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使用扫描共聚焦激光显微镜和落射式微分干涉对比显微镜快速检测生物膜和黏附病原体。

Rapid detection of biofilms and adherent pathogens using scanning confocal laser microscopy and episcopic differential interference contrast microscopy.

作者信息

Keevil C W

机构信息

Environmental Healthcare Unit, School of Biological Sciences, University of Southampton, Southampton, UK.

出版信息

Water Sci Technol. 2003;47(5):105-16.

Abstract

Knowledge of biofilm structure and function has changed significantly in the last few years due to advances in light microscopy. One pertinent example is the use of scanning confocal laser microscopy (SCLM) to visualise corrosion pits caused by the biofilm mosaic footprint on corroding metal surfaces. Nevertheless, SCLM has some limitations as to its widespread use, including cost, inability to observe motile bacteria and eukaryotic grazers within biofilms, and difficulty to scan a curved surface. By contrast, episcopic differential interference contrast (EDIC) microscopy has provided a rapid, real time analysis of biofilms on opaque, curved, natural or man-made surfaces without the need for cover slips and oil. EDIC, coupled with epi-fluorescence (EDIC/EF), microscopy has been used successfully to visualise the 3-D biofilm structure, physiological niches, protozoal grazing and iron biomineralization, and the location of specific pathogens such as Legionella pneumophila, Campylobacter jejuni and Cryptosporidium parvum. These species were identified using gold nanoparticles or fluorophores coupled to monoclonal antibodies or 16S rRNA probes, respectively. Among its many potential uses, the EDIC technique will provide a rapid procedure to facilitate the calibration of the modern generation of biofilm-sensing electrodes.

摘要

在过去几年中,由于光学显微镜技术的进步,人们对生物膜结构和功能的认识发生了显著变化。一个相关的例子是使用扫描共聚焦激光显微镜(SCLM)来观察生物膜镶嵌足迹在金属腐蚀表面上造成的腐蚀坑。然而,SCLM在广泛应用方面存在一些局限性,包括成本高、无法观察生物膜内的运动细菌和真核食草动物以及难以扫描曲面。相比之下,落射式微分干涉对比(EDIC)显微镜提供了一种快速、实时分析不透明、弯曲、天然或人造表面上生物膜的方法,无需盖玻片和油。EDIC与落射荧光(EDIC/EF)显微镜相结合,已成功用于观察三维生物膜结构、生理生态位、原生动物摄食和铁生物矿化,以及特定病原体如嗜肺军团菌、空肠弯曲菌和微小隐孢子虫的位置。这些物种分别使用与单克隆抗体或16S rRNA探针偶联的金纳米颗粒或荧光团进行鉴定。在其众多潜在用途中,EDIC技术将提供一种快速程序,以促进现代生物膜传感电极的校准。

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