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军团菌定植与铜绿假单胞菌生物膜内的 3D 空间位置

Legionella colonization and 3D spatial location within a Pseudomonas biofilm.

机构信息

LEPABE - Laboratory for Process Engineering, Environment, Biotechnology and Energy, Faculty of Engineering, University of Porto, Rua Dr. Roberto Frias, 4200-465, Porto, Portugal.

ALiCE - Associate Laboratory in Chemical Engineering, Faculty of Engineering, University of Porto, Rua Dr. Roberto Frias, 4200-465, Porto, Portugal.

出版信息

Sci Rep. 2024 Jul 22;14(1):16781. doi: 10.1038/s41598-024-67712-4.

Abstract

Biofilms are known to be critical for Legionella settlement in engineered water systems and are often associated with Legionnaire's Disease events. One of the key features of biofilms is their heterogeneous three-dimensional structure which supports the establishment of microbial interactions and confers protection to microorganisms. This work addresses the impact of Legionella pneumophila colonization of a Pseudomonas fluorescens biofilm, as information about the interactions between Legionella and biofilm structures is scarce. It combines a set of meso- and microscale biofilm analyses (Optical Coherence Tomography, Episcopic Differential Interference Contrast coupled with Epifluorescence Microscopy and Confocal Laser Scanning Microscopy) with PNA-FISH labelled L. pneumophila to tackle the following questions: (a) does the biofilm structure change upon L. pneumophila biofilm colonization?; (b) what happens to L. pneumophila within the biofilm over time and (c) where is L. pneumophila preferentially located within the biofilm? Results showed that P. fluorescens structure did not significantly change upon L. pneumophila colonization, indicating the competitive advantage of the first colonizer. Imaging of PNA-labelled L. pneumophila showed that compared to standard culture recovery it colonized to a greater extent the 3-day-old P. fluorescens biofilms, presumably entering in VBNC state by the end of the experiment. L. pneumophila was mostly located in the bottom regions of the biofilm, which is consistent with the physiological requirements of both bacteria and confers enhanced Legionella protection against external aggressions. The present study provides an expedited methodological approach to address specific systematic laboratory studies concerning the interactions between L. pneumophila and biofilm structure that can provide, in the future, insights for public health Legionella management of water systems.

摘要

生物膜是军团菌在工程水系统中定居的关键,并且通常与军团病事件有关。生物膜的一个关键特征是其异质的三维结构,它支持微生物相互作用的建立,并为微生物提供保护。这项工作解决了铜绿假单胞菌生物膜中嗜肺军团菌定殖的问题,因为关于军团菌和生物膜结构之间相互作用的信息很少。它结合了一系列中尺度和微尺度生物膜分析(光学相干断层扫描、共焦激光扫描显微镜)和 PNA-FISH 标记的嗜肺军团菌,以解决以下问题:(a)生物膜结构在嗜肺军团菌生物膜定殖时是否会发生变化?;(b)随着时间的推移,生物膜内的嗜肺军团菌会发生什么变化;(c)嗜肺军团菌在生物膜内的优先位置在哪里?结果表明,铜绿假单胞菌结构在嗜肺军团菌定殖时没有明显变化,这表明了最初定殖者的竞争优势。对 PNA 标记的嗜肺军团菌的成像表明,与标准培养回收相比,它在 3 天龄的铜绿假单胞菌生物膜中定殖程度更大,推测在实验结束时进入 VBNC 状态。嗜肺军团菌主要位于生物膜的底部区域,这与两种细菌的生理要求一致,并赋予军团菌更强的抵御外部侵害的保护。本研究提供了一种加速的方法学方法来解决关于嗜肺军团菌和生物膜结构之间相互作用的特定系统实验室研究,这可以为未来的水系统公共卫生军团菌管理提供见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7b9d/11263398/5643e674d278/41598_2024_67712_Fig1_HTML.jpg

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