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Host Phenotype Prediction from Differentially Abundant Microbes Using RoDEO

机译:使用RoDEO从差异丰富的微生物中预测宿主表型

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Metagenomics is the study of metagenomes which are mixtures of genetic material from several organisms. Metagenomic sequencing is increasingly used in human and animal health, food safety, and environmental studies. In these high-dimensional (metagenomic) data, the phenotype of the host organism, e.g., human, may not be obvious to detect and then the ability to predict it becomes a powerful analytic tool. For example, consider predicting the disease status of an individual from their gut microbiome. In this study, we compare various normalization methods for metagenomic count data and their impact on phenotype prediction. The methods include RoDEO, Robust Differential Expression Operator, originally developed for gene expression studies. The best prediction accuracy is observed for RoDEO-processed count data with linear kernel support vector machines in most cases, for a variety of real datasets including human, mouse, and environmental samples. We also address the problem of identifying the most relevant microbial features that could give insight into the structure and function of the differential communities observed between phenotypes. Interestingly, we obtain similar or better phenotype prediction accuracy with a small subset of features as with the complete set of sequenced features.
机译:元基因组学是对元基因组的研究,元基因组是几种生物的遗传物质的混合物。元基因组测序越来越多地用于人类和动物健康,食品安全以及环境研究。在这些高维度(基因组学)数据中,宿主生物(例如人)的表型可能不容易被检测出来,因此预测它的能力成为一种强大的分析工具。例如,考虑从肠道微生物组预测个体的疾病状态。在这项研究中,我们比较了宏基因组计数数据的各种归一化方法及其对表型预测的影响。这些方法包括RoDEO,鲁棒的差异表达算子,最初是为基因表达研究而开发的。在大多数情况下,对于包括人,小鼠和环境样本在内的各种真实数据集,使用线性核支持向量机对RoDEO处理的计数数据观察到最佳的预测精度。我们还解决了确定最相关的微生物特征的问题,这些特征可以深入了解表型之间观察到的差异群落的结构和功能。有趣的是,我们获得了与完整序列特征集一样小的特征子集的相似或更好的表型预测准确性。

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