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Development of a flow-fluorescence in situ hybridization protocol for the analysis of microbial communities in anaerobic fermentation liquor

机译:开发用于分析厌氧发酵液中微生物群落的流式荧光原位杂交方案

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Background The production of bio-methane from renewable raw material is of high interest because of the increasing scarcity of fossil fuels. The process of biomethanation is based on the inter- and intraspecific metabolic activity of a highly diverse and dynamic microbial community. The community structure of the microbial biocenosis varies between different biogas reactors and the knowledge about these microbial communities is still fragmentary. However, up to now no approaches are available allowing a fast and reliable access to the microbial community structure. Hence, the aim of this study was to originate a Flow-FISH protocol, namely a combination of flow cytometry and fluorescence in situ hybridization, for the analysis of the metabolically active microorganisms in biogas reactor samples. With respect to the heterogenic texture of biogas reactor samples and to collect all cells including those of cell aggregates and biofilms the development of a preceding purification procedure was indispensable. Results Six different purification procedures with in total 29 modifications were tested. The optimized purification procedure combines the use of the detergent sodium hexametaphosphate with ultrasonic treatment and a final filtration step. By this treatment, the detachment of microbial cells from particles as well as the disbandment of cell aggregates was obtained at minimized cell loss. A Flow-FISH protocol was developed avoiding dehydration and minimizing centrifugation steps. In the exemplary application of this protocol on pure cultures as well as biogas reactor samples high hybridization rates were achieved for commonly established domain specific oligonucleotide probes enabling the specific detection of metabolically active bacteria and archaea. Cross hybridization and autofluorescence effects could be excluded by the use of a nonsense probe and negative controls, respectively. Conclusions The approach described in this study enables for the first time the analysis of the metabolically active fraction of the microbial communities within biogas reactors by Flow-FISH.
机译:背景技术由于化石燃料的稀缺性越来越高,由可再生原料生产生物甲烷引起了人们的极大兴趣。生物甲烷化过程基于高度多样化和动态的微生物群落的种间和种内代谢活性。微生物生物群落的群落结构在不同的沼气反应器之间有所不同,关于这些微生物群落的知识仍然是零碎的。但是,到目前为止,尚无可用的方法来快速,可靠地访问微生物群落结构。因此,本研究的目的是提出一种Flow-FISH方案,即流式细胞术和荧光原位杂交的组合,用于分析沼气反应器样品中的代谢活性微生物。关于沼气反应器样品的异质结构以及收集所有细胞,包括细胞聚集体和生物膜的细胞,之前的纯化程序是必不可少的。结果测试了六种不同的纯化程序,总共进行了29种修饰。优化的纯化程序将去污剂六偏磷酸钠的使用与超声处理和最终的过滤步骤结合在一起。通过这种处理,以最小的细胞损失获得了微生物细胞从颗粒上的分离以及细胞聚集体的散布。开发了Flow-FISH规程,避免了脱水并最大程度减少了离心步骤。在该协议在纯培养物以及沼气反应器样品上的示例性应用中,对于通常建立的域特异性寡核苷酸探针实现了高杂交率,从而能够特异性检测代谢活性细菌和古细菌。可以通过分别使用无义探针和阴性对照来排除交叉杂交和自发荧光作用。结论本研究中描述的方法首次通过Flow-FISH分析了沼气反应器内微生物群落的代谢活性部分。

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