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对富集于含有含铀土壤的扩散室和微生物捕集器内的细菌和真菌群落的宏基因组评估。

Metagenomic Evaluation of Bacterial and Fungal Assemblages Enriched within Diffusion Chambers and Microbial Traps Containing Uraniferous Soils.

作者信息

Jaswal Rajneesh, Pathak Ashish, Chauhan Ashvini

机构信息

School of the Environment, 1515 S. MLK Blvd., Suite 305B, Building FSHSRC, Florida A&M University, Tallahassee, FL 32307, USA.

出版信息

Microorganisms. 2019 Sep 6;7(9):324. doi: 10.3390/microorganisms7090324.

Abstract

Despite significant technological advancements in the field of microbial ecology, cultivation and subsequent isolation of the vast majority of environmental microorganisms continues to pose challenges. Isolation of the environmental microbiomes is prerequisite to better understand a myriad of ecosystem services they provide, such as bioremediation of contaminants. Towards this end, in this culturomics study, we evaluated the colonization of soil bacterial and fungal communities within diffusion chambers (DC) and microbial traps (MT) established using uraniferous soils collected from a historically contaminated soil from Aiken, USA. Microbial assemblages were compared between the DC and MT relative to the native soils using amplicon based metagenomic and bioinformatic analysis. The overall rationale of this study is that DC and MT growth chambers provide the optimum conditions under which desired microbiota, identified in a previous study to serve as the "core" microbiomes, will proliferate, leading to their successful isolation. Specifically, the core microbiomes consisted of assemblages of bacteria ( spp.) and fungi ( spp.), respectively. The findings from this study further supported previous data such that the abundance and diversity of the desired "core" microbiomes significantly increased as a function of enrichments over three consecutive generations of DC and MT, respectively. Metagenomic analysis of the DC/MT generations also revealed that enrichment and stable populations of the desired "core" bacterial and fungal microbiomes develop within the first 20 days of incubation and the practice of subsequent transfers for second and third generations, as is standard in previous studies, may be unnecessary. As a cost and time cutting measure, this study recommends running the DC/MT chambers for only a 20-day time period, as opposed to previous studies, which were run for months. In summation, it was concluded that, using the diffusion chamber-based enrichment techniques, growth of desired microbiota possessing environmentally relevant functions can be achieved in a much shorter time frame than has been previously shown.

摘要

尽管微生物生态学领域取得了重大技术进步,但绝大多数环境微生物的培养及后续分离仍然面临挑战。分离环境微生物群落是更好地理解它们所提供的众多生态系统服务(如污染物生物修复)的前提条件。为此,在这项培养组学研究中,我们评估了使用从美国艾肯一处历史污染土壤中采集的含铀土壤建立的扩散室(DC)和微生物捕集器(MT)内土壤细菌和真菌群落的定殖情况。使用基于扩增子的宏基因组学和生物信息学分析,比较了DC和MT相对于原生土壤的微生物组合。本研究的总体原理是,DC和MT生长室提供了最佳条件,在这些条件下,先前研究中确定为“核心”微生物群的所需微生物群将增殖,从而实现其成功分离。具体而言,核心微生物群分别由细菌( spp.)和真菌( spp.)组合组成。这项研究的结果进一步支持了先前的数据,即所需“核心”微生物群的丰度和多样性分别随着DC和MT连续三代富集而显著增加。对DC/MT各代的宏基因组分析还表明,所需“核心”细菌和真菌微生物群的富集和稳定种群在培养的前20天内形成,并且如先前研究中的标准做法那样对第二代和第三代进行后续转移可能是不必要的。作为一种成本和时间削减措施,本研究建议DC/MT室仅运行20天,这与先前运行数月的研究不同。总之,得出的结论是,使用基于扩散室的富集技术,可以在比先前所示短得多的时间内实现具有环境相关功能的所需微生物群的生长。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/55b0/6780890/b54abbe3439e/microorganisms-07-00324-g001.jpg

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