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Bio-mimicking nano and micro-structured surface fabrication for antibacterial properties in medical implants

机译:生物仿制的纳米和微结构表面加工可用于医用植入物的抗菌性能

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摘要

Orthopaedic and dental implants have become a staple of the medical industry and with an ageing population and growing culture for active lifestyles, this trend is forecast to continue. In accordance with the increased demand for implants, failure rates, particularly those caused by bacterial infection, need to be reduced. The past two decades have led to developments in antibiotics and antibacterial coatings to reduce revision surgery and death rates caused by infection. The limited effectiveness of these approaches has spurred research into nano-textured surfaces, designed to mimic the bactericidal properties of some animal, plant and insect species, and their topographical features. This review discusses the surface structures of cicada, dragonfly and butterfly wings, shark skin, gecko feet, taro and lotus leaves, emphasising the relationship between nano-structures and high surface contact angles on self-cleaning and bactericidal properties. Comparison of these surfaces shows large variations in structure dimension and configuration, indicating that there is no one particular surface structure that exhibits bactericidal behaviour against all types of microorganisms. Recent bio-mimicking fabrication methods are explored, finding hydrothermal synthesis to be the most commonly used technique, due to its environmentally friendly nature and relative simplicity compared to other methods. In addition, current proposed bactericidal mechanisms between bacteria cells and nano-textured surfaces are presented and discussed. These models could be improved by including additional parameters such as biological cell membrane properties, adhesion forces, bacteria dynamics and nano-structure mechanical properties. This paper lastly reviews the mechanical stability and cytotoxicity of micro and nano-structures and materials. While the future of nano-biomaterials is promising, long-term effects of micro and nano-structures in the body must be established before nano-textures can be used on orthopaedic implant surfaces as way of inhibiting bacterial adhesion.
机译:骨科和牙科植入物已成为医疗行业的重要组成部分,并且随着人口老龄化和积极生活方式的不断发展,这种趋势预计还将持续。根据对植入物的增加的需求,需要降低失败率,尤其是由细菌感染引起的失败率。在过去的二十年中,抗生素和抗菌涂层的发展导致减少翻新手术和感染引起的死亡率。这些方法的有限有效性刺激了对纳米纹理表面的研究,这些表面旨在模仿某些动植物和昆虫物种的杀菌特性及其地形特征。这篇综述讨论了蝉,蜻蜓和蝴蝶的翅膀,鲨鱼皮,壁虎脚,芋头和荷叶的表面结构,着重强调了纳米结构和高表面接触角之间对自洁和杀菌性能的关系。这些表面的比较显示出结构尺寸和构型的巨大变化,表明没有一种特定的表面结构对所有类型的微生物均表现出杀菌行为。探索了最近的模拟生物的制造方法,发现水热合成是最常用的技术,因为与其他方法相比,它的环保性质和相对简单性。此外,目前提出并讨论了细菌细胞与纳米纹理表面之间的杀菌机制。通过包括其他参数,例如生物细胞膜特性,粘附力,细菌动力学和纳米结构机械特性,可以改进这些模型。本文最后综述了微,纳米结构和材料的机械稳定性和细胞毒性。尽管纳米生物材料的未来是光明的,但在将纳米纹理用于整形外科植入物表面以抑制细菌粘附的方式之前,必须确定体内微结构和纳米结构的长期作用。

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