利用精确QCM系统监测细菌生物膜的粘弹性行为

A. Fort, Elia Landi, Anna Lo Grasso, M. Mugnaini, E. Panzardi, V. Vignoli, Fariba Fahmideh Mahdizadeh, A. Magnani
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引用次数: 1

摘要

形成生物膜的细菌在我们的日常生活中无处不在,可能会产生有益的影响,但更常见的是,会产生不利的后果。监测生物膜的形成过程和相关的物理参数,不仅对研究生物膜的内部结构至关重要,而且因为它提供了迅速采取行动控制或抵消生长过程的可能性。本文分析了利用石英晶体微天平(QCM)实时监测生物膜生长的测量问题。经过理论分析,讨论了实验数据,包括长期监测荧光假单胞菌的活性。开发的原型测量系统基于Mecham桥振荡器拓扑结构,可以实时准确地监测石英谐振频率和运动电阻。特别分析了石英表面附着的软颗粒和介质对细菌粘附过程、生物膜生长及其对QCM响应的复杂影响。结果表明,所开发的系统适合此类应用。测量系统的优异稳定性和频率分辨率允许对生物过程进行分析,并且是收集有关所观察生物介质的物理特性信息的有用工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Monitoring of the Viscoelastic Behaviour of Bacterial Biofilms Exploiting an Accurate QCM System
The presence of bacteria forming biofilm is pervasive in our daily life and may lead to beneficial effects or, more frequently, to adverse consequences. The monitoring of the biofilm formation process and of the related physical parameters, is essential not only for the investigation of the biofilm internal structure but also because it offers the possibility to take prompt actions to either control or counteract the growth process. In this paper the measurement problem related to the real-time monitoring of biofilm growth through Quartz Crystal Microbalance (QCM) is analyzed. After a theoretical analysis, experimental data are discussed, consisting in the long-term monitoring of the activity of Pseudomonas fluorescens bacteria. The developed prototype measurement system is based on a Mecham bridge oscillator topology and allows to accurately monitor the quartz resonance frequency and the motional resistance in real time. In particular, the bacteria adhesion process, the biofilm growth and the complex impact which has on the QCM response, related to the soft particles and media attached on the quartz surface is analyzed. The presented results demonstrate the suitability of the developed system for this kind of applications. The excellent stability and frequency resolution of the measurement system allows for the analysis of biological processes and is a useful tool for collecting information concerning the physical characteristics of the observed biological media.
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