TARO: tree-aggregated factor regression for microbiome data integration

Author:

Mishra Aditya K.,Mahmud Iqbal,Lorenzi Philip L.,Jenq Robert R.,Wargo Jennifer A.,Ajami Nadim J.,Peterson Christine B.

Abstract

AbstractMotivationAlthough the human microbiome plays a key role in health and disease, the biological mechanisms underlying the interaction between the microbiome and its host are incompletely understood. Integration with other molecular profiling data offers an opportunity to characterize the role of the microbiome and elucidate therapeutic targets. However, this remains challenging to the high dimensionality, compositionality, and rare features found in microbiome profiling data. These challenges necessitate the use of methods that can achieve structured sparsity in learning cross-platform association patterns.ResultsWe propose Tree-Aggregated factor RegressiOn (TARO) for the integration of microbiome and metabolomic data. We leverage information on the phylogenetic tree structure to flexibly aggregate rare features. We demonstrate through simulation studies that TARO accurately recovers a low-rank coefficient matrix and identifies relevant features. We applied TARO to microbiome and metabolomic profiles gathered from subjects being screened for colorectal cancer to understand how gut microrganisms shape intestinal metabolite abundances.Availability and implementationThe R packageTAROimplementing the proposed methods is available online athttps://github.com/amishra-stats/taro-package.

Publisher

Cold Spring Harbor Laboratory

Reference30 articles.

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