Empirical bayes analysis of sequencing-based transcriptional profiling without replicates

被引:39
作者
Wu, Zhijin [1 ,2 ]
Jenkins, Bethany D. [3 ,4 ]
Rynearson, Tatiana A. [4 ]
Dyhrman, Sonya T. [5 ]
Saito, Mak A. [6 ]
Mercier, Melissa [4 ]
Whitney, Leann P. [3 ]
机构
[1] Brown Univ, Ctr Stat Sci, Providence, RI 02912 USA
[2] Brown Univ, Dept Community Hlth, Providence, RI 02912 USA
[3] Univ Rhode Isl, Dept Cell & Mol Biol, Kingston, RI 02881 USA
[4] Univ Rhode Isl, Grad Sch Oceanog, Narragansett, RI 02882 USA
[5] Woods Hole Oceanog Inst, Dept Biol, Woods Hole, MA 02543 USA
[6] Woods Hole Oceanog Inst, Marine Chem & Geochem Dept, Woods Hole, MA 02543 USA
关键词
GENE-EXPRESSION; DIFFERENTIAL EXPRESSION; SERIAL ANALYSIS; SAGE; PACKAGE; TAG;
D O I
10.1186/1471-2105-11-564
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Background: Recent technological advancements have made high throughput sequencing an increasingly popular approach for transcriptome analysis. Advantages of sequencing-based transcriptional profiling over microarrays have been reported, including lower technical variability. However, advances in technology do not remove biological variation between replicates and this variation is often neglected in many analyses. Results: We propose an empirical Bayes method, titled Analysis of Sequence Counts (ASC), to detect differential expression based on sequencing technology. ASC borrows information across sequences to establish prior distribution of sample variation, so that biological variation can be accounted for even when replicates are not available. Compared to current approaches that simply tests for equality of proportions in two samples, ASC is less biased towards highly expressed sequences and can identify more genes with a greater log fold change at lower overall abundance. Conclusions: ASC unifies the biological and statistical significance of differential expression by estimating the posterior mean of log fold change and estimating false discovery rates based on the posterior mean. The implementation in R is available at http://www.stat.brown.edu/Zwu/research.aspx.
引用
收藏
页数:8
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