Journal article
RNA-MATE: A recursive mapping strategy for high-throughput RNA-sequencing data
N Cloonan, Q Xu, GJ Faulkner, DF Taylor, DTP Tang, G Kolle, SM Grimmond
Bioinformatics | Published : 2009
Open access
Abstract
Summary: Mapping of next-generation sequencing data derived from RNA samples (RNAseq) presents different genome mapping challenges than data derived from DNA. For example, tags that cross exon-junction boundaries will often not map to a reference genome, and the strand specificity of the data needs to be retained. Here we present RNA-MATE, a computational pipeline based on a recursive mapping strategy for placing strand specific RNAseq data onto a reference genome. Maximizing the mappable tags can provide significant savings in the cost of sequencing experiments. This pipeline provides an automatic and integrated way to align color-space sequencing data, collate this information and generate..
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Awarded by Australian Research Council
Funding Acknowledgements
National Health and Medical Research Council [455857 to S.M.G. 456140, 631701]; the Australian Research Council [DP0988754]; the Australian Stem Cell Centre [to G.J.F, G.K. and D.F.T.]; and the University of Queensland [to N.C. and Q.X.].