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Confined built environments reveal surprising dynamics of their microbiome and resistome

机译:密闭的建筑环境揭示了他们的微生物组和电阻的令人惊讶的动态

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During space simulation experiments the crew's safety and health are challenged by an extreme confinement from the surrounding hostile environment with specific implications and exposures for the human microbiome. To better understand microbial dynamics in isolated and confined built environments (ICE), front torso skin of 6 crewmembers and frequently interacted surfaces of the furniture in an only 11-meter-in-diameter dome located on the barren slopes of the Mauna-Loa volcano in Hawaii were sampled for a whole year (HI-SEAS IV). The crew was isolated and confined, and hygiene practices were restricted. 181 microbiome samples were analyzed by 16S rRNA gene profiling and qPCR as well as the antimicrobial resistance profile (covering detergents and multidrug resistances e.g. qacE-deltal, intl, bla and tetM). In contrast to our previous study (Schwendner et al. 2017) the microbial diversity increased slightly in the built environment, and even stronger and significantly (P = 8.7 × 10E-19) on the skin of the crew members. Metadata predictions showed high model accuracy (97%) for different sampling categories and the day of sampling (R = 0.8, P = 2.3 × 10E-8). Differential abundance analysis indicated a discriminative pattern for microbial communities at the beginning (Gardnerella) and end (Kocuria, Dermacoccaceae, Brevundimonas) of the isolation period. Important microbial and metabolic features to predict sample states were identified by a supervised learning regressor. Hence, detected microbes faced their exposure to this ICE by many detoxification mechanisms against stress inducing factors from the environment or its maintenance by the crew (e.g. mycothiol and ectoine biosynthesis). Overall the interaction of the skin microbiome and the microbiome of the built environment seems to be highly dynamic especially in this confined habitat. Our attempts to understand the dynamics of the microbiome and resistome could present a first step to manage such built environments more expedient in the future.
机译:在空间模拟期间,通过周围的敌对环境极其禁闭,船员的安全和健康是挑战,这些敌对环境具有特殊的影响和人类微生物组的曝光。为了更好地了解孤立和密闭的环境(冰),前躯干皮肤的微生物动态,在6米直径直径的圆顶上的家具中经常互动,位于Mauna-Loa火山的贫瘠斜坡上在夏威夷被取样全年(海洋四世)。船员被隔离,限制,卫生实践受到限制。通过16S rRNA基因分析和QPCR以及抗微生物抗性曲线(覆盖洗涤剂和多药电阻,例如,Qace-Deltal,Intl,Bla和Tetm)分析了181个微生物组样品。与我们以前的研究相比(Schwendner等,2017)微生物多样性在建筑环境中略微增加,甚至更强大,且显着的(P = 8.7×10E-19)在船员成员的皮肤上。元数据预测对于不同的采样类别和采样日的日子(r = 0.8,p = 2.3×10e-8)显示了高模型精度(97%)。差分丰度分析表明了在分离期的开始(Gardnerla)和End(Kocuria,Dermacoccaceae,Brevundimonas)的微生物群落的鉴别模式。通过监督的学习回归给出预测样本状态的重要微生物和代谢特征。因此,检测到的微生物通过许多解毒机制对来自环境的应力诱导因子的许多解毒机制面临着暴露的冰,或者通过船员的维护(例如霉菌素和胞外生物合成)。总体而言,皮肤微生物组的相互作用和建筑环境的微生物组似乎是高度动态的,特别是在这一限制栖息地。我们试图了解微生物组和电阻的动态,可以在将来管理这种建筑环境的第一步。

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