cook University Townsville 4810 QLD Australia;

    School of Science College of Science Engineering and Health RMIT University Melbourne 3000 VIC Australia;

    Institute for Future Environments Queensland University of Technology Brisbane 4000 QLD Australia Plasma Sources and Application Center/Space Propulsion Centre Singapore NIE and Institute of Advanced Studies Nanyang Technological University Singapore;

    College of Science & Engineering James Cook University Townsville 4810 QLD Australia;

    Department of Materials Science and Engineering Monash University Clayton 3800 VIC Australia;

    Department of Materials Science and Engineering Monash University Clayton 3800 VIC Australia;

    Laser Zentrum Hannover e.V. Hollerithallee 8 30419 Hannover Germany;

    Laser Zentrum Hannover e.V. Hollerithallee 8 30419 Hannover Germany;

    Department of Chemistry and Biotechnology Swinburne University of Technology Hawthorn 3122 VIC Australia;

    School of Science College of Science Engineering and Health RMIT University Melbourne 3000 VIC Australia;

    School of Science College of Science Engineering and Health RMIT University Melbourne 3000 VIC Australia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Titanium surfaces; Polyterpenol; Plasma polymerisation; Bacterial adhesion; Staphylococcus aureus; Pseudomonas aeruginosa; Bioimplant materials;

    机译:钛表面;Polyterpenol;血浆聚合;细菌粘附;金黄色葡萄球菌;假单胞菌铜绿假单胞菌;生物蛋白材料;

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