The effect of the dual scale surface topography of a surface-modified titanium alloy on its bactericidal activity against Pseudomonas aeruginosa†

IF 4.6 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY RSC Advances Pub Date : 2025-03-06 DOI:10.1039/D4RA07843H
S. W. M. Amal Ishantha Senevirathne and Prasad K. D. V. Yarlagadda
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Abstract

The rapid advancement of antibacterial nanostructured surfaces indicates that they will soon be integrated into real-world applications. However, despite notable progress, a comprehensive understanding of the antibacterial properties of nanostructures remains elusive, posing a critical barrier to the translation of this in vitro technology into practical applications. Among the numerous antibacterial nanostructures developed, nanowire structures play an important role due to their enhanced efficacy against bacteria and viruses and their ease of fabrication. Antibacterial nanowire structures exhibit the dual capability of lysing bacteria upon surface adhesion and mitigating bacterial colonization. The interplay of surface energy significantly influences bacterial adhesion, and macro surface roughness appears to be a pivotal determining factor. Macro-scale surface roughness not only modulates surface energy but also results in micro-scale topographical features that impact the bactericidal efficacy of nanowire structures. The integration of nanofabrication techniques on surfaces with macro-scale roughness yields multi-hierarchical micro- and nanoscale features, thereby possibly amplifying the bactericidal effect. Pseudomonas aeruginosa is an opportunistic pathogen that can cause serious infections. Moreover, this species has a higher risk of developing antibiotic resistance, which makes treatments for infections extremely difficult. Nanowire structures have demonstrated higher efficacy against P. aeruginosa species, making it a good alternative for fighting P. aeruginosa infections. This study demonstrates that heightened surface roughness amplifies the bactericidal potency of nanowire structures against P. aeruginosa bacterial species. The bactericidal effect reaches its maximum when the average surface roughness value is close to the bacterial cell size. This is contrary to the conventional assumption that the substrate surface must be smooth for the nanostructures to work, as the nanowire structures exhibit robust bactericidal efficacy, even when fabricated on rough surfaces. Therefore, the applicability of bactericidal nanostructures is expanded beyond smooth substrates. Consequently, these nanostructures can be effectively deployed on rugged industrial surfaces, broadening their potential impact across a diverse array of sectors. The widespread adoption of this nanotechnology promises transformative benefits not only to the medical sector but also to various industries. Moreover, by curbing bacterial infections, nanostructured surfaces hold the potential to reduce mortality rates and yield more direct economic dividends through waste reduction and enhanced safety. Ultimately, the widespread implementation of antibacterial nanowire technology stands poised to improve societal well-being and quality of life.

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表面改性钛合金双尺度表面形貌对其对铜绿假单胞菌†杀菌活性的影响
抗菌纳米结构表面的快速发展表明它们将很快融入现实世界的应用中。然而,尽管取得了显著进展,但对纳米结构抗菌特性的全面了解仍然难以捉摸,这对将体外技术转化为实际应用构成了关键障碍。在众多已开发的抗菌纳米结构中,纳米线结构因其对细菌和病毒的抗性增强和易于制造而发挥着重要作用。抗菌纳米线结构具有裂解细菌表面粘附和减轻细菌定植的双重能力。表面能的相互作用显著影响细菌粘附,宏观表面粗糙度似乎是一个关键的决定因素。宏观尺度的表面粗糙度不仅调节表面能,而且还导致微观尺度的地形特征,影响纳米线结构的杀菌效果。纳米加工技术在具有宏观尺度粗糙度的表面上的集成产生了多层次的微纳米尺度特征,从而可能扩大杀菌效果。铜绿假单胞菌是一种机会致病菌,可引起严重感染。此外,这一物种产生抗生素耐药性的风险更高,这使得治疗感染变得极其困难。纳米线结构对铜绿假单胞菌(P. aeruginosa)有较高的抗感染效果,是抗铜绿假单胞菌(P. aeruginosa)感染的良好选择。该研究表明,提高表面粗糙度可以增强纳米线结构对铜绿假单胞菌的杀菌能力。当平均表面粗糙度值接近细菌细胞大小时,杀菌效果达到最大。这与传统的假设相反,即纳米结构的衬底表面必须是光滑的,因为纳米线结构即使在粗糙的表面上制造,也表现出强大的杀菌功效。因此,抗菌纳米结构的适用性扩展到光滑基底之外。因此,这些纳米结构可以有效地部署在崎岖的工业表面,扩大其在各种部门的潜在影响。这种纳米技术的广泛应用不仅给医疗部门带来了变革性的好处,也给各行各业带来了好处。此外,通过抑制细菌感染,纳米结构表面具有降低死亡率的潜力,并通过减少废物和提高安全性产生更直接的经济红利。最终,抗菌纳米线技术的广泛应用有望改善社会福祉和生活质量。
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来源期刊
RSC Advances
RSC Advances chemical sciences-
CiteScore
7.50
自引率
2.60%
发文量
3116
审稿时长
1.6 months
期刊介绍: An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.
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