Large-scale analysis of the human ubiquitin-related proteome

被引:148
作者
Matsumoto, M
Hatakeyama, S
Oyamada, K
Oda, Y
Nishimura, T
Nakayama, KI
机构
[1] Kyushu Univ, Med Inst Bioregulat, Dept Mol & Cellular Biol, Higashi Ku, Fukuoka 8128582, Japan
[2] Japan Sci & Technol Corp, JST, CREST, Kawaguchi, Saitama, Japan
[3] Kyushu Univ, Med Inst Bioregulat, Div Mol Design, Higashi Ku, Fukuoka 8128582, Japan
[4] Eisai & Co Ltd, Lab Seeds Finding Technol, Tsukuba, Ibaraki 30026, Japan
[5] Tokyo Med Univ, Clin Proteome Ctr, Tokyo, Japan
关键词
MS; PTM; ubiquitin;
D O I
10.1002/pmic.200401280
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Protein ubiquitylation contributes to the regulation of many cellular processes including protein degradation, receptor internalization, and repair of DNA damage. We now present a comprehensive characterization of ubiquitin-conjugated and ubiquitin-associated proteins in human cells. The proteins were purified by immunoaffinity chromatography under denaturing or native conditions. They were then digested with trypsin, and the resulting peptides were analyzed by 2-D LC and MS/MS. A total of 670 distinct proteins were identified; 345 proteins (51%) were classified as Urp-D (ubiquitin-related proteome under the denaturing condition) and comprised ubiquitin-conjugated molecules, whereas 325 proteins (49%) were classified as Urp-N (ubiquitin-related proteome only under the native condition) and included molecules that associated with ubiquitylated proteins. The proportions of proteins in various functional categories differed substantially between Urp-D and Urp-N. Many ribosomal subunits were detected in the Urp-D group of proteins and several of these subunits were directly shown to be ubiquitylated by mass spectrometric analysis, suggesting that ubiquitylation might play an important role in the regulation and/or quality control of ribosomal proteins. Our results demonstrate the potential of proteomics analysis of protein ubiquitylation to provide important insight into the regulation of protein stability and other ubiquitin-related cellular functions.
引用
收藏
页码:4145 / 4151
页数:7
相关论文
共 22 条
[1]   Valosin-containing protein is a multiubiquitin chain targeting factor required in ubiquitin-proteasome degradation [J].
Dai, RM ;
Li, CCH .
NATURE CELL BIOLOGY, 2001, 3 (08) :740-744
[2]   Activation of the IκB kinase complex by TRAF6 requires a dimeric ubiquitin-conjugating enzyme complex and a unique polyubiquitin chain [J].
Deng, L ;
Wang, C ;
Spencer, E ;
Yang, LY ;
Braun, A ;
You, JX ;
Slaughter, C ;
Pickart, C ;
Chen, ZJ .
CELL, 2000, 103 (02) :351-361
[3]   Phosphoproteome analysis by mass spectrometry and its application to Saccharomyces cerevisiae [J].
Ficarro, SB ;
McCleland, ML ;
Stukenberg, PT ;
Burke, DJ ;
Ross, MM ;
Shabanowitz, J ;
Hunt, DF ;
White, FM .
NATURE BIOTECHNOLOGY, 2002, 20 (03) :301-305
[4]   PRODUCTION AND CHARACTERIZATION OF MONOCLONAL-ANTIBODIES SPECIFIC TO MULTI-UBIQUITIN CHAINS OF POLYUBIQUITINATED PROTEINS [J].
FUJIMURO, M ;
SAWADA, H ;
YOKOSAWA, H .
FEBS LETTERS, 1994, 349 (02) :173-180
[5]   Functional organization of the yeast proteome by systematic analysis of protein complexes [J].
Gavin, AC ;
Bösche, M ;
Krause, R ;
Grandi, P ;
Marzioch, M ;
Bauer, A ;
Schultz, J ;
Rick, JM ;
Michon, AM ;
Cruciat, CM ;
Remor, M ;
Höfert, C ;
Schelder, M ;
Brajenovic, M ;
Ruffner, H ;
Merino, A ;
Klein, K ;
Hudak, M ;
Dickson, D ;
Rudi, T ;
Gnau, V ;
Bauch, A ;
Bastuck, S ;
Huhse, B ;
Leutwein, C ;
Heurtier, MA ;
Copley, RR ;
Edelmann, A ;
Querfurth, E ;
Rybin, V ;
Drewes, G ;
Raida, M ;
Bouwmeester, T ;
Bork, P ;
Seraphin, B ;
Kuster, B ;
Neubauer, G ;
Superti-Furga, G .
NATURE, 2002, 415 (6868) :141-147
[6]   The ubiquitin-proteasome proteolytic pathway: Destruction for the sake of construction [J].
Glickman, MH ;
Ciechanover, A .
PHYSIOLOGICAL REVIEWS, 2002, 82 (02) :373-428
[7]  
HERSHKO A, 1983, J BIOL CHEM, V258, P8206
[8]   Systematic identification of protein complexes in Saccharomyces cerevisiae by mass spectrometry [J].
Ho, Y ;
Gruhler, A ;
Heilbut, A ;
Bader, GD ;
Moore, L ;
Adams, SL ;
Millar, A ;
Taylor, P ;
Bennett, K ;
Boutilier, K ;
Yang, LY ;
Wolting, C ;
Donaldson, I ;
Schandorff, S ;
Shewnarane, J ;
Vo, M ;
Taggart, J ;
Goudreault, M ;
Muskat, B ;
Alfarano, C ;
Dewar, D ;
Lin, Z ;
Michalickova, K ;
Willems, AR ;
Sassi, H ;
Nielsen, PA ;
Rasmussen, KJ ;
Andersen, JR ;
Johansen, LE ;
Hansen, LH ;
Jespersen, H ;
Podtelejnikov, A ;
Nielsen, E ;
Crawford, J ;
Poulsen, V ;
Sorensen, BD ;
Matthiesen, J ;
Hendrickson, RC ;
Gleeson, F ;
Pawson, T ;
Moran, MF ;
Durocher, D ;
Mann, M ;
Hogue, CWV ;
Figeys, D ;
Tyers, M .
NATURE, 2002, 415 (6868) :180-183
[9]   Lectin affinity capture, isotope-coded tagging and mass spectrometry to identify N-linked glycoproteins [J].
Kaji, H ;
Saito, H ;
Yamauchi, Y ;
Shinkawa, T ;
Taoka, M ;
Hirabayashi, J ;
Kasai, K ;
Takahashi, N ;
Isobe, T .
NATURE BIOTECHNOLOGY, 2003, 21 (06) :667-672
[10]   Molecular clearance of ataxin-3 is regulated by a mammalian E4 [J].
Matsumoto, M ;
Yada, M ;
Hatakeyama, S ;
Ishimoto, H ;
Tanimura, T ;
Tsuji, S ;
Kakizuka, A ;
Kitagawa, M ;
Nakayama, KI .
EMBO JOURNAL, 2004, 23 (03) :659-669