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Biogeochemical Typing of Paddy Field by a Data-Driven Approach Revealing Sub-Systems within a Complex Environment - A Pipeline to Filtrate, Organize and Frame Massive Dataset from Multi-Omics Analyses

机译:通过数据驱动的方法对稻田进行生物地球化学分型,揭示了复杂环境中的子系统-从多组化合物分析中筛选,组织和构建海量数据集的管道

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摘要

We propose the technique of biogeochemical typing (BGC typing) as a novel methodology to set forth the sub-systems of organismal communities associated to the correlated chemical profiles working within a larger complex environment. Given the intricate characteristic of both organismal and chemical consortia inherent to the nature, many environmental studies employ the holistic approach of multi-omics analyses undermining as much information as possible. Due to the massive amount of data produced applying multi-omics analyses, the results are hard to visualize and to process. The BGC typing analysis is a pipeline built using integrative statistical analysis that can treat such huge datasets filtering, organizing and framing the information based on the strength of the various mutual trends of the organismal and chemical fluctuations occurring simultaneously in the environment. To test our technique of BGC typing, we choose a rich environment abounding in chemical nutrients and organismal diversity: the surficial freshwater from Japanese paddy fields and surrounding waters. To identify the community consortia profile we employed metagenomics as high throughput sequencing (HTS) for the fragments amplified from Archaea rRNA, universal 16S rRNA and 18S rRNA; to assess the elemental content we employed ionomics by inductively coupled plasma optical emission spectroscopy (ICP-OES); and for the organic chemical profile, metabolomics employing both Fourier transformed infrared (FT-IR) spectroscopy and proton nuclear magnetic resonance (1H-NMR) all these analyses comprised our multi-omics dataset. The similar trends between the community consortia against the chemical profiles were connected through correlation. The result was then filtered, organized and framed according to correlation strengths and peculiarities. The output gave us four BGC types displaying uniqueness in community and chemical distribution, diversity and richness. We conclude therefore that the BGC typing is a successful technique for elucidating the sub-systems of organismal communities with associated chemical profiles in complex ecosystems.
机译:我们提出了生物地球化学分型技术(BGC分型)作为一种新颖的方法论,以阐明与在较大复杂环境中工作的相关化学特征相关的生物群落子系统。考虑到自然界固有的有机和化学联合体的复杂特性,许多环境研究采用了多组学分析的整体方法,从而破坏了尽可能多的信息。由于使用多组学分析产生的大量数据,结果难以可视化和处理。 BGC类型分析是使用综合统计分析构建的管道,该管道可以根据环境中同时发生的各种生物和化学波动的相互趋势的强度,处理如此庞大的数据集,以对信息进行过滤,组织和构建框架。为了测试我们的BGC分型技术,我们选择了一个富含化学养分和生物多样性的丰富环境:来自日本稻田和周围水域的表层淡水。为了鉴定群落的财团概况,我们采用宏基因组学作为高通量测序(HTS),用于从古细菌rRNA,通用16S rRNA和18S rRNA扩增的片段。评估我们通过电感耦合等离子体发射光谱法(ICP-OES)进行的蛋白质组学研究的元素含量;对于有机化学特征,使用傅立叶变换红外光谱(FT-IR)和质子核磁共振( 1 H-NMR)进行的代谢组学分析均构成了我们的多组学数据集。社区联合体之间对化学特征的相似趋势通过相关性联系起来。然后根据相关强度和特性对结果进行过滤,组织和构图。输出结果为我们提供了四种BGC类型,它们在社区和化学分布,多样性和丰富性方面表现出独特性。因此,我们得出的结论是,BGC分型是一种阐明复杂生态系统中具有相关化学特征的生物群落子系统的成功技术。

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