PSMD10
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(Human) GRCh37 - chrX:107327435..107334874 (7.44 kb) View in Genome Browser
(Mouse) NCBIM37 - chrX:137482964..137491267 (8.30 kb) View in Genome Browser
HaemAtlas Expression Table for PSMD10:
Expression Legend
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Cell Types Showing Expression: Available
Users should be aware that the scale represents a rank within an experiment rather than a normalized expression signal.
| Human | Mouse | Rat | ||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| ductal cells | exocrine pancreas | pancreatic islets | primary beta cells | Pancreatic Islets MPSS | beta cell line | pancreatic islets | whole pancreas | alpha cell | beta cell line | pancreatic islets | primary beta cells | whole pancreas |
Expression Legend
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The Beta Cell Gene Atlas is a collection of almost all available public microarray data generated with pancreatic beta cells and related cell lines and types. The expression data comes from 131 array analyses derived from 28 experiments (open details in a new window). The basal (untreated cell) expression signal intensity values in each array were converted to ranks within the experiments; the highest value was used for genes represented by more than one probe. The rank values of genes in a given cell type were averaged with other calculated values from experiments performed with the same cell type. The rank transformation of the expression values enable comparison of gene expression across different organisms and tissues.
A red border around a cell indicates greater certainty in the data; specifically, the gene has >0.95 probability of being expressed in the tissue.
Tissues Showing Expression: Available
| Users should be aware that the scale represents a rank within an experiment rather than a normalized expression signal. | ||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||
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Expression Legend
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| Signal intensity values were converted to ranks within the experiments. For genes represented by more than one probeset, we averaged the intensity signals for each probeset across all tissues and chose the probeset with the highest average value. The rank transformation of the expression values enables comparison of gene expression across different organisms and tissues. | |||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||||
Interactions Table for PSMD10:The PSMD10 interactions are shown below. Each row lists the two interactors, the sources which document this as an interaction, a classification of the interaction as empirical or predicted, and Pubmed IDs (if any) for the interaction.
The table of interactions is downloadable as a text file. Please note that the text file will not include data from HPRD due to restrictions imposed by the HPRD funding sources.
| Interactor | Interactor | Sources | Classification | Pubmed IDs |
| PSMD10 | CDK4 | HPRD | empirical | 11779854 |
| PSMD10 | PSME3 | Reactome | predicted | |
| PSMD10 | PSMD14 | IntAct, BioGRID, Reactome, Sanger Interaction Map | empirical | 19615732 19412159 15345047 |
| PSMD10 | PSMB11 | Reactome | predicted | |
| PSMD10 | PSMA8 | Reactome | predicted | |
| PSMD10 | PSME4 | Reactome | predicted | |
| PSMD10 | PSAT1 | IntAct | empirical | 21988832 |
| PSMD10 | MAGEA4 | HPRD, IntAct | empirical | 12525503 |
| PSMD10 | MDM2 | HPRD, BioGRID | empirical | 16023600 18332869 17904523 |
| PSMD10 | NFKB1 | BioGRID | empirical | 17904523 |
| PSMD10 | UCHL5 | IntAct, BioGRID | empirical | 19490896 19615732 |
| PSMD10 | PSMA1 | Reactome | predicted | |
| PSMD10 | PSMA2 | Reactome | predicted | |
| PSMD10 | PSMA3 | Reactome | predicted | |
| PSMD10 | PSMA4 | Reactome | predicted | |
| PSMD10 | PSMA5 | Reactome | predicted | |
| PSMD10 | PSMA6 | Reactome | predicted | |
| PSMD10 | PSMA7 | Reactome | predicted | |
| PSMD10 | PSMB1 | Reactome | predicted | |
| PSMD10 | PSMB2 | Reactome | predicted | |
| PSMD10 | PSMB3 | Reactome | predicted | |
| PSMD10 | PSMB4 | Reactome | predicted | |
| PSMD10 | PSMB5 | Reactome | predicted | |
| PSMD10 | PSMB6 | Reactome | predicted | |
| PSMD10 | PSMB7 | Reactome | predicted | |
| PSMD10 | PSMB8 | Reactome | predicted | |
| PSMD10 | PSMB9 | Reactome | predicted | |
| PSMD10 | PSMB10 | Reactome | predicted | |
| PSMD10 | PSMC1 | IntAct, BioGRID, Reactome, Sanger Interaction Map | empirical | 17353931 19490896 15345047 |
| PSMD10 | PSMC2 | IntAct, Reactome, Sanger Interaction Map | empirical | 17353931 19490896 15345047 |
| PSMD10 | PSMC3 | IntAct, BioGRID, Reactome | empirical | 17353931 19490896 |
| PSMD10 | PSMC4 | HPRD, MINT, IntAct, BioGRID, Reactome, Sanger Interaction Map | empirical | 11779854 16189514 17353931 12525503 19490896 21988832 19412159 15345047 |
| PSMD10 | PSMC5 | IntAct, BioGRID, Reactome | empirical | 17353931 19490896 |
| PSMD10 | PSMC6 | IntAct, BioGRID, Reactome, Sanger Interaction Map | empirical | 17353931 19490896 15345047 |
| PSMD10 | PSMD1 | IntAct, Reactome | empirical | 17353931 19490896 |
| PSMD10 | PSMD2 | IntAct, Reactome | empirical | 17353931 |
| PSMD10 | PSMD3 | IntAct, BioGRID, Reactome | empirical | 17353931 |
| PSMD10 | PSMD4 | IntAct, BioGRID, Reactome, Sanger Interaction Map | empirical | 17353931 15345047 |
| PSMD10 | PSMD5 | Reactome | predicted | |
| PSMD10 | PSMD7 | IntAct, Reactome, Sanger Interaction Map | empirical | 17353931 19615732 15345047 |
| PSMD10 | PSMD8 | Reactome | predicted | |
| PSMD10 | PSMD9 | Reactome | predicted | |
| PSMD10 | PSMD11 | IntAct, BioGRID, Reactome, Sanger Interaction Map | empirical | 17353931 19490896 15345047 |
| PSMD10 | PSMD12 | IntAct, BioGRID, Reactome | empirical | 17353931 19490896 |
| PSMD10 | PSMD13 | IntAct, Reactome, Sanger Interaction Map | empirical | 19490896 15345047 |
| PSMD10 | PSME1 | Reactome | predicted | |
| PSMD10 | PSME2 | Reactome | predicted | |
| PSMD10 | RB1 | HPRD, IntAct | empirical | 10613832 12525503 |
| PSMD10 | RELA | BioGRID | empirical | 17904523 |
| PSMD10 | ELOVL1 | IntAct, BioGRID | empirical | 17353931 |
| PSMD10 | TP53 | BioGRID | empirical | 16023600 |
| PSMD10 | UBC | BioGRID | empirical | 16196087 22118674 21139048 21890473 21906983 |
| PSMD10 | PAAF1 | IntAct, BioGRID | empirical | 17353931 19490896 |
| PSMD10 | HIST1H2BC | BioGRID | empirical | 17353931 |
| PSMD10 | LDB1 | IntAct | empirical | 21988832 |
| PSMD10 | DOK2 | IntAct, BioGRID | empirical | 17353931 |
| PSMD10 | USP14 | IntAct, BioGRID | empirical | 19615732 |
| PSMD10 | PSMF1 | Reactome | predicted | |
| PSMD10 | PSMD6 | IntAct, BioGRID, Reactome, Sanger Interaction Map | empirical | 17353931 19490896 15345047 |
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Publications: 91
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Activity-based chemical proteomics accelerates inhibitor development for deubiquitylating enzymes.
Altun M, Kramer HB, Willems LI, McDermott JL, Leach CA, Goldenberg SJ, Kumar KG, Konietzny R, Fischer R, Kogan E, Mackeen MM, McGouran J, Khoronenkova SV, Parsons JL, Dianov GL, Nicholson B, Kessler BM
Chem Biol. 2011
PubMed ID: 22118674
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Gankyrin, a biomarker for epithelial carcinogenesis, is overexpressed in human oral cancer.
Li J, Knobloch TJ, Kresty LA, Zhang Z, Lang JC, Schuller DE, Weghorst CM
Anticancer Res. 2011
PubMed ID: 21868508
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The oncoprotein p28GANK establishes a positive feedback loop in β-catenin signaling.
Dong LW, Yang GZ, Pan YF, Chen Y, Tan YX, Dai RY, Ren YB, Fu J, Wang HY
Cell Res. 2011
PubMed ID: 21691299
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Initial characterization of the human central proteome.
Burkard TR, Planyavsky M, Kaupe I, Breitwieser FP, Bürckstümmer T, Bennett KL, Superti-Furga G, Colinge J
BMC Syst Biol. 2011
PubMed ID: 21269460
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p28GANK overexpression accelerates hepatocellular carcinoma invasiveness and metastasis via phosphoinositol 3-kinase/AKT/hypoxia-inducible factor-1α pathways.
Fu J, Chen Y, Cao J, Luo T, Qian YW, Yang W, Ren YB, Su B, Cao GW, Yang Y, Yan YQ, Shen F, Wu MC, Feng GS, Wang HY
Hepatology. 2011
PubMed ID: 21254169
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Novel gene P28GANK confers multidrug resistance by modulating the expression of MDR-1, Bcl-2 and Bax in osteosarcoma cells.
Wang G, Rong J, Zhou Z, Duo J
Mol Biol (Mosk). 2010
PubMed ID: 21287809
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Gankyrin promotes the proliferation of human pancreatic cancer.
Meng Y, He L, Guo X, Tang S, Zhao X, Du R, Jin J, Bi Q, Li H, Nie Y, Liu J, Fan D
Cancer Lett. 2010
PubMed ID: 20483533
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Gankyrin plays an essential role in Ras-induced tumorigenesis through regulation of the RhoA/ROCK pathway in mammalian cells.
Man JH, Liang B, Gu YX, Zhou T, Li AL, Li T, Jin BF, Bai B, Zhang HY, Zhang WN, Li WH, Gong WL, Li HY, Zhang XM
J Clin Invest. 2010
PubMed ID: 20628200
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Systematic resequencing of X-chromosome synaptic genes in autism spectrum disorder and schizophrenia.
Piton A, Gauthier J, Hamdan FF, Lafrenière RG, Yang Y, Henrion E, Laurent S, Noreau A, Thibodeau P, Karemera L, Spiegelman D, Kuku F, Duguay J, Destroismaisons L, Jolivet P, Côté M, Lachapelle K, Diallo O, Raymond A, Marineau C, Champagne N, Xiong L, Gaspar C, Rivière JB, Tarabeux J, Cossette P, Krebs MO, Rapoport JL, Addington A, Delisi LE, Mottron L, Joober R, Fombonne E, Drapeau P, Rouleau GA
Mol Psychiatry. 2010
PubMed ID: 20479760
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Mechanical unfolding of an ankyrin repeat protein.
Serquera D, Lee W, Settanni G, Marszalek PE, Paci E, Itzhaki LS
Biophys J. 2010
PubMed ID: 20371329
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Overexpression of a novel gene gankyrin correlates with the malignant phenotype of colorectal cancer.
Tang S, Yang G, Meng Y, Du R, Li X, Fan R, Zhao L, Bi Q, Jin J, Gao L, Zhang L, Li H, Fan M, Wang Y, Wu K, Liu J, Fan D
Cancer Biol Ther. 2010
PubMed ID: 19901563
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A systems approach reveals that the myogenesis genome network is regulated by the transcriptional repressor RP58.
Yokoyama S, Ito Y, Ueno-Kudoh H, Shimizu H, Uchibe K, Albini S, Mitsuoka K, Miyaki S, Kiso M, Nagai A, Hikata T, Osada T, Fukuda N, Yamashita S, Harada D, Mezzano V, Kasai M, Puri PL, Hayashizaki Y, Okado H, Hashimoto M, Asahara H
Dev Cell. 2009
PubMed ID: 20059953
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p28GANK inhibits endoplasmic reticulum stress-induced cell death via enhancement of the endoplasmic reticulum adaptive capacity.
Dai RY, Chen Y, Fu J, Dong LW, Ren YB, Yang GZ, Qian YW, Cao J, Tang SH, Yang SL, Wang HY
Cell Res. 2009
PubMed ID: 19736567
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Defining the human deubiquitinating enzyme interaction landscape.
Sowa ME, Bennett EJ, Gygi SP, Harper JW
Cell. 2009
PubMed ID: 19615732
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The overexpression of multidrug resistance-associated proteins and gankyrin contribute to arsenic trioxide resistance in liver and gastric cancer cells.
Chen X, Zhang M, Liu LX
Oncol Rep. 2009
PubMed ID: 19513507
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Chaperone-mediated pathway of proteasome regulatory particle assembly.
Roelofs J, Park S, Haas W, Tian G, McAllister FE, Huo Y, Lee BH, Zhang F, Shi Y, Gygi SP, Finley D
Nature. 2009
PubMed ID: 19412159
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Assembly pathway of the Mammalian proteasome base subcomplex is mediated by multiple specific chaperones.
Kaneko T, Hamazaki J, Iemura S, Sasaki K, Furuyama K, Natsume T, Tanaka K, Murata S
Cell. 2009
PubMed ID: 19490896
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Lineage-specific biology revealed by a finished genome assembly of the mouse.
Church DM, Goodstadt L, Hillier LW, Zody MC, Goldstein S, She X, Bult CJ, Agarwala R, Cherry JL, DiCuccio M, Hlavina W, Kapustin Y, Meric P, Maglott D, Birtle Z, Marques AC, Graves T, Zhou S, Teague B, Potamousis K, Churas C, Place M, Herschleb J, Runnheim R, Forrest D, Amos-Landgraf J, Schwartz DC, Cheng Z, Lindblad-Toh K, Eichler EE, Ponting CP, Mouse Genome Sequencing Consortium
PLoS Biol. 2009
PubMed ID: 19468303
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Overexpression of a new gene P28GANK confers multidrug resistance of gastric cancer cells.
Li X, Zhang Y, Xiong C, Jin H, Jing B, Zhang Y, Fan D
Cancer Invest. 2009
PubMed ID: 19235584
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Functional characterization of human oncoprotein gankyrin in Zebrafish.
Kim SY, Hur W, Choi JE, Kim D, Wang JS, Yoon HY, Piao LS, Yoon SK
Exp Mol Med. 2009
PubMed ID: 19287195
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Involvement of the mitochondrial pathway in p53-independent apoptosis induced by p28GANK knockdown in Hep3B cells.
Wang J, Wang XF, Zhang LG, Xie SY, Li ZL, Li YJ, Li HH, Jiao F
Cytogenet Genome Res. 2009
PubMed ID: 19729910
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p28GANK knockdown-derived reactive oxygen species induces apoptosis through mitochondrial dysfunction mediated by p38 in HepG2 cells.
Wang X, Li H, Chen Y, Fu J, Ren Y, Dong L, Tang S, Liu S, Wu M, Wang H
Int J Oncol. 2008
PubMed ID: 18813787
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Retinoblastoma protein modulates gankyrin-MDM2 in regulation of p53 stability and chemosensitivity in cancer cells.
Qiu W, Wu J, Walsh EM, Zhang Y, Chen CY, Fujita J, Xiao ZX
Oncogene. 2008
PubMed ID: 18332869
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Toward a confocal subcellular atlas of the human proteome.
Barbe L, Lundberg E, Oksvold P, Stenius A, Lewin E, Björling E, Asplund A, Pontén F, Brismar H, Uhlén M, Andersson-Svahn H
Mol Cell Proteomics. 2008
PubMed ID: 18029348
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Association of gankyrin protein expression with early clinical stages and insulin-like growth factor-binding protein 5 expression in human hepatocellular carcinoma.
Umemura A, Itoh Y, Itoh K, Yamaguchi K, Nakajima T, Higashitsuji H, Onoue H, Fukumoto M, Okanoue T, Fujita J
Hepatology. 2008
PubMed ID: 18161051
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Gankyrin oncoprotein overexpression as a critical factor for tumor growth in human esophageal squamous cell carcinoma and its clinical significance.
Ortiz CM, Ito T, Tanaka E, Tsunoda S, Nagayama S, Sakai Y, Higashitsuji H, Fujita J, Shimada Y
Int J Cancer. 2008
PubMed ID: 17935131
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Oncoprotein p28 GANK binds to RelA and retains NF-kappaB in the cytoplasm through nuclear export.
Chen Y, Li HH, Fu J, Wang XF, Ren YB, Dong LW, Tang SH, Liu SQ, Wu MC, Wang HY
Cell Res. 2007
PubMed ID: 18040287
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The oncoprotein gankyrin interacts with RelA and suppresses NF-kappaB activity.
Higashitsuji H, Higashitsuji H, Liu Y, Masuda T, Fujita T, Abdel-Aziz HI, Kongkham S, Dawson S, John Mayer R, Itoh Y, Sakurai T, Itoh K, Fujita J
Biochem Biophys Res Commun. 2007
PubMed ID: 17904523
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Dissection of protein-protein interaction and CDK4 inhibition in the oncogenic versus tumor suppressing functions of gankyrin and P16.
Mahajan A, Guo Y, Yuan C, Weghorst CM, Tsai MD, Li J
J Mol Biol. 2007
PubMed ID: 17881001
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Mass spectrometric characterization of the affinity-purified human 26S proteasome complex.
Wang X, Chen CF, Baker PR, Chen PL, Kaiser P, Huang L
Biochemistry. 2007
PubMed ID: 17323924
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Evidence that proteasome-dependent degradation of the retinoblastoma protein in cells lacking A-type lamins occurs independently of gankyrin and MDM2.
Nitta RT, Smith CL, Kennedy BK
PLoS ONE. 2007
PubMed ID: 17896003
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Large-scale mapping of human protein-protein interactions by mass spectrometry.
Ewing RM, Chu P, Elisma F, Li H, Taylor P, Climie S, McBroom-Cerajewski L, Robinson MD, O'Connor L, Li M, Taylor R, Dharsee M, Ho Y, Heilbut A, Moore L, Zhang S, Ornatsky O, Bukhman YV, Ethier M, Sheng Y, Vasilescu J, Abu-Farha M, Lambert JP, Duewel HS, Stewart II, Kuehl B, Hogue K, Colwill K, Gladwish K, Muskat B, Kinach R, Adams SL, Moran MF, Morin GB, Topaloglou T, Figeys D
Mol Syst Biol. 2007
PubMed ID: 17353931
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Large-scale analysis of the human ubiquitin-related proteome.
Matsumoto M, Hatakeyama S, Oyamada K, Oda Y, Nishimura T, Nakayama KI
Proteomics. 2005
PubMed ID: 16196087
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Integrator, a multiprotein mediator of small nuclear RNA processing, associates with the C-terminal repeat of RNA polymerase II.
Baillat D, Hakimi MA, Näär AM, Shilatifard A, Cooch N, Shiekhattar R
Cell. 2005
PubMed ID: 16239144
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Towards a proteome-scale map of the human protein-protein interaction network.
Rual JF, Venkatesan K, Hao T, Hirozane-Kishikawa T, Dricot A, Li N, Berriz GF, Gibbons FD, Dreze M, Ayivi-Guedehoussou N, Klitgord N, Simon C, Boxem M, Milstein S, Rosenberg J, Goldberg DS, Zhang LV, Wong SL, Franklin G, Li S, Albala JS, Lim J, Fraughton C, Llamosas E, Cevik S, Bex C, Lamesch P, Sikorski RS, Vandenhaute J, Zoghbi HY, Smolyar A, Bosak S, Sequerra R, Doucette-Stamm L, Cusick ME, Hill DE, Roth FP, Vidal M
Nature. 2005
PubMed ID: 16189514
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Antisense transcription in the mammalian transcriptome.
Katayama S, Tomaru Y, Kasukawa T, Waki K, Nakanishi M, Nakamura M, Nishida H, Yap CC, Suzuki M, Kawai J, Suzuki H, Carninci P, Hayashizaki Y, Wells C, Frith M, Ravasi T, Pang KC, Hallinan J, Mattick J, Hume DA, Lipovich L, Batalov S, Engström PG, Mizuno Y, Faghihi MA, Sandelin A, Chalk AM, Mottagui-Tabar S, Liang Z, Lenhard B, Wahlestedt C, RIKEN Genome Exploration Research Group, Genome Science Group (Genome Network Project Core Group), FANTOM Consortium
Science. 2005
PubMed ID: 16141073
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The transcriptional landscape of the mammalian genome.
Carninci P, Kasukawa T, Katayama S, Gough J, Frith MC, Maeda N, Oyama R, Ravasi T, Lenhard B, Wells C, Kodzius R, Shimokawa K, Bajic VB, Brenner SE, Batalov S, Forrest AR, Zavolan M, Davis MJ, Wilming LG, Aidinis V, Allen JE, Ambesi-Impiombato A, Apweiler R, Aturaliya RN, Bailey TL, Bansal M, Baxter L, Beisel KW, Bersano T, Bono H, Chalk AM, Chiu KP, Choudhary V, Christoffels A, Clutterbuck DR, Crowe ML, Dalla E, Dalrymple BP, de Bono B, Della Gatta G, di Bernardo D, Down T, Engstrom P, Fagiolini M, Faulkner G, Fletcher CF, Fukushima T, Furuno M, Futaki S, Gariboldi M, Georgii-Hemming P, Gingeras TR, Gojobori T, Green RE, Gustincich S, Harbers M, Hayashi Y, Hensch TK, Hirokawa N, Hill D, Huminiecki L, Iacono M, Ikeo K, Iwama A, Ishikawa T, Jakt M, Kanapin A, Katoh M, Kawasawa Y, Kelso J, Kitamura H, Kitano H, Kollias G, Krishnan SP, Kruger A, Kummerfeld SK, Kurochkin IV, Lareau LF, Lazarevic D, Lipovich L, Liu J, Liuni S, McWilliam S, Madan Babu M, Madera M, Marchionni L, Matsuda H, Matsuzawa S, Miki H, Mignone F, Miyake S, Morris K, Mottagui-Tabar S, Mulder N, Nakano N, Nakauchi H, Ng P, Nilsson R, Nishiguchi S, Nishikawa S, Nori F, Ohara O, Okazaki Y, Orlando V, Pang KC, Pavan WJ, Pavesi G, Pesole G, Petrovsky N, Piazza S, Reed J, Reid JF, Ring BZ, Ringwald M, Rost B, Ruan Y, Salzberg SL, Sandelin A, Schneider C, Schönbach C, Sekiguchi K, Semple CA, Seno S, Sessa L, Sheng Y, Shibata Y, Shimada H, Shimada K, Silva D, Sinclair B, Sperling S, Stupka E, Sugiura K, Sultana R, Takenaka Y, Taki K, Tammoja K, Tan SL, Tang S, Taylor MS, Tegner J, Teichmann SA, Ueda HR, van Nimwegen E, Verardo R, Wei CL, Yagi K, Yamanishi H, Zabarovsky E, Zhu S, Zimmer A, Hide W, Bult C, Grimmond SM, Teasdale RD, Liu ET, Brusic V, Quackenbush J, Wahlestedt C, Mattick JS, Hume DA, Kai C, Sasaki D, Tomaru Y, Fukuda S, Kanamori-Katayama M, Suzuki M, Aoki J, Arakawa T, Iida J, Imamura K, Itoh M, Kato T, Kawaji H, Kawagashira N, Kawashima T, Kojima M, Kondo S, Konno H, Nakano K, Ninomiya N, Nishio T, Okada M, Plessy C, Shibata K, Shiraki T, Suzuki S, Tagami M, Waki K, Watahiki A, Okamura-Oho Y, Suzuki H, Kawai J, Hayashizaki Y, FANTOM Consortium, RIKEN Genome Exploration Research Group and Genome Science Group (Genome Network Project Core Group)
Science. 2005
PubMed ID: 16141072
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The oncoprotein gankyrin binds to MDM2/HDM2, enhancing ubiquitylation and degradation of p53.
Higashitsuji H, Higashitsuji H, Itoh K, Sakurai T, Nagao T, Sumitomo Y, Sumitomo H, Masuda T, Dawson S, Shimada Y, Mayer RJ, Fujita J
Cancer Cell. 2005
PubMed ID: 16023600
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Expression of p28GANK and its correlation with RB in human hepatocellular carcinoma.
Tan L, Fu XY, Liu SQ, Li HH, Hong Y, Wu MC, Wang HY
Liver Int. 2005
PubMed ID: 15910504
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The DNA sequence of the human X chromosome.
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Genome Res. 2004
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Solution structure of the human oncogenic protein gankyrin containing seven ankyrin repeats and analysis of its structure--function relationship.
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Biochemistry. 2004
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A novel diagnostic marker, p28GANK distinguishes hepatocellular carcinoma from potential mimics.
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J Cancer Res Clin Oncol. 2004
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EMBO J. 2004
PubMed ID: 15029244
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X-ray structure of human gankyrin, the product of a gene linked to hepatocellular carcinoma.
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Proteins. 2004
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The crystal structure of gankyrin, an oncoprotein found in complexes with cyclin-dependent kinase 4, a 19 S proteasomal ATPase regulator, and the tumor suppressors Rb and p53.
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J Biol Chem. 2004
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The Vif protein of HIV triggers degradation of the human antiretroviral DNA deaminase APOBEC3G.
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Curr Biol. 2003
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Induction of APOBEC3G ubiquitination and degradation by an HIV-1 Vif-Cul5-SCF complex.
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Science. 2003
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J Biol Chem. 2003
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The human immunodeficiency virus type 1 Vif protein reduces intracellular expression and inhibits packaging of APOBEC3G (CEM15), a cellular inhibitor of virus infectivity.
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J Virol. 2003
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HIV-1 Vif protein binds the editing enzyme APOBEC3G and induces its degradation.
Marin M, Rose KM, Kozak SL, Kabat D
Nat Med. 2003
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The antiretroviral enzyme APOBEC3G is degraded by the proteasome in response to HIV-1 Vif.
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Nat Med. 2003
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Human immunodeficiency virus-1 Tat protein interacts with distinct proteasomal alpha and beta subunits.
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Mol Cell. 2003
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KewalRamani VN, Coffin JM
Science. 2003
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Cell. 2003
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Gu Y, Sundquist WI
Nature. 2003
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Nature. 2003
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The cytidine deaminase CEM15 induces hypermutation in newly synthesized HIV-1 DNA.
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Nature. 2003
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DNA deamination: not just a trigger for antibody diversification but also a mechanism for defense against retroviruses.
Harris RS, Sheehy AM, Craig HM, Malim MH, Neuberger MS
Nat Immunol. 2003
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DNA deamination mediates innate immunity to retroviral infection.
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Cell. 2003
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Prophase destruction of Emi1 by the SCF(betaTrCP/Slimb) ubiquitin ligase activates the anaphase promoting complex to allow progression beyond prometaphase.
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Dev Cell. 2003
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Lecossier D, Bouchonnet F, Clavel F, Hance AJ
Science. 2003
PubMed ID: 12750511
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Comprehensive investigation of the molecular defect in vif-deficient human immunodeficiency virus type 1 virions.
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J Virol. 2003
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Proteasomal interactors control activities as diverse as the cell cycle and glutaminergic neurotransmission.
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Biochem Soc Trans. 2003
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MAGE-A4 interacts with the liver oncoprotein gankyrin and suppresses its tumorigenic activity.
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J Biol Chem. 2003
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Proc Natl Acad Sci U S A. 2002
PubMed ID: 12477932
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Analysis of the mouse transcriptome based on functional annotation of 60,770 full-length cDNAs.
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Nature. 2002
PubMed ID: 12466851
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The RTP site shared by the HIV-1 Tat protein and the 11S regulator subunit alpha is crucial for their effects on proteasome function including antigen processing.
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Isolation of a human gene that inhibits HIV-1 infection and is suppressed by the viral Vif protein.
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Nature. 2002
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Overexpression of p28/gankyrin in human hepatocellular carcinoma and its clinical significance.
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A comparison of whole-genome shotgun-derived mouse chromosome 16 and the human genome.
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PubMed ID: 12040188
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Gankyrin is an ankyrin-repeat oncoprotein that interacts with CDK4 kinase and the S6 ATPase of the 26 S proteasome.
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Novel insights into the INK4-CDK4/6-Rb pathway: counter action of gankyrin against INK4 proteins regulates the CDK4-mediated phosphorylation of Rb.
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RIKEN integrated sequence analysis (RISA) system--384-format sequencing pipeline with 384 multicapillary sequencer.
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