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Title:

OUTRIDER: A Statistical Method for Detecting Aberrantly Expressed Genes in RNA Sequencing Data.

Document type:
Article; Journal Article; Research Support, Non-U.S. Gov't
Author(s):
Brechtmann, Felix; Mertes, Christian; Matusevičiūtė, Agnė; Yépez, Vicente A; Avsec, Ziga; Herzog, Maximilian; Bader, Daniel M; Prokisch, Holger; Gagneur, Julien
Abstract:
RNA sequencing (RNA-seq) is gaining popularity as a complementary assay to genome sequencing for precisely identifying the molecular causes of rare disorders. A powerful approach is to identify aberrant gene expression levels as potential pathogenic events. However, existing methods for detecting aberrant read counts in RNA-seq data either lack assessments of statistical significance, so that establishing cutoffs is arbitrary, or rely on subjective manual corrections for confounders. Here, we de...     »
Journal title abbreviation:
Am J Hum Genet
Year:
2018
Journal volume:
103
Journal issue:
6
Pages contribution:
907-917
Fulltext / DOI:
doi:10.1016/j.ajhg.2018.10.025
Pubmed ID:
http://view.ncbi.nlm.nih.gov/pubmed/30503520
Print-ISSN:
0002-9297
TUM Institution:
Institut für Humangenetik
 BibTeX