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Bottled aqua incognita: microbiota assembly and dissolved organic matter diversity in natural mineral waters

机译:瓶装Aqua ingognita:微生物群组装和天然矿泉水中的溶解有机物多样性

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Non-carbonated natural mineral waters contain microorganisms that regularly grow after bottling despite low concentrations of dissolved organic matter (DOM). Yet, the compositions of bottled water microbiota and organic substrates that fuel microbial activity, and how both change after bottling, are still largely unknown. We performed a multifaceted analysis of microbiota and DOM diversity in 12 natural mineral waters from six European countries. 16S rRNA gene-based analyses showed that less than 10 species-level operational taxonomic units (OTUs) dominated the bacterial communities in the water phase and associated with the bottle wall after a short phase of post-bottling growth. Members of the betaproteobacterial genera Curvibacter, Aquabacterium, and Polaromonas (Comamonadaceae) grew in most waters and represent ubiquitous, mesophilic, heterotrophic aerobes in bottled waters. Ultrahigh-resolution mass spectrometry of DOM in bottled waters and their corresponding source waters identified thousands of molecular formulae characteristic of mostly refractory, soil-derived DOM. The bottle environment, including source water physicochemistry, selected for growth of a similar low-diversity microbiota across various bottled waters. Relative abundance changes of hundreds of multi-carbon molecules were related to growth of less than ten abundant OTUs. We thus speculate that individual bacteria cope with oligotrophic conditions by simultaneously consuming diverse DOM molecules.
机译:非碳酸根天然矿泉水含有微生物,尽管较低浓度的溶解有机物质(DOM),但填充后经常生长。然而,瓶装水微生物的组成和燃料微生物活性的有机基材,以及瓶装后的两种变化,仍然很大程度上是未知的。我们对来自六个欧洲国家的12个天然矿泉水中的微生物群和DOM多样性进行了多方面分析。 16S基于RRNA基因的分析显示,少于10种级运营的分类单位(OTUS)在水相中的细菌群中占据了水相中的细菌群落,并在瓶后瓶生长的短期后与瓶壁相关联。 Betaproteobacterial属Curvibacter,Acasabacterium和Polaromonas(Comamonadaceae)的成员在大多数水域中增长,并且代表瓶装水域中普遍存在的,嗜苯胺的异养环境。瓶装水中的DOM的超高分辨率质谱和它们的相应源水域鉴定了数千种分子公式的大多数难治性土壤衍生的DOM。瓶子环境,包括源水物理化学,选择用于各种瓶装水域的类似低多样性微生物群。数百种多碳分子的相对丰度变化与少于十个丰富的OTU的生长有关。因此,我们推测单个细菌通过同时消耗多样化的DOM分子来应对寡营植物条件。

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