Bioinformatics analysis of a Saccharomyces cerevisiae N-terminal proteome provides evidence of alternative translation initiation and post-translational N-terminal acetylation.
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Acylation of Biomolecules in Prokaryotes: a Widespread Strategy for the Control of Biological Function and Metabolic StressN-terminal modifications of cellular proteins: The enzymes involved, their substrate specificities and biological effectsN-alpha-terminal acetylation of histone H4 regulates arginine methylation and ribosomal DNA silencingDe novo missense mutations in the NAA10 gene cause severe non-syndromic developmental delay in males and femalesA Saccharomyces cerevisiae model reveals in vivo functional impairment of the Ogden syndrome N-terminal acetyltransferase NAA10 Ser37Pro mutantThe biological functions of Naa10 - From amino-terminal acetylation to human diseaseN-terminal Proteomics Assisted Profiling of the Unexplored Translation Initiation Landscape in Arabidopsis thalianaProtein N-terminal acetyltransferases in cancer.Comparative genome analysis of entomopathogenic fungi reveals a complex set of secreted proteinsN-terminal acetylome analyses and functional insights of the N-terminal acetyltransferase NatB.Unbiased selective isolation of protein N-terminal peptides from complex proteome samples using phospho tagging (PTAG) and TiO(2)-based depletionGenome-wide search for novel human uORFs and N-terminal protein extensions using ribosomal footprintingSingle-residue posttranslational modification sites at the N-terminus, C-terminus or in-between: To be or not to be exposed for enzyme accessDeep proteome coverage based on ribosome profiling aids mass spectrometry-based protein and peptide discovery and provides evidence of alternative translation products and near-cognate translation initiation eventsProteogenomics in microbiology: taking the right turn at the junction of genomics and proteomics.The proteome under translational control.Comprehensive analysis of human protein N-termini enables assessment of various protein forms.A Role for Human N-alpha Acetyltransferase 30 (Naa30) in Maintaining Mitochondrial Integrity.Doublet N-Terminal Oriented Proteomics for N-Terminomics and Proteolytic Processing Identification.Microscopy-based Saccharomyces cerevisiae complementation model reveals functional conservation and redundancy of N-terminal acetyltransferases.From transcriptional complexity to cellular phenotypes: Lessons from yeast.Protease Substrate Profiling by N-Terminal COFRADIC.
P2860
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P2860
Bioinformatics analysis of a Saccharomyces cerevisiae N-terminal proteome provides evidence of alternative translation initiation and post-translational N-terminal acetylation.
description
2011 nî lūn-bûn
@nan
2011年の論文
@ja
2011年学术文章
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2011年学术文章
@zh-cn
2011年学术文章
@zh-hans
2011年学术文章
@zh-my
2011年学术文章
@zh-sg
2011年學術文章
@yue
2011年學術文章
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2011年學術文章
@zh-hant
name
Bioinformatics analysis of a S ...... tional N-terminal acetylation.
@en
Bioinformatics analysis of a S ...... tional N-terminal acetylation.
@nl
type
label
Bioinformatics analysis of a S ...... tional N-terminal acetylation.
@en
Bioinformatics analysis of a S ...... tional N-terminal acetylation.
@nl
prefLabel
Bioinformatics analysis of a S ...... tional N-terminal acetylation.
@en
Bioinformatics analysis of a S ...... tional N-terminal acetylation.
@nl
P2093
P50
P356
P1476
Bioinformatics analysis of a S ...... tional N-terminal acetylation.
@en
P2093
Joël Vandekerckhove
Kris Gevaert
Petra Van Damme
Sven Degroeve
P304
P356
10.1021/PR2002325
P577
2011-06-20T00:00:00Z