Literature DB >> 23955777

A Local Poisson Graphical Model for inferring networks from sequencing data.

Genevera I Allen1, Zhandong Liu.   

Abstract

Gaussian graphical models, a class of undirected graphs or Markov Networks, are often used to infer gene networks based on microarray expression data. Many scientists, however, have begun using high-throughput sequencing technologies such as RNA-sequencing or next generation sequencing to measure gene expression. As the resulting data consists of counts of sequencing reads for each gene, Gaussian graphical models are not optimal for this discrete data. In this paper, we propose a novel method for inferring gene networks from sequencing data: the Local Poisson Graphical Model. Our model assumes a Local Markov property where each variable conditional on all other variables is Poisson distributed. We develop a neighborhood selection algorithm to fit our model locally by performing a series of l1 penalized Poisson, or log-linear, regressions. This yields a fast parallel algorithm for estimating networks from next generation sequencing data. In simulations, we illustrate the effectiveness of our methods for recovering network structure from count data. A case study on breast cancer microRNAs (miRNAs), a novel application of graphical models, finds known regulators of breast cancer genes and discovers novel miRNA clusters and hubs that are targets for future research.

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Year:  2013        PMID: 23955777     DOI: 10.1109/TNB.2013.2263838

Source DB:  PubMed          Journal:  IEEE Trans Nanobioscience        ISSN: 1536-1241            Impact factor:   2.935


  22 in total

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Journal:  Electron J Stat       Date:  2016-04-06       Impact factor: 1.125

2.  Gene Network Reconstruction using Global-Local Shrinkage Priors.

Authors:  Gwenaël G R Leday; Mathisca C M de Gunst; Gino B Kpogbezan; Aad W van der Vaart; Wessel N van Wieringen; Mark A van de Wiel
Journal:  Ann Appl Stat       Date:  2017-03       Impact factor: 2.083

3.  Multilevel regularized regression for simultaneous taxa selection and network construction with metagenomic count data.

Authors:  Zhenqiu Liu; Fengzhu Sun; Jonathan Braun; Dermot P B McGovern; Steven Piantadosi
Journal:  Bioinformatics       Date:  2014-11-20       Impact factor: 6.937

4.  A Poisson Log-Normal Model for Constructing Gene Covariation Network Using RNA-seq Data.

Authors:  Yoonha Choi; Marc Coram; Jie Peng; Hua Tang
Journal:  J Comput Biol       Date:  2017-05-30       Impact factor: 1.479

5.  A Combined PLS and Negative Binomial Regression Model for Inferring Association Networks from Next-Generation Sequencing Count Data.

Authors:  Maiju Pesonen; Jaakko Nevalainen; Steven Potter; Somnath Datta; Susmita Datta
Journal:  IEEE/ACM Trans Comput Biol Bioinform       Date:  2017-02-07       Impact factor: 3.710

6.  Square Root Graphical Models: Multivariate Generalizations of Univariate Exponential Families that Permit Positive Dependencies.

Authors:  David I Inouye; Pradeep Ravikumar; Inderjit S Dhillon
Journal:  JMLR Workshop Conf Proc       Date:  2016-06

7.  A two-stage approach of gene network analysis for high-dimensional heterogeneous data.

Authors:  Sangin Lee; Faming Liang; Ling Cai; Guanghua Xiao
Journal:  Biostatistics       Date:  2018-04-01       Impact factor: 5.899

8.  Learning gene regulatory networks from next generation sequencing data.

Authors:  Bochao Jia; Suwa Xu; Guanghua Xiao; Vishal Lamba; Faming Liang
Journal:  Biometrics       Date:  2017-03-10       Impact factor: 2.571

9.  Graphical Models via Univariate Exponential Family Distributions.

Authors:  Eunho Yang; Pradeep Ravikumar; Genevera I Allen; Zhandong Liu
Journal:  J Mach Learn Res       Date:  2015-12       Impact factor: 3.654

10.  A Review of Multivariate Distributions for Count Data Derived from the Poisson Distribution.

Authors:  David Inouye; Eunho Yang; Genevera Allen; Pradeep Ravikumar
Journal:  Wiley Interdiscip Rev Comput Stat       Date:  2017-03-28
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