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Pangenomic Approach To Understanding Microbial Adaptations within a Model Built Environment, the International Space Station, Relative to Human Hosts and Soil

机译:理解人类在模型构建环境中的微生物适应的全基因组方法,国际空间站,相对于人类宿主和土壤

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Understanding underlying mechanisms involved in microbial persistence in the built environment (BE) is essential for strategically mitigating potential health risks. To test the hypothesis that BEs impose selective pressures resulting in characteristic adaptive responses, we performed a pangenomics meta-analysis leveraging 189 genomes (accessed from GenBank) of two epidemiologically important taxa, Bacillus cereus and Staphylococcus aureus , isolated from various origins: the International Space Station (ISS; a model BE), Earth-based BEs, soil, and humans. Our objectives were to (i) identify differences in the pangenomic composition of generalist and host-associated organisms, (ii) characterize genes and functions involved in BE-associated selection, and (iii) identify genomic signatures of ISS-derived strains of potential relevance for astronaut health. The pangenome of B. cereus was more expansive than that of S. aureus , which had a dominant core component. Genomic contents of both taxa significantly correlated with isolate origin, demonstrating an importance for biogeography and potential niche adaptations. ISS/BE-enriched functions were often involved in biosynthesis, catabolism, materials transport, metabolism, and stress response. Multiple origin-enriched functions also overlapped across taxa, suggesting conserved adaptive processes. We further characterized two mobile genetic elements with local neighborhood genes encoding biosynthesis and stress response functions that distinctively associated with B. cereus from the ISS. Although antibiotic resistance genes were present in ISS/BE isolates, they were also common in counterparts elsewhere. Overall, despite differences in microbial lifestyle, some functions appear common to remaining viable in the BE, and those functions are not typically associated with direct impacts on human health. IMPORTANCE The built environment contains a variety of microorganisms, some of which pose critical human health risks (e.g., hospital-acquired infection, antibiotic resistance dissemination). We uncovered a combination of complex biological functions that may play a role in bacterial survival under the presumed selective pressures in a model built environment—the International Space Station—by using an approach to compare pangenomes of bacterial strains from two clinically relevant species ( B. cereus and S. aureus ) isolated from both built environments and humans. Our findings suggest that the most crucial bacterial functions involved in this potential adaptive response are specific to bacterial lifestyle and do not appear to have direct impacts on human health. Author Video : An author video summary of this article is available.
机译:了解建筑环境(BE)中微生物持久性涉及的潜在机制对于从战略上减轻潜在的健康风险至关重要。为了检验BE施加选择性压力导致特征性适应性反应的假说,我们利用两种流行病学重要分类单元蜡样芽孢杆菌和金黄色葡萄球菌的189个基因组(从GenBank获得)进行了泛基因组学荟萃分析,这些基因组分别来自不同来源:国际空间站(ISS;模型BE),地球上的BE,土壤和人类。我们的目标是(i)识别通配微生物和宿主相关生物的全基因组组成差异;(ii)表征参与BE相关选择的基因和功能;(iii)识别具有潜在相关性的ISS衍生菌株的基因组特征为了宇航员的健康蜡状芽孢杆菌的全基因组比具有主要核心成分的金黄色葡萄球菌的全基因组更广泛。两种分类单元的基因组含量与分离株的来源都显着相关,这表明了生物地理学和潜在生态位适应的重要性。 ISS / BE丰富的功能通常涉及生物合成,分解代谢,物质运输,代谢和应激反应。多个起源丰富的功能在整个分类单元上也重叠,表明保守的自适应过程。我们进一步用本地生物编码和与国际空间站的蜡状芽胞杆菌相关的应激反应功能的本地邻域基因来表征两个移动遗传元件。尽管在ISS / BE分离物中存在抗生素抗性基因,但它们在其他地方的对应物中也很常见。总体而言,尽管微生物的生活方式有所不同,但某些功能似乎仍然可以在BE中保留,而这些功能通常与对人类健康的直接影响无关。重要信息建成的环境包含多种微生物,其中一些微生物对人类健康构成严重威胁(例如,医院获得性感染,抗生素耐药性传播)。通过使用一种比较两个临床相关物种的细菌菌株的基因组学方法,我们发现了复杂的生物学功能的组合,这些功能可能在模型构建环境(国际空间站)中在假定的选择压力下在细菌存活中起作用。蜡状芽孢杆菌和金黄色葡萄球菌)与建筑环境和人类隔离。我们的发现表明,这种潜在的适应性反应所涉及的最关键的细菌功能是细菌生活方式所特有的,似乎对人类健康没有直接影响。作者视频:本文提供了作者视频摘要。

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