Wright Chris J, Shah Maia Kierann, Powell Lydia C, Armstrong Ian
Multidisciplinary Nanotechnology Centre, School of Engineering, Swansea University, Swansea, United Kingdom.
Scanning. 2010 May-Jun;32(3):134-49. doi: 10.1002/sca.20193.
Atomic Force Microscopy (AFM) has proven itself over recent years as an essential tool for the analysis of microbial systems. This article will review how AFM has been used to study microbial systems to provide unique insight into their behavior and relationship with their environment. Immobilization of live cells has enabled AFM imaging and force measurement to provide understanding of the structure and function of numerous microbial cells. At the macromolecular level AFM investigation into the properties of surface macromolecules and the energies associated with their mechanical conformation and functionality has helped unravel the complex interactions of microbial cells. At the level of the whole cell AFM has provided an integrated analysis of how the microbial cell exploits its environment through its selective, adaptable interface, the cell surface. In addition to these areas of study the AFM investigation of microbial biofilms has been vital for industrial and medical process analysis. There exists a tremendous potential for the future application of AFM to microbial systems and this has been strengthened by the trend to use AFM in combination with other characterization methods, such as confocal microscopy and Raman spectroscopy, to elucidate dynamic cellular processes.
近年来,原子力显微镜(AFM)已证明自身是分析微生物系统的重要工具。本文将回顾AFM如何用于研究微生物系统,以提供对其行为及其与环境关系的独特见解。活细胞的固定使得AFM成像和力测量能够深入了解众多微生物细胞的结构和功能。在大分子水平上,AFM对表面大分子的性质以及与其机械构象和功能相关的能量进行研究,有助于揭示微生物细胞的复杂相互作用。在整个细胞水平上,AFM对微生物细胞如何通过其选择性、适应性界面即细胞表面利用环境进行了综合分析。除了这些研究领域,AFM对微生物生物膜的研究对于工业和医学过程分析至关重要。AFM在微生物系统中的未来应用潜力巨大,并且通过将AFM与其他表征方法(如共聚焦显微镜和拉曼光谱)结合使用以阐明动态细胞过程的趋势得到了加强。