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Advanced computational algorithms for microbial community analysis using massive 16S rRNA sequence data

机译:使用大量16S rRNA序列数据进行微生物群落分析的高级计算算法

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摘要

With the aid of next-generation sequencing technology, researchers can now obtain millions of microbial signature sequences for diverse applications ranging from human epidemiological studies to global ocean surveys. The development of advanced computational strategies to maximally extract pertinent information from massive nucleotide data has become a major focus of the bioinformatics community. Here, we describe a novel analytical strategy including discriminant and topology analyses that enables researchers to deeply investigate the hidden world of microbial communities, far beyond basic microbial diversity estimation. We demonstrate the utility of our approach through a computational study performed on a previously published massive human gut 16S rRNA data set. The application of discriminant and topology analyses enabled us to derive quantitative disease-associated microbial signatures and describe microbial community structure in far more detail than previously achievable. Our approach provides rigorous statistical tools for sequence-based studies aimed at elucidating associations between known or unknown organisms and a variety of physiological or environmental conditions.
机译:借助下一代测序技术,研究人员现在可以获得数百万种微生物特征序列,可用于从人类流行病学研究到全球海洋调查的各种应用。最大程度地从大量核苷酸数据中提取相关信息的高级计算策略的发展已成为生物信息学界的主要重点。在这里,我们描述了一种新颖的分析策略,其中包括判别和拓扑分析,使研究人员能够深入研究微生物群落的隐藏世界,而不仅仅是基本的微生物多样性估计。我们通过对先前发布的大规模人类肠道16S rRNA数据集进行的计算研究证明了我们方法的实用性。判别和拓扑分析的应用使我们能够得出与疾病相关的定量微生物特征,并比以前可实现的更详细地描述微生物群落结构。我们的方法为基于序列的研究提供了严格的统计工具,旨在阐明已知或未知生物与各种生理或环境条件之间的关联。

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