Espeso David R, Martínez-García Esteban, de Lorenzo Víctor
Systems Biology Program, Centro Nacional de Biotecnología-CSIC, Campus de Cantoblanco, 28049, Madrid, Spain.
Bio Protoc. 2019 May 20;9(10):e3238. doi: 10.21769/BioProtoc.3238.
Biofilms are bacterial communities in the shape of exopolysaccharide matrix-encased aggregates attached onto interphases able to resist environmental aggressions. The development of bacteria in the shape of biofilms deeply affects the performance of many industrial processes which work with fluidic systems, where bacteria may settle and prosper. As a consequence industrial equipment experiments low performance issues and substantial maintenance costs. The study of how bacteria of industrial interest such as spread in these fluidic systems is highly dependent on the chosen experimental system to retrieve such data, thus using scaled prototypes becomes an essential step towards the design of a more efficient system to handle biofilms, either to control them or to prevent them. This protocol describes how to assemble, operate and maintain a device to grow and monitor the biofilm spreading pattern of this bacterium (as a function of the fluid hydrodynamics) in a custom-made chamber larger than those typically used in laboratory environments, and how to analyze the information gathered from it in a straightforward fashion. Description of the protocol was thought to be used as a working template not only for the presented case study but for any other potential experiment in different contexts and diverse scales following similar design principles.
生物膜是由包裹在胞外多糖基质中的聚集体形成的细菌群落,附着在能够抵抗环境侵害的界面上。生物膜形态的细菌生长会深刻影响许多涉及流体系统的工业过程的性能,在这些系统中细菌可能会沉降并大量繁殖。因此,工业设备会出现性能问题并产生高昂的维护成本。研究诸如在这些流体系统中扩散的具有工业相关性的细菌,在很大程度上取决于用于获取此类数据的所选实验系统,因此使用按比例缩小的原型成为朝着设计更高效的生物膜处理系统迈出的关键一步,无论是控制还是预防生物膜。本方案描述了如何组装、操作和维护一个装置,以在一个比实验室环境中通常使用的更大的定制腔室中培养和监测这种细菌的生物膜扩散模式(作为流体流体动力学的函数),以及如何以直接的方式分析从中收集到的信息。该方案的描述不仅被视为所呈现案例研究的工作模板,也适用于遵循类似设计原则的不同背景和不同规模的任何其他潜在实验。