Proteomic analysis of the human KEOPS complex identifies C 14 ORF 142 as a core subunit homologous to yeast Gon 7
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A. Gingras | D. Durocher | A. Caudy | Jean-Philippe Lambert | F. Sicheri | Timothy | P. Maisonneuve | Hao Huang | R. Laister | L. Wan | R. Szilard | F. Ng | N. Manczyk
[1] D. Durocher,et al. Structural and functional characterization of KEOPS dimerization by Pcc1 and its role in t6A biosynthesis , 2016, Nucleic acids research.
[2] V. de Crécy-Lagard,et al. Global translational impacts of the loss of the tRNA modification t6A in yeast , 2015, Microbial cell.
[3] M. Graille,et al. Crystal structures of the Gon7/Pcc1 and Bud32/Cgi121 complexes provide a model for the complete yeast KEOPS complex , 2015, Nucleic acids research.
[4] H. van Tilbeurgh,et al. The ATP-mediated formation of the YgjD–YeaZ–YjeE complex is required for the biosynthesis of tRNA t6A in Escherichia coli , 2015, Nucleic acids research.
[5] B. Stec,et al. New crystal structures of HSC-70 ATP binding domain confirm the role of individual binding pockets and suggest a new method of inhibition. , 2015, Biochimie.
[6] E. Petfalski,et al. Rio1 mediates ATP-dependent final maturation of 40S ribosomal subunits , 2014, Nucleic acids research.
[7] J. Nix,et al. Crystal structure of the nucleotide‐binding domain of mortalin, the mitochondrial Hsp70 chaperone , 2014, Protein science : a publication of the Protein Society.
[8] Guomin Liu,et al. SAINTexpress: improvements and additional features in Significance Analysis of INTeractome software. , 2014, Journal of proteomics.
[9] F. Hartl,et al. Structure and function of Hip, an attenuator of the Hsp70 chaperone cycle , 2013, Nature Structural &Molecular Biology.
[10] Amber L. Couzens,et al. The CRAPome: a Contaminant Repository for Affinity Purification Mass Spectrometry Data , 2013, Nature Methods.
[11] I. Charles,et al. Crystal structure of the dimer of two essential Salmonella typhimurium proteins, YgjD & YeaZ and calorimetric evidence for the formation of a ternary YgjD–YeaZ–YjeE complex , 2013, Protein science : a publication of the Protein Society.
[12] G. Poda,et al. Reconstitution and characterization of eukaryotic N6-threonylcarbamoylation of tRNA using a minimal enzyme system , 2013, Nucleic acids research.
[13] Tsutomu Suzuki,et al. A cyclic form of N6-threonylcarbamoyladenosine as a widely distributed tRNA hypermodification. , 2013, Nature chemical biology.
[14] V. de Crécy-Lagard,et al. Biosynthesis and function of posttranscriptional modifications of transfer RNAs. , 2012, Annual review of genetics.
[15] C. T. Lauhon. Mechanism of N6-threonylcarbamoyladenonsine (t(6)A) biosynthesis: isolation and characterization of the intermediate threonylcarbamoyl-AMP. , 2012, Biochemistry.
[16] E. Hurt,et al. ATPase-dependent role of the atypical kinase Rio2 on the evolving pre-40S subunit , 2012, Nature Structural &Molecular Biology.
[17] H. Stunnenberg,et al. The Human EKC/KEOPS Complex Is Recruited to Cullin2 Ubiquitin Ligases by the Human Tumour Antigen PRAME , 2012, PloS one.
[18] Amber L. Couzens,et al. Mass spectrometry approaches to study mammalian kinase and phosphatase associated proteins. , 2012, Methods.
[19] D. Scheel,et al. The O-carbamoyltransferase TobZ catalyzes an ancient enzymatic reaction. , 2012, Angewandte Chemie.
[20] V. de Crécy-Lagard,et al. Biosynthesis of Threonylcarbamoyl Adenosine (t6A), a Universal tRNA Nucleoside* , 2012, The Journal of Biological Chemistry.
[21] Natalie I. Tasman,et al. iProphet: Multi-level Integrative Analysis of Shotgun Proteomic Data Improves Peptide and Protein Identification Rates and Error Estimates* , 2011, Molecular & Cellular Proteomics.
[22] Brett Larsen,et al. A cost–benefit analysis of multidimensional fractionation of affinity purification‐mass spectrometry samples , 2011, Proteomics.
[23] Mike Wood,et al. Adenosine-derived inhibitors of 78 kDa glucose regulated protein (Grp78) ATPase: insights into isoform selectivity. , 2011, Journal of medicinal chemistry.
[24] Brett Larsen,et al. Structure-Function Analysis of Core STRIPAK Proteins , 2011, The Journal of Biological Chemistry.
[25] E. Koonin,et al. The highly conserved KEOPS/EKC complex is essential for a universal tRNA modification, t6A , 2011, The EMBO journal.
[26] Tamer Kahveci,et al. A role for the universal Kae1/Qri7/YgjD (COG0533) family in tRNA modification , 2011, The EMBO journal.
[27] Tony Pawson,et al. ProHits: an integrated software platform for mass spectrometry-based interaction proteomics , 2010, Nature Biotechnology.
[28] Natalie I. Tasman,et al. A guided tour of the Trans‐Proteomic Pipeline , 2010, Proteomics.
[29] H. Schüler,et al. Crystal Structures of the ATPase Domains of Four Human Hsp70 Isoforms: HSPA1L/Hsp70-hom, HSPA2/Hsp70-2, HSPA6/Hsp70B', and HSPA5/BiP/GRP78 , 2010, PloS one.
[30] P. Forterre,et al. Qri7/OSGEPL, the mitochondrial version of the universal Kae1/YgjD protein, is essential for mitochondrial genome maintenance , 2009, Nucleic acids research.
[31] A. Emili,et al. Conserved Network of Proteins Essential for Bacterial Viability , 2009, Journal of bacteriology.
[32] V. de Crécy-Lagard,et al. The universal YrdC/Sua5 family is required for the formation of threonylcarbamoyladenosine in tRNA , 2009, Nucleic acids research.
[33] D. Durocher,et al. Atomic structure of the KEOPS complex: an ancient protein kinase-containing molecular machine. , 2008, Molecular cell.
[34] N. Grishin,et al. PROMALS3D: a tool for multiple protein sequence and structure alignments , 2008, Nucleic acids research.
[35] K. Hofmann,et al. Yeast homolog of a cancer‐testis antigen defines a new transcription complex , 2006, The EMBO journal.
[36] David Lydall,et al. A Genome-Wide Screen Identifies the Evolutionarily Conserved KEOPS Complex as a Telomere Regulator , 2006, Cell.
[37] JamesC . Anderson,et al. The bipartite structure of the tRNA m1A58 methyltransferase from S. cerevisiae is conserved in humans. , 2005, RNA.
[38] Bruce A Johnson,et al. Using NMRView to visualize and analyze the NMR spectra of macromolecules. , 2004, Methods in molecular biology.
[39] A. Hinnebusch,et al. The Gcd10p/Gcd14p complex is the essential two-subunit tRNA(1-methyladenosine) methyltransferase of Saccharomyces cerevisiae. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[40] A. Hinnebusch,et al. The essential Gcd10p-Gcd14p nuclear complex is required for 1-methyladenosine modification and maturation of initiator methionyl-tRNA. , 1998, Genes & development.
[41] S. Grzesiek,et al. NMRPipe: A multidimensional spectral processing system based on UNIX pipes , 1995, Journal of biomolecular NMR.
[42] K. Kuo,et al. Ribonucleoside analysis by reversed-phase high-performance liquid chromatography. , 1989, Journal of chromatography.
[43] E. Harlow,et al. Antibodies: A Laboratory Manual , 1988 .
[44] B. Elkins,et al. The enzymatic synthesis of N-(purin-6-ylcarbamoyl)threonine, an anticodon-adjacent base in transfer ribonucleic acid. , 1974, Biochemistry.
[45] G. Chheda,et al. Biosynthesis of N-(purin-6-ylcarbamoyl)-L-threonine riboside. Incorporation of L-threonine in vivo into modified nucleoside of transfer ribonucleic acid. , 1972, The Biochemical journal.
[46] S. Nishimura,et al. The presence of N-[9-(c-D-ribofuranosyl)purin-6-ylcarbamoyl] threonine in isoleucine, threonine and asparagine tRNAs from Escherichia coli. , 1972, FEBS letters.