Department of Environmental Microbiology, Helmholtz Centre for Environmental Research-UFZ, Leipzig, Germany.
Center for Microbial Ecology and Technology, Faculty of Bioscience Engineering, Gent University, Gent, Belgium.
Nat Protoc. 2020 Sep;15(9):2788-2812. doi: 10.1038/s41596-020-0362-0. Epub 2020 Aug 7.
Flow cytometry has recently established itself as a tool to track short-term dynamics in microbial community assembly and link those dynamics with ecological parameters. However, instrumental configurations of commercial cytometers and variability introduced through differential handling of the cells and instruments frequently cause data set variability at the single-cell level. This is especially pronounced with microorganisms, which are in the lower range of optical resolution. Although alignment beads are valuable to generally minimize instrumental noise and align overall machine settings, an artificial microbial cytometric mock community (mCMC) is mandatory for validating lab workflows and enabling comparison of data between experiments, thus representing a necessary reference standard for the reproducible cytometric characterization of microbial communities, especially in long-term studies. In this study, the mock community consisted of two Gram-positive and two Gram-negative bacterial strains, which can be assembled with respective subsets of cells, including spores, in any selected ratio or concentration. The preparation of the four strains takes a maximum of 5 d, and the stains are storable with either PFA/ethanol fixation at -20 °C or drying at 4 °C for at least 6 months. Starting from this stock, an mCMC can be assembled within 1 h. Fluorescence staining methods are presented and representatively applied with two high-resolution cell sorters and three benchtop flow cytometers. Benchmarked data sets allow the use of bioinformatic evaluation procedures to decode community behavior or convey qualified cell sorting decisions for subsequent high-resolution sequencing or proteomic routines.
流式细胞术最近已成为一种工具,可用于跟踪微生物群落组装的短期动态,并将这些动态与生态参数联系起来。然而,商用流式细胞仪的仪器配置以及通过对细胞和仪器的不同处理引入的可变性常常导致单细胞水平的数据可变性。对于微生物来说,这种情况尤其明显,因为微生物的光分辨率较低。虽然对齐珠对于最小化仪器噪声和对齐整体机器设置非常有价值,但人工微生物流式细胞术模拟群落(mCMC)对于验证实验室工作流程和实现实验之间的数据比较是强制性的,因此是微生物群落可重复的流式细胞术表征的必要参考标准,特别是在长期研究中。在这项研究中,模拟群落由两种革兰氏阳性菌和两种革兰氏阴性菌组成,可以用相应的细胞亚群组装,包括孢子,并以任何选定的比例或浓度组装。四种菌株的制备最多需要 5 天,并且可以在-20°C 下用 PFA/乙醇固定或在 4°C 下干燥至少 6 个月进行储存。从这个库存中,可以在 1 小时内组装 mCMC。本文介绍了荧光染色方法,并应用于两种高分辨率细胞分选仪和三种台式流式细胞仪。经过基准测试的数据集允许使用生物信息学评估程序来解码群落行为或传达合格的细胞分选决策,以进行后续的高分辨率测序或蛋白质组学常规。