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dc.creatorVlastaridis P., Kyriakidou P., Chaliotis A., Van de Peer Y., Oliver S.G., Amoutzias G.D.en
dc.date.accessioned2023-01-31T11:37:02Z
dc.date.available2023-01-31T11:37:02Z
dc.date.issued2017
dc.identifier10.1093/gigascience/giw015
dc.identifier.issn2047217X
dc.identifier.urihttp://hdl.handle.net/11615/80688
dc.description.abstractBackground: Phosphorylation is the most frequent post-translational modification made to proteins and may regulate protein activity as either a molecular digital switch or a rheostat. Despite the cornucopia of high-throughput (HTP) phosphoproteomic data in the last decade, it remains unclear how many proteins are phosphorylated and how many phosphorylation sites (p-sites) can exist in total within a eukaryotic proteome. We present the first reliable estimates of the total number of phosphoproteins and p-sites for four eukaryotes (human, mouse, Arabidopsis, and yeast). Results: In all, 187 HTP phosphoproteomic datasets were filtered, compiled, and studied along with two low-throughput (LTP) compendia. Estimates of the number of phosphoproteins and p-sites were inferred by two methods: Capture-Recapture, and fitting the saturation curve of cumulative redundant vs. cumulative non-redundant phosphoproteins/p-sites. Estimates were also adjusted for different levels of noise within the individual datasets and other confounding factors. We estimate that in total, 13 000, 11 000, and 3000 phosphoproteins and 230 000, 156 000, and 40 000 p-sites exist in human, mouse, and yeast, respectively, whereas estimates for Arabidopsis were not as reliable. Conclusions: Most of the phosphoproteins have been discovered for human, mouse, and yeast, while the dataset for Arabidopsis is still far from complete. The datasets for p-sites are not as close to saturation as those for phosphoproteins. Integration of the LTP data suggests that current HTP phosphoproteomics appears to be capable of capturing 70% to 95% of total phosphoproteins, but only 40% to 60% of total p-sites. © The Author 2017.en
dc.language.isoenen
dc.sourceGigaScienceen
dc.source.urihttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85017265345&doi=10.1093%2fgigascience%2fgiw015&partnerID=40&md5=7848ce7fc54ed8c26903361b1f9a6cc5
dc.subjectphosphoproteinen
dc.subjectproteomeen
dc.subjectphosphoproteinen
dc.subjectproteomeen
dc.subjectArabidopsis thalianaen
dc.subjectArticleen
dc.subjectbinding siteen
dc.subjecthumanen
dc.subjectnonhumanen
dc.subjectphenotypeen
dc.subjectpriority journalen
dc.subjectprotein analysisen
dc.subjectprotein expressionen
dc.subjectprotein phosphorylationen
dc.subjectproteomicsen
dc.subjectSaccharomyces cerevisiaeen
dc.subjectanimalen
dc.subjectArabidopsisen
dc.subjectchemistryen
dc.subjecteukaryotic cellen
dc.subjectmeta analysisen
dc.subjectmetabolismen
dc.subjectmouseen
dc.subjectphosphorylationen
dc.subjectproceduresen
dc.subjectproteomicsen
dc.subjectreproducibilityen
dc.subjectAnimalsen
dc.subjectArabidopsisen
dc.subjectEukaryotic Cellsen
dc.subjectHumansen
dc.subjectMiceen
dc.subjectPhosphoproteinsen
dc.subjectPhosphorylationen
dc.subjectProteomeen
dc.subjectProteomicsen
dc.subjectReproducibility of Resultsen
dc.subjectSaccharomyces cerevisiaeen
dc.subjectOxford University Pressen
dc.titleEstimating the total number of phosphoproteins and phosphorylation sites in eukaryotic proteomesen
dc.typejournalArticleen


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