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Expanding the Diversity of Bacterioplankton Isolates and Modeling Isolation Efficacy with Large-Scale Dilution-to-Extinction Cultivation

机译:扩大菌株分离株的多样性,并用大规模稀释 - 消灭栽培建模分离疗效

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Cultivated bacterioplankton representatives from diverse lineages and locations are essential for microbiology, but the large majority of taxa either remain uncultivated or lack isolates from diverse geographic locales. We paired large-scale dilution-to-extinction (DTE) cultivation with microbial community analysis and modeling to expand the phylogenetic and geographic diversity of cultivated bacterioplankton and to evaluate DTE cultivation success. Here, we report results from 17 DTE experiments totaling 7,820 individual incubations over 3 years, yielding 328 repeatably transferable isolates. Comparison of isolates to microbial community data for source waters indicated that we successfully isolated 5% of the observed bacterioplankton community throughout the study; 43% and 26% of our isolates matched operational taxonomic units and amplicon single-nucleotide variants, respectively, within the top 50 most abundant taxa. Isolates included those from previously uncultivated clades such as SAR11 LD12 and Actinobacteria acIV, as well as geographically novel members from other ecologically important groups like SAR11 subclade IIIa, SAR116, and others, providing isolates in eight putatively new genera and seven putatively new species. Using a newly developed DTE cultivation model, we evaluated taxon viability by comparing relative abundance with cultivation success. The model (i) revealed the minimum attempts required for successful isolation of taxa amenable to growth on our media and (ii) identified possible subpopulation viability variation in abundant taxa such as SAR11 that likely impacts cultivation success. By incorporating viability in experimental design, we can now statistically constrain the effort necessary for successful cultivation of specific taxa on a defined medium.IMPORTANCE Even before the coining of the term “great plate count anomaly” in the 1980s, scientists had noted the discrepancy between the number of microorganisms observed under the microscope and the number of colonies that grew on traditional agar media. New cultivation approaches have reduced this disparity, resulting in the isolation of some of the “most wanted” bacterial lineages. Nevertheless, the vast majority of microorganisms remain uncultured, hampering progress toward answering fundamental biological questions about many important microorganisms. Furthermore, few studies have evaluated the underlying factors influencing cultivation success, limiting our ability to improve cultivation efficacy. Our work details the use of dilution-to-extinction (DTE) cultivation to expand the phylogenetic and geographic diversity of available axenic cultures. We also provide a new model of the DTE approach that uses cultivation results and natural abundance information to predict taxon-specific viability and iteratively constrain DTE experimental design to improve cultivation success.
机译:来自不同谱系和地点的栽培细菌代表对于微生物学是必不可少的,但大多数分类群将仍然是未开垦的或缺乏来自不同地理位置的孤立。我们将大规模的稀释 - 消灭(DTE)培养与微生物群落分析和建模培养,扩大培养菌的系统发育和地理多样性,评价DTE栽培成功。在这里,我们报告了17名DTE实验的结果总计7,820次孵化超过3年,产生328个可重复可转移的分离物。对源水域的分离物与微生物群落数据的比较表明,我们在整个研究中成功地分离出5%的观察到的菌株群落; 43%和26%的分离物匹配的运营分类单位和扩增子单核苷酸变种,分别在前50个最丰富的分类群内。分离株包括来自先前未露天的植物(如SAR11 LD12和Actinobacteria Aciv)的那些,以及来自其他生态重要组的地理上新的成员,如SAR11 Subclade IIIA,SAR116等,SAR116等,在八个令人置信的新属和七种令人置信的新物种中提供分离株。使用新开发的DTE培养模式,通过比较具有培养成功的相对丰富来评估分类群的活力。该型号(i)揭示了成功孤立的最低次数,以便在我们的媒体上增长和(ii)确定可能影响培养成功的大量出生物等可能的亚贫民活力变化。通过在实验设计中纳入可行性,我们现在可以统计限制成功培养特定媒介所必需的努力。在20世纪80年代在重新建造“大板数量异常”一词之前,科学家们已经注意到了差异在显微镜下观察到的微生物数量和在传统琼脂媒体上增长的菌落数量。新的培养方法降低了这种差异,导致了一些“最想要的”细菌谱系的分离。然而,绝大多数微生物仍然是未培养的,妨碍了回答有关许多重要微生物的基本生物学问题的进展。此外,很少有研究评估了影响培养成功的潜在因素,限制了我们提高培养效能的能力。我们的工作详情使用稀释 - 灭绝(DTE)培养来扩大可用轴烯培养物的系统发育和地理多样性。我们还提供了一种新型的DTE方法,使用培养结果和天然丰富信息来预测特定的分类能力,并迭代地限制DTE实验设计,以提高培养成功。

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