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首页> 外文期刊>Journal of Theoretical Biology >DBH: A de Bruijn graph-based heuristic method for clustering large-scale 16S rRNA sequences into OTUs
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DBH: A de Bruijn graph-based heuristic method for clustering large-scale 16S rRNA sequences into OTUs

机译:DBH:基于BRUIJN图形的基于Braph-Braphic的启发式方法,用于将大规模16S rRNA序列聚类为OTUS

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Recent sequencing revolution driven by high-throughput technologies has led to rapid accumulation of 16S rRNA sequences for microbial communities. Clustering short sequences into operational taxonomic units (OTUs) is an initial crucial process in analyzing metagenomic data. Although many heuristic methods have been proposed for OTU inferences with low computational complexity, they just select one sequence as the seed for each cluster and the results are sensitive to the selected sequences that represent the clusters. To address this issue, we present a de Bruijn graph-based heuristic clustering method (DBH) for clustering massive 16S rRNA sequences into OTUs by introducing a novel seed selection strategy and greedy clustering approach. Compared with existing widely used methods on several simulated and real-life metagenomic datasets, the results show that DBH has higher clustering performance and low memory usage, facilitating the overestimation of OTUs number. DBH is more effective to handle large-scale metagenomic datasets. The DBH software can be freely downloaded from https://github.com/nwpu134/DBH.git for academic users. (C) 2017 Elsevier Ltd. All rights reserved.
机译:最近由高通量技术驱动的测序革命导致了16S rRNA序列的微生物群落的快速积累。将短序列分析到操作分类单位(OTUS)是分析偏心组数据的初始关键方法。虽然已经提出了具有低计算复杂性的OTU推断的许多启发式方法,但它们只需选择一个序列作为每个群集的种子,并且结果对代表簇的所选序列敏感。为了解决这个问题,我们通过引入一种新颖的种子选择策略和贪婪聚类方法,提出基于Bruijn图形的启发式聚类方法(DBH),用于将大规模的16S rRNA序列聚类为Otus。与在多个模拟和现实生活中的现有方法相比,结果表明,DBH具有更高的聚类性能和低内存使用情况,促进了OTUS编号的高估。 DBH更有效地处理大规模的Metagenomic数据集。 DBH软件可以从https://github.com/nwpu134/dbh.git免费下载学术用户。 (c)2017 Elsevier Ltd.保留所有权利。

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