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Characterization of the microbiome associated with in situ earthen materials

机译:与原位土壤材料相关的微生物组的表征

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The current increase in public awareness of environmental risks is giving rise to a growth of interest in the microbiological safety of buildings. In particular, microbial proliferation on construction materials can be responsible for the degradation of indoor air quality that can increase health-risk to occupants. Raw earth materials are still widely used throughout the world and, in some cases, are linked to heritage habitats, as in the southwest of France. Moreover, these building materials are currently the subject of renewed interest for ecological and economic reasons. However, the microbial status of earthen materials raises major concerns: could the microbiome associated with such natural materials cause disease in building occupants? Very few analyses have been performed on the microbial communities present on these supports. Characterizing the raw earth material microbiome is also important for a better evaluation and understanding of the susceptibility of such materials to microbial development. This study presents the distribution of in situ bacterial and fungal communities on different raw earth materials used in construction. Various buildings were sampled in France and the microbial communities present were characterized by amplicon high-throughput sequencing (bacterial 16S rRNA gene and fungal ITS1 region). Bacterial culture isolates were identified at the species level by MALDI-TOF mass spectrometry. The major fungal and bacterial genera identified were mainly associated with conventional outdoor and indoor environmental communities, and no specific harmful bacterial species were detected on earthen materials. However, contrary to expectations, few human-associated genera were detected in dwellings. We found lower microbial alpha-diversity in earthen material than is usually found in soil, suggesting a loss of diversity during the use of these materials in buildings. Interestingly enough, the main features influencing microbial communities were building history and room use, rather than material composition. These results constitute a first in-depth analysis of microbial communities present on earthen materials in situ and may be considered as a first referential to investigate microbial communities on such materials according to environmental conditions and their potential health impact. The bacterial and fungal flora detected were similar to those found in conventional habitats and are thought to be mainly impacted by specific events in the building’s life, such as water damage.
机译:目前对环境风险的公众意识的增加正在引起建筑物的微生物安全性的兴趣增长。特别地,在建筑材料上的微生物增殖可以负责室内空气质量的降解,可以增加健康风险对占用者。原料地球材料仍然广泛应用于全世界,在某些情况下,与法国西南部一样与遗产栖息地联系起来。此外,这些建筑材料目前是生态和经济原因的再生兴趣的主题。然而,土木材料的微生物地位提出了重大问题:可以与此类天然材料相关的微生物组导致建筑物患者疾病吗?已经对这些支撑件的微生物社区进行了很少的分析。表征原料地球材料微生物组也是对更好地评估和理解这种材料对微生物发育的易感性的重要性也很重要。本研究介绍了在建设中使用的不同原料地球材料上原位细菌和真菌社区的分布。在法国进行了各种建筑物,并通过扩增子高通量测序(细菌16s rRNA基因和真菌IT1区域)表征存在的微生物群落。通过MALDI-TOF质谱法在物种水平上鉴定细菌培养分离物。鉴定的主要真菌和细菌属性主要与常规室外和室内环境社区有关,并且在土壤材料上没有检测到特定的有害细菌物种。然而,与期望相反,在住宅中检测到很少有人相关的属。我们发现土壤中的微生物α-多样性比通常在土壤中发现的较低的微生物α-多样性,这表明在建筑物中使用这些材料时损失了多样性。有趣的是,影响微生物社区的主要特点是建立历史和室内使用,而不是材料组成。这些结果构成了原位中存在的微生物社区的第一深入分析,并且可以被认为是根据环境条件调查这些材料上的微生物群落的第一个参考。检测到的细菌和真菌菌群类似于常规栖息地发现的细菌和真菌菌群,被认为主要受到建筑物生命中的特定事件的影响,例如水损伤。

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