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Metatranscriptomic exploration of microbial functioning in clouds

机译:云端微生物功能的超转录组学探索

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摘要

Clouds constitute the uppermost layer of the biosphere. They host diverse communities whose functioning remains obscure, although biological activity potentially participates to atmospheric chemical and physical processes. In order to gain information on the metabolic functioning of microbial communities in clouds, we conducted coordinated metagenomics/metatranscriptomics profiling of cloud water microbial communities. Samples were collected from a high altitude atmospheric station in France and examined for biological content after untargeted amplification of nucleic acids. Living microorganisms, essentially bacteria, maintained transcriptional and translational activities and expressed many known complementary physiological responses intended to fight oxidants, osmotic variations and cold. These included activities of oxidant detoxification and regulation, synthesis of osmoprotectants/cryoprotectants, modifications of membranes, iron uptake. Consistently these energy-demanding processes were fueled by central metabolic routes involved in oxidative stress response and redox homeostasis management, such as pentose phosphate and glyoxylate pathways. Elevated binding and transmembrane ion transports demonstrated important interactions between cells and their cloud droplet chemical environments. In addition, polysaccharides, potentially beneficial for survival like exopolysaccharides, biosurfactants and adhesins, were synthesized. Our results support a biological influence on cloud physical and chemical processes, acting notably on the oxidant capacity, iron speciation and availability, amino-acids distribution and carbon and nitrogen fates.
机译:云构成了生物圈的最上层。尽管生物活动潜在地参与了大气化学和物理过程,但它们仍居住着功能混乱的各种社区。为了获得有关云中微生物群落代谢功能的信息,我们对云水微生物群落进行了宏基因组学/元转录组学分析。从法国的一个高空大气站收集样品,并在无针对性地扩增核酸后检查其生物学含量。活的微生物(基本上是细菌)保持转录和翻译活性,并表达了许多已知的互补生理反应,旨在抵抗氧化剂,渗透变化和寒冷。这些包括氧化剂的解毒和调节活性,渗透保护剂/低温保护剂的合成,膜的修饰,铁的吸收。一致地,这些能量需求过程由参与氧化应激反应和氧化还原稳态管理的中央代谢途径(例如戊糖磷酸和乙醛酸途径)推动。结合和跨膜离子转运的升高证明了细胞与其云滴化学环境之间的重要相互作用。此外,还合成了可能对生存有益的多糖,如胞外多糖,生物表面活性剂和粘附素。我们的结果支持对云物理和化学过程的生物学影响,尤其是对氧化剂的容量,铁的形态和可用性,氨基酸的分布以及碳和氮的命运产生影响。

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