Poisson hurdle model-based method for clustering microbiome features

Author:

Qiao Zhili1ORCID,Barnes Elle2,Tringe Susannah23,Schachtman Daniel P4ORCID,Liu Peng1

Affiliation:

1. Department of Statistics, Iowa State University , Ames, IA 50011, USA

2. Department of Energy, Joint Genome Institute , Berkeley, CA 94720, USA

3. Environmental Genomics and Systems Biology Division, Lawrence Berkeley National Laboratory , Berkeley, CA 94720, USA

4. Department of Agronomy and Horticulture, University of Nebraska , Lincoln, NE 68583, USA

Abstract

Abstract Motivation High-throughput sequencing technologies have greatly facilitated microbiome research and have generated a large volume of microbiome data with the potential to answer key questions regarding microbiome assembly, structure and function. Cluster analysis aims to group features that behave similarly across treatments, and such grouping helps to highlight the functional relationships among features and may provide biological insights into microbiome networks. However, clustering microbiome data are challenging due to the sparsity and high dimensionality. Results We propose a model-based clustering method based on Poisson hurdle models for sparse microbiome count data. We describe an expectation–maximization algorithm and a modified version using simulated annealing to conduct the cluster analysis. Moreover, we provide algorithms for initialization and choosing the number of clusters. Simulation results demonstrate that our proposed methods provide better clustering results than alternative methods under a variety of settings. We also apply the proposed method to a sorghum rhizosphere microbiome dataset that results in interesting biological findings. Availability and implementation R package is freely available for download at https://cran.r-project.org/package=PHclust. Supplementary information Supplementary data are available at Bioinformatics online.

Funder

Department of Energy

owa State University Plant Sciences Institute Scholars Program

Nonclinical Biostatistics Scholarship from the Biopharmaceutical Section of the American Statistical Association

Publisher

Oxford University Press (OUP)

Subject

Computational Mathematics,Computational Theory and Mathematics,Computer Science Applications,Molecular Biology,Biochemistry,Statistics and Probability

Reference40 articles.

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