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Tytuł pozycji:

Meta-prediction of phosphorylation sites with weighted voting and restricted grid search parameter selection.

Tytuł:
Meta-prediction of phosphorylation sites with weighted voting and restricted grid search parameter selection.
Autorzy:
Wan J; Department of Neuroscience, University of Minnesota, Minneapolis, MN 55455, USA.
Kang S
Tang C
Yan J
Ren Y
Liu J
Gao X
Banerjee A
Ellis LB
Li T
Źródło:
Nucleic acids research [Nucleic Acids Res] 2008 Mar; Vol. 36 (4), pp. e22. Date of Electronic Publication: 2008 Jan 30.
Typ publikacji:
Evaluation Study; Journal Article; Research Support, N.I.H., Extramural; Research Support, Non-U.S. Gov't
Język:
English
Imprint Name(s):
Publication: 1992- : Oxford : Oxford University Press
Original Publication: London, Information Retrieval ltd.
MeSH Terms:
Software*
Protein Serine-Threonine Kinases/*metabolism
Internet ; Phosphopeptides/chemistry ; Phosphorylation ; Phosphoserine/analysis ; Phosphothreonine/analysis ; Sequence Analysis, Protein
References:
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Grant Information:
R21 CA126209 United States CA NCI NIH HHS; R43 GM076941 United States GM NIGMS NIH HHS; 1R21CA126209 United States CA NCI NIH HHS
Substance Nomenclature:
0 (Phosphopeptides)
1114-81-4 (Phosphothreonine)
17885-08-4 (Phosphoserine)
EC 2.7.11.1 (Protein Serine-Threonine Kinases)
Entry Date(s):
Date Created: 20080201 Date Completed: 20080318 Latest Revision: 20240414
Update Code:
20240414
PubMed Central ID:
PMC2275094
DOI:
10.1093/nar/gkm848
PMID:
18234718
Czasopismo naukowe
Meta-predictors make predictions by organizing and processing the predictions produced by several other predictors in a defined problem domain. A proficient meta-predictor not only offers better predicting performance than the individual predictors from which it is constructed, but it also relieves experimentally researchers from making difficult judgments when faced with conflicting results made by multiple prediction programs. As increasing numbers of predicting programs are being developed in a large number of fields of life sciences, there is an urgent need for effective meta-prediction strategies to be investigated. We compiled four unbiased phosphorylation site datasets, each for one of the four major serine/threonine (S/T) protein kinase families-CDK, CK2, PKA and PKC. Using these datasets, we examined several meta-predicting strategies with 15 phosphorylation site predictors from six predicting programs: GPS, KinasePhos, NetPhosK, PPSP, PredPhospho and Scansite. Meta-predictors constructed with a generalized weighted voting meta-predicting strategy with parameters determined by restricted grid search possess the best performance, exceeding that of all individual predictors in predicting phosphorylation sites of all four kinase families. Our results demonstrate a useful decision-making tool for analysing the predictions of the various S/T phosphorylation site predictors. An implementation of these meta-predictors is available on the web at: http://MetaPred.umn.edu/MetaPredPS/.

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