Environmental Molecular Sciences Laboratory, Pacific Northwest National Laboratory, 902 Battelle Boulevard, Richland, Washington 99354, USA.
Appl Environ Microbiol. 2011 Feb;77(4):1254-62. doi: 10.1128/AEM.02001-10. Epub 2010 Dec 17.
Microbe-mineral and -metal interactions represent a major intersection between the biosphere and geosphere but require high-resolution imaging and analytical tools for investigation of microscale associations. Electron microscopy has been used extensively for geomicrobial investigations, and although used bona fide, the traditional methods of sample preparation do not preserve the native morphology of microbiological components, especially extracellular polymers. Herein, we present a direct comparative analysis of microbial interactions by conventional electron microscopy approaches with imaging at room temperature and a suite of cryogenic electron microscopy methods providing imaging in the close-to-natural hydrated state. In situ, we observed an irreversible transformation of the hydrated bacterial extracellular polymers during the traditional dehydration-based sample preparation that resulted in their collapse into filamentous structures. Dehydration-induced polymer collapse can lead to inaccurate spatial relationships and hence could subsequently affect conclusions regarding the nature of interactions between microbial extracellular polymers and their environment.
微生物-矿物和金属相互作用代表了生物圈和岩石圈之间的一个主要交叉点,但需要高分辨率的成像和分析工具来研究微观尺度的相互作用。电子显微镜在地质微生物学研究中得到了广泛的应用,尽管得到了实际应用,但传统的样品制备方法并不能保持微生物成分的原生形态,特别是细胞外聚合物。在这里,我们通过传统的电子显微镜方法和在室温下成像的一系列低温电子显微镜方法对微生物相互作用进行了直接的比较分析,这些方法提供了接近自然水合状态的成像。在原位,我们观察到在传统的基于脱水的样品制备过程中,水合细菌细胞外聚合物发生了不可逆的转变,导致它们坍塌成丝状结构。脱水诱导的聚合物坍塌会导致空间关系不准确,因此可能会影响关于微生物细胞外聚合物与其环境之间相互作用性质的结论。