Semi-supervised learning for peptide identification from shotgun proteomics datasets

被引:0
|
作者
Lukas Käll
Jesse D Canterbury
Jason Weston
William Stafford Noble
Michael J MacCoss
机构
[1] University of Washington,Department of Genome Sciences
[2] NEC Laboratories America,Department of Computer Science and Engineering
[3] Inc.,undefined
[4] 4 Independence Way,undefined
[5] Suite 200,undefined
[6] University of Washington,undefined
[7] AC101 Paul G. Allen Center,undefined
来源
Nature Methods | 2007年 / 4卷
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摘要
Shotgun proteomics uses liquid chromatography–tandem mass spectrometry to identify proteins in complex biological samples. We describe an algorithm, called Percolator, for improving the rate of confident peptide identifications from a collection of tandem mass spectra. Percolator uses semi-supervised machine learning to discriminate between correct and decoy spectrum identifications, correctly assigning peptides to 17% more spectra from a tryptic Saccharomyces cerevisiae dataset, and up to 77% more spectra from non-tryptic digests, relative to a fully supervised approach.
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页码:923 / 925
页数:2
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