Using mass spectrometry to identify ubiquitin and ubiquitin‐like protein conjugation sites
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[1] H. Hayashi,et al. Thio-modification of Yeast Cytosolic tRNA Requires a Ubiquitin-related System That Resembles Bacterial Sulfur Transfer Systems* , 2008, Journal of Biological Chemistry.
[2] K. Mizuta,et al. SUMO Mediates Interaction of Ebp2p, the Yeast Homolog of Epstein-Barr Virus Nuclear Antigen 1-Binding Protein 2, with a RING Finger Protein Ris1p , 2008, Bioscience, biotechnology, and biochemistry.
[3] K. Sarge,et al. Sumoylation regulates lamin A function and is lost in lamin A mutants associated with familial cardiomyopathies , 2008, The Journal of cell biology.
[4] B. Ha,et al. Structures of proteases for ubiqutin and ubiquitin-like modifiers. , 2008, BMB reports.
[5] Igor Jurisica,et al. Identification of pathways associated with invasive behavior by ovarian cancer cells using multidimensional protein identification technology (MudPIT). , 2008, Molecular bioSystems.
[6] N. Seyfried,et al. Systematic approach for validating the ubiquitinated proteome. , 2008, Analytical chemistry.
[7] Ivan Dikic,et al. Atypical ubiquitin chains: new molecular signals , 2008, EMBO reports.
[8] M. Mann,et al. Iodoacetamide-induced artifact mimics ubiquitination in mass spectrometry , 2008, Nature Methods.
[9] M. Lei,et al. Arsenic degrades PML or PML–RARα through a SUMO-triggered RNF4/ubiquitin-mediated pathway , 2008, Nature Cell Biology.
[10] M. Tatham,et al. RNF4 is a poly-SUMO-specific E3 ubiquitin ligase required for arsenic-induced PML degradation , 2008, Nature Cell Biology.
[11] S. Patterson,et al. The evolution of tools for protein phosphorylation site analysis: from discovery to clinical application. , 2008, BioTechniques.
[12] T. Veenstra,et al. Mass spectrometry: m/z 1983-2008. , 2008, BioTechniques.
[13] D. Xirodimas,et al. Ribosomal proteins are targets for the NEDD8 pathway , 2008, EMBO reports.
[14] J. Kopchick,et al. The use of proteomics to study infectious diseases. , 2008, Infectious disorders drug targets.
[15] Jeffrey J. Jones,et al. A targeted proteomic analysis of the ubiquitin-like modifier nedd8 and associated proteins. , 2008, Journal of proteome research.
[16] V. Wilson,et al. Ubiquitin proteolytic system: focus on SUMO , 2008, Expert review of proteomics.
[17] R. Komel,et al. Ecm11 protein of yeast Saccharomyces cerevisiae is regulated by sumoylation during meiosis. , 2008, FEMS yeast research.
[18] M. Mann,et al. In Vivo Identification of Human Small Ubiquitin-like Modifier Polymerization Sites by High Accuracy Mass Spectrometry and an in Vitro to in Vivo Strategy*S , 2008, Molecular & Cellular Proteomics.
[19] Yun He,et al. A novel method for high accuracy sumoylation site prediction from protein sequences , 2008, BMC Bioinformatics.
[20] H. Shih,et al. Daxx mediates SUMO-dependent transcriptional control and subnuclear compartmentalization. , 2007, Biochemical Society transactions.
[21] Erica S. Johnson,et al. Ubiquitin-dependent Proteolytic Control of SUMO Conjugates* , 2007, Journal of Biological Chemistry.
[22] Mary B. Kroetz,et al. The Yeast Hex3·Slx8 Heterodimer Is a Ubiquitin Ligase Stimulated by Substrate Sumoylation* , 2007, Journal of Biological Chemistry.
[23] B. Dahlmann. Role of proteasomes in disease , 2007, BMC Biochemistry.
[24] M. MacCoss,et al. Quantitative Profiling of Ubiquitylated Proteins Reveals Proteasome Substrates and the Substrate Repertoire Influenced by the Rpn10 Receptor Pathway*S , 2007, Molecular & Cellular Proteomics.
[25] Y. Ohsumi,et al. Atg8, a Ubiquitin-like Protein Required for Autophagosome Formation, Mediates Membrane Tethering and Hemifusion , 2007, Cell.
[26] Aedín C Culhane,et al. RAP80 Targets BRCA1 to Specific Ubiquitin Structures at DNA Damage Sites , 2007, Science.
[27] L. Lerman,et al. Ubiquitin and ubiquitin-like proteins in protein regulation. , 2007, Circulation research.
[28] A. Dejean,et al. SUMO, the three Rs and cancer. , 2007, Current topics in microbiology and immunology.
[29] M. Mann,et al. Distinct and Overlapping Sets of SUMO-1 and SUMO-2 Target Proteins Revealed by Quantitative Proteomics*S , 2006, Molecular & Cellular Proteomics.
[30] S. Jentsch,et al. Control of Rad52 recombination activity by double-strand break-induced SUMO modification , 2006, Nature Cell Biology.
[31] S. Fields,et al. Sumoylation of the budding yeast kinetochore protein Ndc10 is required for Ndc10 spindle localization and regulation of anaphase spindle elongation , 2006, The Journal of cell biology.
[32] G. Cesareni,et al. Conjugation to Nedd8 Instigates Ubiquitylation and Down-regulation of Activated Receptor Tyrosine Kinases* , 2006, Journal of Biological Chemistry.
[33] Li Wang,et al. Solution structure of Urm1 and its implications for the origin of protein modifiers. , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[34] I. Watson,et al. Ubiquitin and ubiquitin-like modifications of the p53 family. , 2006, Neoplasia.
[35] M. Hipp,et al. The UBA Domains of NUB1L Are Required for Binding but Not for Accelerated Degradation of the Ubiquitin-like Modifier FAT10* , 2006, Journal of Biological Chemistry.
[36] Brian Raught,et al. Automated identification of SUMOylation sites using mass spectrometry and SUMmOn pattern recognition software , 2006, Nature Methods.
[37] Yu Xue,et al. SUMOsp: a web server for sumoylation site prediction , 2006, Nucleic Acids Res..
[38] D. Sterner,et al. Histone sumoylation is a negative regulator in Saccharomyces cerevisiae and shows dynamic interplay with positive-acting histone modifications. , 2006, Genes & development.
[39] J. Yates,et al. Improved identification of SUMO attachment sites using C-terminal SUMO mutants and tailored protease digestion strategies. , 2006, Journal of proteome research.
[40] Y. Yarden,et al. Monoubiquitylation: a recurrent theme in membrane protein transport. , 2006, The Israel Medical Association journal : IMAJ.
[41] Simon C Watkins,et al. Epsin 1 is a Polyubiquitin‐Selective Clathrin‐Associated Sorting Protein , 2006, Traffic.
[42] D. Sterner,et al. Sumoylation of the yeast Gcn5 protein. , 2006, Biochemistry.
[43] Guan-Tarn Huang,et al. Identification of human hepatocellular carcinoma-related biomarkers by two-dimensional difference gel electrophoresis and mass spectrometry. , 2005, Journal of proteome research.
[44] E. Borden,et al. Proteomic identification of proteins conjugated to ISG15 in mouse and human cells. , 2005, Biochemical and biophysical research communications.
[45] Xuedong Liu,et al. A Method of Mapping Protein Sumoylation Sites by Mass Spectrometry Using a Modified Small Ubiquitin-like Modifier 1 (SUMO-1) and a Computational Program*S , 2005, Molecular & Cellular Proteomics.
[46] Steven P. Gygi,et al. Weighing in on ubiquitin: the expanding role of mass-spectrometry-based proteomics , 2005, Nature Cell Biology.
[47] Boris Pfander,et al. SUMO-modified PCNA recruits Srs2 to prevent recombination during S phase , 2005, Nature.
[48] Steven Gygi,et al. Human ISG15 conjugation targets both IFN-induced and constitutively expressed proteins functioning in diverse cellular pathways. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[49] Guoliang Chen,et al. A genome‐wide analysis of sumoylation‐related biological processes and functions in human nucleus , 2005, FEBS letters.
[50] R. Hay,et al. SUMO: a history of modification. , 2005, Molecular cell.
[51] Steven P. Gygi,et al. A Proteomic Strategy for Gaining Insights into Protein Sumoylation in Yeast*S , 2005, Molecular & Cellular Proteomics.
[52] C. Borchers,et al. Electrospray ionization tandem mass spectrometry of model peptides reveals diagnostic fragment ions for protein ubiquitination. , 2005, Rapid communications in mass spectrometry : RCM.
[53] Andrew Emili,et al. Defining the SUMO-modified Proteome by Multiple Approaches in Saccharomyces cerevisiae* , 2005, Journal of Biological Chemistry.
[54] Steven P Gygi,et al. Proteomic insights into ubiquitin and ubiquitin-like proteins. , 2005, Current opinion in chemical biology.
[55] Erin K O'Shea,et al. Identification of Sumoylated Proteins by Systematic Immunoprecipitation of the Budding Yeast Proteome* , 2005, Molecular & Cellular Proteomics.
[56] Rovshan G Sadygov,et al. Large-scale database searching using tandem mass spectra: Looking up the answer in the back of the book , 2004, Nature Methods.
[57] Aaron Ciechanover,et al. The ubiquitin system: pathogenesis of human diseases and drug targeting. , 2004, Biochimica et biophysica acta.
[58] John R Yates,et al. Global Analysis of Protein Sumoylation in Saccharomyces cerevisiae* , 2004, Journal of Biological Chemistry.
[59] Bernhard Kuster,et al. A Proteome-wide Approach Identifies Sumoylated Substrate Proteins in Yeast* , 2004, Journal of Biological Chemistry.
[60] K. Khoo,et al. In Vitro Modification of Human Centromere Protein CENP-C Fragments by Small Ubiquitin-like Modifier (SUMO) Protein , 2004, Journal of Biological Chemistry.
[61] M. Mann,et al. The abc's (and xyz's) of peptide sequencing , 2004, Nature Reviews Molecular Cell Biology.
[62] Matthias Mann,et al. A Proteomic Study of SUMO-2 Target Proteins* , 2004, Journal of Biological Chemistry.
[63] Huilin Zhou,et al. Global Analyses of Sumoylated Proteins in Saccharomyces cerevisiae , 2004, Journal of Biological Chemistry.
[64] D. Lane,et al. Mdm2-Mediated NEDD8 Conjugation of p53 Inhibits Its Transcriptional Activity , 2004, Cell.
[65] Robertson Craig,et al. TANDEM: matching proteins with tandem mass spectra. , 2004, Bioinformatics.
[66] Erica S. Johnson,et al. Protein modification by SUMO. , 2004, Annual review of biochemistry.
[67] Keiji Tanaka,et al. A novel protein‐conjugating system for Ufm1, a ubiquitin‐fold modifier , 2004, The EMBO journal.
[68] J. Klco,et al. pVHL Modification by NEDD8 Is Required for Fibronectin Matrix Assembly and Suppression of Tumor Development , 2004, Molecular and Cellular Biology.
[69] P. Pandolfi,et al. SUMO Modification of Huntingtin and Huntington's Disease Pathology , 2004, Science.
[70] D. C. Dias,et al. Nedd8 on cullin: building an expressway to protein destruction , 2004, Oncogene.
[71] Erica S. Johnson,et al. The SUMO Isopeptidase Ulp2 Prevents Accumulation of SUMO Chains in Yeast* , 2003, Journal of Biological Chemistry.
[72] Steven P Gygi,et al. A subset of membrane-associated proteins is ubiquitinated in response to mutations in the endoplasmic reticulum degradation machinery , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[73] G. Sprague,,et al. Attachment of the Ubiquitin-Related Protein Urm1p to the Antioxidant Protein Ahp1p , 2003, Eukaryotic Cell.
[74] Morihiko Nakamura,et al. Characterization of ubiquitin-like polypeptide acceptor protein, a novel pro-apoptotic member of the Bcl2 family. , 2003, European journal of biochemistry.
[75] E. Yeh,et al. Regulation of the NEDD8 Conjugation System by a Splicing Variant, NUB1L* , 2003, Journal of Biological Chemistry.
[76] Steven P Gygi,et al. A proteomics approach to understanding protein ubiquitination , 2003, Nature Biotechnology.
[77] E. Borden,et al. High-throughput Immunoblotting , 2003, The Journal of Biological Chemistry.
[78] A. Toh-E,et al. Comparative analysis of yeast PIAS-type SUMO ligases in vivo and in vitro. , 2003, Journal of biochemistry.
[79] T. Rossman,et al. fau and its ubiquitin-like domain (FUBI) transforms human osteogenic sarcoma (HOS) cells to anchorage-independence , 2003, Oncogene.
[80] C. Slaughter,et al. Identification of a Multifunctional Binding Site on Ubc9p Required for Smt3p Conjugation* , 2002, The Journal of Biological Chemistry.
[81] R. DePinho,et al. SUMO-1 Modification of Histone Deacetylase 1 (HDAC1) Modulates Its Biological Activities* , 2002, The Journal of Biological Chemistry.
[82] G. Dittmar,et al. Role of a Ubiquitin-Like Modification in Polarized Morphogenesis , 2002, Science.
[83] E. Yeh,et al. Targeting of NEDD8 and Its Conjugates for Proteasomal Degradation by NUB1* , 2001, The Journal of Biological Chemistry.
[84] M. Groettrup,et al. The Ubiquitin-like Protein FAT10 Forms Covalent Conjugates and Induces Apoptosis* , 2001, The Journal of Biological Chemistry.
[85] Min Wang,et al. The Small Ubiquitin-like Modifier-1 (SUMO-1) Consensus Sequence Mediates Ubc9 Binding and Is Essential for SUMO-1 Modification* , 2001, The Journal of Biological Chemistry.
[86] S. Jentsch,et al. Ubiquitin and proteasomes: Sumo, ubiquitin's mysterious cousin , 2001, Nature Reviews Molecular Cell Biology.
[87] Takeshi Noda,et al. A ubiquitin-like system mediates protein lipidation , 2000, Nature.
[88] Alexander Varshavsky,et al. The ubiquitin system. , 1998, Annual review of biochemistry.
[89] Z. Ronai,et al. SUMO-1 Modification of Mdm2 Prevents Its Self-Ubiquitination and Increases Mdm2 Ability to Ubiquitinate p53 , 2000, Cell.
[90] R. Dohmen,et al. SUMO conjugation and deconjugation , 2000, Molecular and General Genetics MGG.
[91] Shengyun Fang,et al. Mdm2 Is a RING Finger-dependent Ubiquitin Protein Ligase for Itself and p53* , 2000, The Journal of Biological Chemistry.
[92] Martin Rechsteiner,et al. Recognition of the polyubiquitin proteolytic signal , 2000, The EMBO journal.
[93] D. N. Perkins,et al. Probability‐based protein identification by searching sequence databases using mass spectrometry data , 1999, Electrophoresis.
[94] C. Hill,et al. Crystal Structure of the Human Ubiquitin-like Protein NEDD8 and Interactions with Ubiquitin Pathway Enzymes* , 1998, The Journal of Biological Chemistry.
[95] Michael D. George,et al. A protein conjugation system essential for autophagy , 1998, Nature.
[96] R. Hay,et al. SUMO-1 modification of IkappaBalpha inhibits NF-kappaB activation. , 1998, Molecular cell.
[97] S. Weissman,et al. Olfactory receptor-like genes are located in the human major histocompatibility complex. , 1995, Genomics.
[98] R. Xavier,et al. Human nonspecific suppressor factor (hNSF): cell source and effects on T and B lymphocytes. , 1995, Immunobiology.
[99] J. Yates,et al. An approach to correlate tandem mass spectral data of peptides with amino acid sequences in a protein database , 1994, Journal of the American Society for Mass Spectrometry.
[100] C. Pickart,et al. Substrate properties of site-specific mutant ubiquitin protein (G76A) reveal unexpected mechanistic features of ubiquitin-activating enzyme (E1). , 1994, The Journal of biological chemistry.
[101] A. Haas,et al. Interferon induces a 15-kilodalton protein exhibiting marked homology to ubiquitin. , 1987, The Journal of biological chemistry.