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Pathway-Based Functional Analysis of Metagenomes

机译:基于通路的元基因组功能分析

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Metagenomic data enables the study of microbes and viruses through their DNA as retrieved directly from the environment in which they live. Functional analysis of metagenomes explores the abundance of gene families, pathways, and systems, rather than their taxonomy. Through such analysis researchers are able to identify those functional capabilities most important to organisms in the examined environment. Recently, a statistical framework for the functional analysis of metagenomes was described that focuses on gene families. Here we describe two pathway level computational models for functional analysis that take into account important, yet unaddressed issues such as pathway size, gene length and overlap in gene content among pathways. We test our models over carefully designed simulated data and propose novel approaches for performance evaluation. Our models significantly improve over current approach with respect to pathway ranking and the computations of relative abundance of pathways in environments.
机译:元基因组数据可以通过直接从其生活环境中检索到的DNA和微生物来研究微生物和病毒。对元基因组的功能分析探索了基因家族,途径和系统的丰富性,而不是它们的分类学。通过这种分析,研究人员能够确定那些对所检查环境中的生物最重要的功能。最近,描述了针对基因组的功能分析的统计框架。在这里,我们描述了两种用于功能分析的途径水平的计算模型,这些模型考虑了重要但尚未解决的问题,例如途径大小,基因长度和途径之间基因含量的重叠。我们通过精心设计的模拟数据测试我们的模型,并提出用于性能评估的新颖方法。在路径排序和环境中路径相对丰度的计算方面,我们的模型大大改进了当前方法。

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