Ariyadasa S, Abeysekera G, Billington C, Fee C, Pang L
Institute of Environmental Science and Research, Christchurch, New Zealand.
School of Biological Sciences, University of Canterbury, Christchurch, New Zealand.
Lett Appl Microbiol. 2021 Aug;73(2):257-267. doi: 10.1111/lam.13510. Epub 2021 Jun 3.
Legionella pneumophila cell surface hydrophobicity and charge are important determinants of their mobility and persistence in engineered water systems (EWS). These surface properties may differ depending on the growth phase of L. pneumophila resulting in variable adhesion and persistence within EWS. We describe the growth-dependent variations in L. pneumophila cell surface hydrophobicity and surface charge using the microbial adhesion to hydrocarbon assay and microelectrophoresis, respectively, and their role in cell adhesion to stainless steel using a quartz crystal microbalance with dissipation (QCM-D) monitoring instrument. We observed a steady increase in L. pneumophila hydrophobicity during their lifecycle in culture media. Cell surfaces of stationary phase L. pneumophila were significantly more hydrophobic than their lag and midexponential counterparts. No significant changes in L. pneumophila cell surface charge were noted. Morphology of L. pneumophila remained relatively constant throughout their lifecycle. In the QCM-D study, lag and exponential phase L. pneumophila weakly adhered to stainless steel surfaces resulting in viscoelastic layers. In contrast, stationary phase bacteria were tightly and irreversibly bound to the surfaces, forming rigid layers. Our results suggest that the stationary phase of L. pneumophila would highly favour their adhesion to plumbing surfaces and persistence in EWS.
嗜肺军团菌的细胞表面疏水性和电荷是其在工程水系统(EWS)中移动性和持久性的重要决定因素。这些表面特性可能因嗜肺军团菌的生长阶段而异,从而导致其在EWS中的粘附和持久性各不相同。我们分别使用微生物对烃类的粘附试验和微电泳来描述嗜肺军团菌细胞表面疏水性和表面电荷随生长的变化,并使用带有耗散监测的石英晶体微天平(QCM-D)监测仪器来研究它们在细胞对不锈钢粘附过程中的作用。我们观察到嗜肺军团菌在培养基中的生命周期内疏水性稳步增加。稳定期嗜肺军团菌的细胞表面比其迟缓期和指数中期的对应物疏水性显著更强。未观察到嗜肺军团菌细胞表面电荷有显著变化。嗜肺军团菌的形态在其整个生命周期中保持相对恒定。在QCM-D研究中,迟缓期和指数期的嗜肺军团菌与不锈钢表面的粘附较弱,形成粘弹性层。相比之下,稳定期细菌紧密且不可逆地结合在表面,形成刚性层。我们的结果表明,嗜肺军团菌的稳定期将极大地有利于其粘附在管道表面并在EWS中持续存在。