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Using Growing Self-Organising Maps to Improve the Binning Process in Environmental Whole-Genome Shotgun Sequencing

机译:使用增长的自组织图改善环境全基因组Shot弹枪测序中的分箱过程

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摘要

Metagenomic projects using whole-genome shotgun (WGS) sequencing produces many unassembled DNA sequences and small contigs. The step of clustering these sequences, based on biological and molecular features, is called binning. A reported strategy for binning that combines oligonucleotide frequency and self-organising maps (SOM) shows high potential. We improve this strategy by identifying suitable training features, implementing a better clustering algorithm, and defining quantitative measures for assessing results. We investigated the suitability of each of di-, tri-, tetra-, and pentanucleotide frequencies. The results show that dinucleotide frequency is not a sufficiently strong signature for binning 10 kb long DNA sequences, compared to the other three. Furthermore, we observed that increased order of oligonucleotide frequency may deteriorate the assignment result in some cases, which indicates the possible existence of optimal species-specific oligonucleotide frequency. We replaced SOM with growing self-organising map (GSOM) where comparable results are obtained while gaining 7%–15% speed improvement.
机译:使用全基因组shot弹枪(WGS)测序的元基因组计划会产生许多未组装的DNA序列和小的重叠群。根据生物学和分子特征对这些序列进行聚类的步骤称为合并。结合寡核苷酸频率和自组织图谱(SOM)的一种分箱策略显示出很高的潜力。我们通过确定合适的训练功能,实施更好的聚类算法并定义用于评估结果的定量措施来改进此策略。我们研究了二,三,四和五核苷酸频率中每一个的适用性。结果表明,与其他三个序列相比,二核苷酸频率对于将10 kb长的DNA序列进行分箱不是足够强的标记。此外,我们观察到,在某些情况下,增加的寡核苷酸频率顺序可能会使分配结果变差,这表明可能存在最佳的物种特异性寡核苷酸频率。我们 用增长的自组织图(GSOM)代替了SOM,其中 获得可比结果 7%–15% 速度提高。

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