Irstea-LISC (Laboratoire d'Ingénierie pour les Systèmes Complexes) Clermont-Ferrand, 24 avenue des Landais BP 50085 63172 Aubière Cedex 1, France.
Biotechnol Bioeng. 2013 May;110(5):1405-18. doi: 10.1002/bit.24805. Epub 2013 Jan 17.
A knowledge of the mechanical properties of bacterial biofilms is required to more fully understand the processes of biofilm formation such as initial adhesion or detachment. The main contribution of this article is to demonstrate the use of homogenization techniques to compute mechanical parameters of Pseudomonas aeruginosa PAO1 biofilms. For this purpose, homogenization techniques are used to analyze freeze substitution electron micrographs of the biofilm cross-sections. The concept of a representative volume element and the study about his representativeness allows us to determine the optimal size in order to analyze these biofilm images. Results demonstrate significant heterogeneities with respect to stiffness and these can be explained by varying cell density distribution throughout the bacterial biofilms. These stiffness variations lead to different mechanical properties along the height of the biofilm. Moreover, a numerical shear stress test shows the impact of these heterogeneities on the detachment process. Several modes of detachment are highlighted according to the local strain energy in the different parts of the biofilm. Knowing where, and how, a biofilm may detach will allow better prediction of accumulation and biomass detachment.
为了更全面地了解生物膜形成的过程,如初始附着或脱落,需要了解细菌生物膜的机械性能。本文的主要贡献是展示使用均匀化技术来计算铜绿假单胞菌 PAO1 生物膜的机械参数。为此,使用均匀化技术来分析生物膜横截面的冷冻替代电子显微镜图像。代表性体积元的概念和对其代表性的研究允许我们确定最佳尺寸,以便分析这些生物膜图像。结果表明,生物膜的刚度存在显著的各向异性,这可以通过整个细菌生物膜中细胞密度分布的变化来解释。这些刚度变化导致生物膜高度方向上的机械性能不同。此外,数值剪切应力测试表明了这些各向异性对脱落过程的影响。根据生物膜不同部位的局部应变能,突出了几种脱落模式。了解生物膜可能在哪里以及如何脱落将有助于更好地预测生物膜的积累和生物量脱落。