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铜掺杂 TiO2 纳米管涂层表面在层流条件下经 UVA 光照射对嗜肺军团菌的光催化杀菌效果。

Photocatalytic biocidal effect of copper doped TiO2 nanotube coated surfaces under laminar flow, illuminated with UVA light on Legionella pneumophila.

机构信息

Department of Sanitary Engineering, University of Ljubljana, Faculty of Health Sciences, Ljubljana, Slovenia.

Laboratory of Biophysics, "Jožef Stefan" Institute, Ljubljana, Slovenia.

出版信息

PLoS One. 2020 Jan 15;15(1):e0227574. doi: 10.1371/journal.pone.0227574. eCollection 2020.

Abstract

Legionella pneumophila can cause a potentially fatal form of humane pneumonia (Legionnaires' disease), which is most problematic in immunocompromised and in elderly people. Legionella species is present at low concentrations in soil, natural and artificial aquatic systems and is therefore constantly entering man-made water systems. The environment temperature for it's ideal growth range is between 32 and 42°C, thus hot water pipes represent ideal environment for spread of Legionella. The bacteria are dormant below 20°C and do not survive above 60°C. The primary method used to control the risk from Legionella is therefore water temperature control. There are several other effective treatments to prevent growth of Legionella in water systems, however current disinfection methods can be applied only intermittently thus allowing Legionella to grow in between treatments. Here we present an alternative disinfection method based on antibacterial coatings with Cu-TiO2 nanotubes deposited on preformed surfaces. In the experiment the microbiocidal efficiency of submicron coatings on polystyrene to the bacterium of the genus Legionella pneumophila with a potential use in a water supply system was tested. The treatment thus constantly prevents growth of Legionella pneumophila in presence of water at room temperature. Here we show that 24-hour illumination with low power UVA light source (15 W/m2 UVA illumination) of copper doped TiO2 nanotube coated surfaces is effective in preventing growth of Legionella pneumophila. Microbiocidal effects of Cu-TiO2 nanotube coatings were dependent on the flow of the medium and the intensity of UV-A light. It was determined that tested submicron coatings have microbiocidal effects specially in a non-flow or low-flow conditions, as in higher flow rates, probably to a greater possibility of Legionella pneumophila sedimentation on the coated polystyrene surfaces, meanwhile no significant differences among bacteria reduction was noted regarding to non or low flow of medium.

摘要

嗜肺军团菌可引起潜在致命性肺炎(军团病),在免疫功能低下和老年人中最为严重。军团菌属以低浓度存在于土壤、自然和人工水生系统中,因此不断进入人为水系统。其理想生长范围的环境温度在 32 到 42°C 之间,因此热水管是军团菌传播的理想环境。细菌在 20°C 以下休眠,在 60°C 以上无法存活。因此,控制军团菌风险的主要方法是控制水温。还有其他几种有效方法可以防止军团菌在水系统中生长,但目前的消毒方法只能间歇性地使用,从而允许军团菌在处理之间生长。在这里,我们提出了一种基于抗菌涂层的替代消毒方法,该方法将 Cu-TiO2 纳米管沉积在预制表面上。在实验中,测试了在聚苯乙烯上的亚微米涂层对嗜肺军团菌的杀菌效率,该方法可能用于供水系统。这种处理方法可在室温下持续防止嗜肺军团菌的生长。我们发现,用低功率 UVA 光源(15 W/m2 UVA 照度)进行 24 小时照射,可有效防止铜掺杂 TiO2 纳米管涂层表面嗜肺军团菌的生长。Cu-TiO2 纳米管涂层的杀菌效果取决于介质的流动和 UV-A 光的强度。研究表明,测试的亚微米涂层在非流动或低流动条件下具有杀菌效果,因为在较高的流速下,军团菌可能更容易沉降在涂有聚苯乙烯的表面上,同时在非流动或低流动条件下,细菌减少量没有显著差异。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/01bc/6961935/2df83623a24c/pone.0227574.g001.jpg

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