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Exploiting single-molecule transcript sequencing for eukaryotic gene prediction
by
Viehöver, Prisca
, Schneider, Jessica
, Rosleff Sörensen, Thomas
, Minoche, André E.
, Holtgräwe, Daniela
, Dohm, Juliane C.
, Himmelbauer, Heinz
, Montfort, Magda
, Weisshaar, Bernd
in
Animal Genetics and Genomics
/ automation
/ Beta vulgaris
/ Beta vulgaris - genetics
/ Bioinformatics
/ Biomedical and Life Sciences
/ DNA, Complementary - chemistry
/ eukaryotic cells
/ Evolutionary Biology
/ Gene Expression Profiling - methods
/ Genes
/ Genes, Plant
/ Genomes
/ Genomics
/ Human Genetics
/ Life Sciences
/ Method
/ Microbial Genetics and Genomics
/ model validation
/ Molecular Sequence Data
/ Noise reduction
/ Open reading frames
/ Plant Genetics and Genomics
/ prediction
/ Proteins
/ Sequence Analysis, RNA - methods
/ spinach
/ Spinacia oleracea
/ Spinacia oleracea - genetics
/ sugar beet
/ Transcription
2015
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Exploiting single-molecule transcript sequencing for eukaryotic gene prediction
by
Viehöver, Prisca
, Schneider, Jessica
, Rosleff Sörensen, Thomas
, Minoche, André E.
, Holtgräwe, Daniela
, Dohm, Juliane C.
, Himmelbauer, Heinz
, Montfort, Magda
, Weisshaar, Bernd
in
Animal Genetics and Genomics
/ automation
/ Beta vulgaris
/ Beta vulgaris - genetics
/ Bioinformatics
/ Biomedical and Life Sciences
/ DNA, Complementary - chemistry
/ eukaryotic cells
/ Evolutionary Biology
/ Gene Expression Profiling - methods
/ Genes
/ Genes, Plant
/ Genomes
/ Genomics
/ Human Genetics
/ Life Sciences
/ Method
/ Microbial Genetics and Genomics
/ model validation
/ Molecular Sequence Data
/ Noise reduction
/ Open reading frames
/ Plant Genetics and Genomics
/ prediction
/ Proteins
/ Sequence Analysis, RNA - methods
/ spinach
/ Spinacia oleracea
/ Spinacia oleracea - genetics
/ sugar beet
/ Transcription
2015
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Exploiting single-molecule transcript sequencing for eukaryotic gene prediction
by
Viehöver, Prisca
, Schneider, Jessica
, Rosleff Sörensen, Thomas
, Minoche, André E.
, Holtgräwe, Daniela
, Dohm, Juliane C.
, Himmelbauer, Heinz
, Montfort, Magda
, Weisshaar, Bernd
in
Animal Genetics and Genomics
/ automation
/ Beta vulgaris
/ Beta vulgaris - genetics
/ Bioinformatics
/ Biomedical and Life Sciences
/ DNA, Complementary - chemistry
/ eukaryotic cells
/ Evolutionary Biology
/ Gene Expression Profiling - methods
/ Genes
/ Genes, Plant
/ Genomes
/ Genomics
/ Human Genetics
/ Life Sciences
/ Method
/ Microbial Genetics and Genomics
/ model validation
/ Molecular Sequence Data
/ Noise reduction
/ Open reading frames
/ Plant Genetics and Genomics
/ prediction
/ Proteins
/ Sequence Analysis, RNA - methods
/ spinach
/ Spinacia oleracea
/ Spinacia oleracea - genetics
/ sugar beet
/ Transcription
2015
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Exploiting single-molecule transcript sequencing for eukaryotic gene prediction
Journal Article
Exploiting single-molecule transcript sequencing for eukaryotic gene prediction
2015
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Overview
We develop a method to predict and validate gene models using PacBio single-molecule, real-time (SMRT) cDNA reads. Ninety-eight percent of full-insert SMRT reads span complete open reading frames. Gene model validation using SMRT reads is developed as automated process. Optimized training and prediction settings and mRNA-seq noise reduction of assisting Illumina reads results in increased gene prediction sensitivity and precision. Additionally, we present an improved gene set for sugar beet (
Beta vulgaris
) and the first genome-wide gene set for spinach (
Spinacia oleracea
). The workflow and guidelines are a valuable resource to obtain comprehensive gene sets for newly sequenced genomes of non-model eukaryotes.
Publisher
BioMed Central,Springer Nature B.V
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