RICTOR
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Other Regions: 1 Available
| Locus | Species | Chromosomal Location | Mb | Number of genes |
|---|---|---|---|---|
| Iddm32 | Rat | chr2:30109071..79796790 | 49.69 | 199 |
(Human) GRCh37 - chr5:38938021..39074510 (136.49 kb) View in Genome Browser
(Mouse) NCBIM37 - chr15:6658381..6750401 (922 kb) View in Genome Browser
(Rat) RGSC3.4 - chr2:55982784..56071528 (88.74 kb) View in Genome Browser
HaemAtlas Expression Table for RICTOR:
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 |
| no data | no data | no data | ||||||||||
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
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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 RICTOR:The RICTOR 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 |
| RICTOR | TUBA1B | BioGRID | empirical | 17461779 |
| RICTOR | GNB2L1 | IntAct | empirical | 21376236 |
| RICTOR | DHRS4 | BioGRID | empirical | 17461779 |
| RICTOR | EHMT2 | BioGRID | empirical | 17461779 |
| RICTOR | CPS1 | BioGRID | empirical | 17461779 |
| RICTOR | DHX36 | BioGRID | empirical | 17461779 |
| RICTOR | AKT1 | IntAct, BioGRID | empirical | 21339740 15718470 |
| RICTOR | RPGRIP1L | IntAct | empirical | 21565611 |
| RICTOR | MTOR | HPRD, MINT, IntAct, BioGRID, Reactome | empirical | 15718470 16603397 16221682 19619545 21045808 17461779 18339839 17565979 19446321 21376236 20801936 15467718 15268862 16919458 16962653 17043309 16183647 20427287 |
| RICTOR | RICTOR | BioGRID | empirical | 17461779 |
| RICTOR | SFN | MINT | empirical | 15778465 |
| RICTOR | HSPA4 | BioGRID | empirical | 17461779 |
| RICTOR | ILK | IntAct | empirical | 18339839 |
| RICTOR | PRR5 | IntAct, BioGRID | empirical | 17461779 |
| RICTOR | PRKCA | MINT | empirical | 18566587 |
| RICTOR | RPTOR | IntAct, BioGRID | empirical | 19446321 16962653 |
| RICTOR | PREX1 | IntAct | empirical | 17565979 21339740 |
| RICTOR | RPL13 | BioGRID | empirical | 17461779 |
| RICTOR | RPL23A | BioGRID | empirical | 21045808 |
| RICTOR | RPL26 | IntAct, BioGRID | empirical | 21376236 21045808 |
| RICTOR | RPS3A | BioGRID | empirical | 17461779 |
| RICTOR | RPS5 | BioGRID | empirical | 21045808 |
| RICTOR | RPS6 | BioGRID | empirical | 21045808 |
| RICTOR | RPS6KB1 | BioGRID | empirical | 15809305 |
| RICTOR | RPS9 | IntAct | empirical | 17461779 |
| RICTOR | MLST8 | IntAct, BioGRID, Reactome | empirical | 17461779 17565979 21376236 |
| RICTOR | SGK1 | BioGRID | empirical | 20832730 |
| RICTOR | DEPTOR | IntAct | empirical | 19446321 |
| RICTOR | TIA1 | BioGRID | empirical | 17461779 |
| RICTOR | UBC | BioGRID | empirical | 21987572 21139048 21890473 21906983 |
| RICTOR | YWHAB | IntAct | empirical | 17461779 |
| RICTOR | YWHAE | IntAct | empirical | 17461779 |
| RICTOR | TUBA1A | BioGRID | empirical | 17461779 |
| RICTOR | MAPKAP1 | IntAct, BioGRID, Reactome | empirical | 17461779 21376236 16962653 17043309 20832730 21045808 |
| RICTOR | ABHD16A | BioGRID | empirical | 17461779 |
| RICTOR | PRR5L | IntAct, BioGRID | empirical | 17461779 |
| RICTOR | CUL1 | BioGRID | empirical | 20832730 |
| RICTOR | RPL23 | BioGRID | empirical | 21045808 |
| RICTOR | RBX1 | BioGRID | empirical | 20832730 |
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Type 1 Diabetes Publications: 1
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Rictor/mTORC2 Is Essential for Maintaining a Balance Between {beta}-Cell Proliferation and Cell Size.
Gu Y, Lindner J, Kumar A, Yuan W, Magnuson MA
Diabetes. 2011
PubMed ID: 21266327
Publications: 106
-
Ubiquitin ligase substrate identification through quantitative proteomics at both the protein and peptide levels.
Lee KA, Hammerle LP, Andrews PS, Stokes MP, Mustelin T, Silva JC, Black RA, Doedens JR
J Biol Chem. 2011
PubMed ID: 21987572
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Sustained activation of mTOR pathway in embryonic neural stem cells leads to development of tuberous sclerosis complex-associated lesions.
Magri L, Cambiaghi M, Cominelli M, Alfaro-Cervello C, Cursi M, Pala M, Bulfone A, Garcìa-Verdugo JM, Leocani L, Minicucci F, Poliani PL, Galli R
Cell Stem Cell. 2011
PubMed ID: 22056141
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The tumor suppressive microRNA miR-218 targets the mTOR component Rictor and inhibits AKT phosphorylation in oral cancer.
Uesugi A, Kozaki K, Tsuruta T, Furuta M, Morita K, Imoto I, Omura K, Inazawa J
Cancer Res. 2011
PubMed ID: 21795477
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The tumor suppressor Tsc1 enforces quiescence of naive T cells to promote immune homeostasis and function.
Yang K, Neale G, Green DR, He W, Chi H
Nat Immunol. 2011
PubMed ID: 21765414
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Role of mTOR in podocyte function and diabetic nephropathy in humans and mice.
Gödel M, Hartleben B, Herbach N, Liu S, Zschiedrich S, Lu S, Debreczeni-Mór A, Lindenmeyer MT, Rastaldi MP, Hartleben G, Wiech T, Fornoni A, Nelson RG, Kretzler M, Wanke R, Pavenstädt H, Kerjaschki D, Cohen CD, Hall MN, Rüegg MA, Inoki K, Walz G, Huber TB
J Clin Invest. 2011
PubMed ID: 21606591
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IkappaB kinase epsilon and TANK-binding kinase 1 activate AKT by direct phosphorylation.
Xie X, Zhang D, Zhao B, Lu MK, You M, Condorelli G, Wang CY, Guan KL
Proc Natl Acad Sci U S A. 2011
PubMed ID: 21464307
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The kinase mTOR regulates the differentiation of helper T cells through the selective activation of signaling by mTORC1 and mTORC2.
Delgoffe GM, Pollizzi KN, Waickman AT, Heikamp E, Meyers DJ, Horton MR, Xiao B, Worley PF, Powell JD
Nat Immunol. 2011
PubMed ID: 21358638
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A new cytosolic pathway from a Parkinson disease-associated kinase, BRPK/PINK1: activation of AKT via mTORC2.
Murata H, Sakaguchi M, Jin Y, Sakaguchi Y, Futami J, Yamada H, Kataoka K, Huh NH
J Biol Chem. 2011
PubMed ID: 21177249
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ER stress inhibits mTORC2 and Akt signaling through GSK-3β-mediated phosphorylation of rictor.
Chen CH, Shaikenov T, Peterson TR, Aimbetov R, Bissenbaev AK, Lee SW, Wu J, Lin HK, Sarbassov dos D
Sci Signal. 2011
PubMed ID: 21343617
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A high-resolution anatomical atlas of the transcriptome in the mouse embryo.
Diez-Roux G, Banfi S, Sultan M, Geffers L, Anand S, Rozado D, Magen A, Canidio E, Pagani M, Peluso I, Lin-Marq N, Koch M, Bilio M, Cantiello I, Verde R, De Masi C, Bianchi SA, Cicchini J, Perroud E, Mehmeti S, Dagand E, Schrinner S, Nürnberger A, Schmidt K, Metz K, Zwingmann C, Brieske N, Springer C, Hernandez AM, Herzog S, Grabbe F, Sieverding C, Fischer B, Schrader K, Brockmeyer M, Dettmer S, Helbig C, Alunni V, Battaini MA, Mura C, Henrichsen CN, Garcia-Lopez R, Echevarria D, Puelles E, Garcia-Calero E, Kruse S, Uhr M, Kauck C, Feng G, Milyaev N, Ong CK, Kumar L, Lam M, Semple CA, Gyenesei A, Mundlos S, Radelof U, Lehrach H, Sarmientos P, Reymond A, Davidson DR, Dollé P, Antonarakis SE, Yaspo ML, Martinez S, Baldock RA, Eichele G, Ballabio A
PLoS Biol. 2011
PubMed ID: 21267068
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Genome-wide shRNA screen reveals increased mitochondrial dependence upon mTORC2 addiction.
Colombi M, Molle KD, Benjamin D, Rattenbacher-Kiser K, Schaefer C, Betz C, Thiemeyer A, Regenass U, Hall MN, Moroni C
Oncogene. 2010
PubMed ID: 21170086
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mTORC2 can associate with ribosomes to promote cotranslational phosphorylation and stability of nascent Akt polypeptide.
Oh WJ, Wu CC, Kim SJ, Facchinetti V, Julien LA, Finlan M, Roux PP, Su B, Jacinto E
EMBO J. 2010
PubMed ID: 21045808
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MicroRNA-related genetic variations as predictors for risk of second primary tumor and/or recurrence in patients with early-stage head and neck cancer.
Zhang X, Yang H, Lee JJ, Kim E, Lippman SM, Khuri FR, Spitz MR, Lotan R, Hong WK, Wu X
Carcinogenesis. 2010
PubMed ID: 20819778
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mTOR complex component Rictor interacts with PKCzeta and regulates cancer cell metastasis.
Zhang F, Zhang X, Li M, Chen P, Zhang B, Guo H, Cao W, Wei X, Cao X, Hao X, Zhang N
Cancer Res. 2010
PubMed ID: 20978191
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Tel2 structure and function in the Hsp90-dependent maturation of mTOR and ATR complexes.
Takai H, Xie Y, de Lange T, Pavletich NP
Genes Dev. 2010
PubMed ID: 20801936
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Rictor forms a complex with Cullin-1 to promote SGK1 ubiquitination and destruction.
Gao D, Wan L, Inuzuka H, Berg AH, Tseng A, Zhai B, Shaik S, Bennett E, Tron AE, Gasser JA, Lau A, Gygi SP, Harper JW, DeCaprio JA, Toker A, Wei W
Mol Cell. 2010
PubMed ID: 20832730
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A nuclear complex of rictor and insulin receptor substrate-2 is associated with albuminuria in diabetic mice.
Singh BK, Singh A, Mascarenhas DD
Metab Syndr Relat Disord. 2010
PubMed ID: 20545557
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Mammalian target of rapamycin protein complex 2 regulates differentiation of Th1 and Th2 cell subsets via distinct signaling pathways.
Lee K, Gudapati P, Dragovic S, Spencer C, Joyce S, Killeen N, Magnuson MA, Boothby M
Immunity. 2010
PubMed ID: 20620941
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Tti1 and Tel2 are critical factors in mammalian target of rapamycin complex assembly.
Kaizuka T, Hara T, Oshiro N, Kikkawa U, Yonezawa K, Takehana K, Iemura S, Natsume T, Mizushima N
J Biol Chem. 2010
PubMed ID: 20427287
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Rictor phosphorylation on the Thr-1135 site does not require mammalian target of rapamycin complex 2.
Boulbes D, Chen CH, Shaikenov T, Agarwal NK, Peterson TR, Addona TA, Keshishian H, Carr SA, Magnuson MA, Sabatini DM, Sarbassov dos D
Mol Cancer Res. 2010
PubMed ID: 20501647
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Fat cell-specific ablation of rictor in mice impairs insulin-regulated fat cell and whole-body glucose and lipid metabolism.
Kumar A, Lawrence JC, Jung DY, Ko HJ, Keller SR, Kim JK, Magnuson MA, Harris TE
Diabetes. 2010
PubMed ID: 20332342
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Phospholipase D stabilizes HDM2 through an mTORC2/SGK1 pathway.
Lyo D, Xu L, Foster DA
Biochem Biophys Res Commun. 2010
PubMed ID: 20438709
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mTOR complex-2 activates ENaC by phosphorylating SGK1.
Lu M, Wang J, Jones KT, Ives HE, Feldman ME, Yao LJ, Shokat KM, Ashrafi K, Pearce D
J Am Soc Nephrol. 2010
PubMed ID: 20338997
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FoxOs inhibit mTORC1 and activate Akt by inducing the expression of Sestrin3 and Rictor.
Chen CC, Jeon SM, Bhaskar PT, Nogueira V, Sundararajan D, Tonic I, Park Y, Hay N
Dev Cell. 2010
PubMed ID: 20412774
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Rictor is a novel target of p70 S6 kinase-1.
Treins C, Warne PH, Magnuson MA, Pende M, Downward J
Oncogene. 2010
PubMed ID: 19935711
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mTORC1-activated S6K1 phosphorylates Rictor on threonine 1135 and regulates mTORC2 signaling.
Julien LA, Carriere A, Moreau J, Roux PP
Mol Cell Biol. 2010
PubMed ID: 19995915
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Dysregulation of the norepinephrine transporter sustains cortical hypodopaminergia and schizophrenia-like behaviors in neuronal rictor null mice.
Siuta MA, Robertson SD, Kocalis H, Saunders C, Gresch PJ, Khatri V, Shiota C, Kennedy JP, Lindsley CW, Daws LC, Polley DB, Veenstra-Vanderweele J, Stanwood GD, Magnuson MA, Niswender KD, Galli A
PLoS Biol. 2010
PubMed ID: 20543991
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Targeting mTORC2 inhibits colon cancer cell proliferation in vitro and tumor formation in vivo.
Roulin D, Cerantola Y, Dormond-Meuwly A, Demartines N, Dormond O
Mol Cancer. 2010
PubMed ID: 20226010
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mTOR phosphorylated at S2448 binds to raptor and rictor.
Rosner M, Siegel N, Valli A, Fuchs C, Hengstschläger M
Amino Acids. 2010
PubMed ID: 19145465
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Muscle inactivation of mTOR causes metabolic and dystrophin defects leading to severe myopathy.
Risson V, Mazelin L, Roceri M, Sanchez H, Moncollin V, Corneloup C, Richard-Bulteau H, Vignaud A, Baas D, Defour A, Freyssenet D, Tanti JF, Le-Marchand-Brustel Y, Ferrier B, Conjard-Duplany A, Romanino K, Bauché S, Hantaï D, Mueller M, Kozma SC, Thomas G, Rüegg MA, Ferry A, Pende M, Bigard X, Koulmann N, Schaeffer L, Gangloff YG
J Cell Biol. 2009
PubMed ID: 20008564
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Targeted inhibition of mammalian target of rapamycin signaling inhibits tumorigenesis of colorectal cancer.
Gulhati P, Cai Q, Li J, Liu J, Rychahou PG, Qiu S, Lee EY, Silva SR, Bowen KA, Gao T, Evers BM
Clin Cancer Res. 2009
PubMed ID: 19934294
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Homozygous loss of BHD causes early embryonic lethality and kidney tumor development with activation of mTORC1 and mTORC2.
Hasumi Y, Baba M, Ajima R, Hasumi H, Valera VA, Klein ME, Haines DC, Merino MJ, Hong SB, Yamaguchi TP, Schmidt LS, Linehan WM
Proc Natl Acad Sci U S A. 2009
PubMed ID: 19850877
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Characterization of Rictor phosphorylation sites reveals direct regulation of mTOR complex 2 by S6K1.
Dibble CC, Asara JM, Manning BD
Mol Cell Biol. 2009
PubMed ID: 19720745
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Involvement of mTORC1 and mTORC2 in regulation of glioblastoma multiforme growth and motility.
Gulati N, Karsy M, Albert L, Murali R, Jhanwar-Uniyal M
Int J Oncol. 2009
PubMed ID: 19724909
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The mTORC2 complex regulates terminal differentiation of C2C12 myoblasts.
Shu L, Houghton PJ
Mol Cell Biol. 2009
PubMed ID: 19564418
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Distinct roles of the mTOR components Rictor and Raptor in MO7e megakaryocytic cells.
Fuhler GM, Tyl MR, Olthof SG, Lyndsay Drayer A, Blom N, Vellenga E
Eur J Haematol. 2009
PubMed ID: 19341427
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Lysine acetylation targets protein complexes and co-regulates major cellular functions.
Choudhary C, Kumar C, Gnad F, Nielsen ML, Rehman M, Walther TC, Olsen JV, Mann M
Science. 2009
PubMed ID: 19608861
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Enhanced interaction between Hsp90 and raptor regulates mTOR signaling upon T cell activation.
Delgoffe GM, Kole TP, Cotter RJ, Powell JD
Mol Immunol. 2009
PubMed ID: 19586661
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Ku-0063794 is a specific inhibitor of the mammalian target of rapamycin (mTOR).
García-Martínez JM, Moran J, Clarke RG, Gray A, Cosulich SC, Chresta CM, Alessi DR
Biochem J. 2009
PubMed ID: 19402821
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Large-scale proteomics analysis of the human kinome.
Oppermann FS, Gnad F, Olsen JV, Hornberger R, Greff Z, Kéri G, Mann M, Daub H
Mol Cell Proteomics. 2009
PubMed ID: 19369195
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mTOR complex 2 in adipose tissue negatively controls whole-body growth.
Cybulski N, Polak P, Auwerx J, Rüegg MA, Hall MN
Proc Natl Acad Sci U S A. 2009
PubMed ID: 19497867
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Lys-N and trypsin cover complementary parts of the phosphoproteome in a refined SCX-based approach.
Gauci S, Helbig AO, Slijper M, Krijgsveld J, Heck AJ, Mohammed S
Anal Chem. 2009
PubMed ID: 19413330
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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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Molecular mechanisms of mTOR-mediated translational control.
Ma XM, Blenis J
Nat Rev Mol Cell Biol. 2009
PubMed ID: 19339977
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mTOR complex 2 is required for the development of prostate cancer induced by Pten loss in mice.
Guertin DA, Stevens DM, Saitoh M, Kinkel S, Crosby K, Sheen JH, Mullholland DJ, Magnuson MA, Wu H, Sabatini DM
Cancer Cell. 2009
PubMed ID: 19185849
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The TSC-mTOR pathway mediates translational activation of TOP mRNAs by insulin largely in a raptor- or rictor-independent manner.
Patursky-Polischuk I, Stolovich-Rain M, Hausner-Hanochi M, Kasir J, Cybulski N, Avruch J, Rüegg MA, Hall MN, Meyuhas O
Mol Cell Biol. 2009
PubMed ID: 19047368
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Quantitative phosphoproteomic analysis of T cell receptor signaling reveals system-wide modulation of protein-protein interactions.
Mayya V, Lundgren DH, Hwang SI, Rezaul K, Wu L, Eng JK, Rodionov V, Han DK
Sci Signal. 2009
PubMed ID: 19690332
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mTOR complex 2 (mTORC2) controls hydrophobic motif phosphorylation and activation of serum- and glucocorticoid-induced protein kinase 1 (SGK1).
García-Martínez JM, Alessi DR
Biochem J. 2008
PubMed ID: 18925875
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Solid tumor proteome and phosphoproteome analysis by high resolution mass spectrometry.
Zanivan S, Gnad F, Wickström SA, Geiger T, Macek B, Cox J, Fässler R, Mann M
J Proteome Res. 2008
PubMed ID: 19367708
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CD40-induced signaling in human endothelial cells results in mTORC2- and Akt-dependent expression of vascular endothelial growth factor in vitro and in vivo.
Dormond O, Contreras AG, Meijer E, Datta D, Flynn E, Pal S, Briscoe DM
J Immunol. 2008
PubMed ID: 19018001
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Regulation of androgen receptor transcriptional activity by rapamycin in prostate cancer cell proliferation and survival.
Wang Y, Mikhailova M, Bose S, Pan CX, deVere White RW, Ghosh PM
Oncogene. 2008
PubMed ID: 18776922
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Skeletal muscle-specific ablation of raptor, but not of rictor, causes metabolic changes and results in muscle dystrophy.
Bentzinger CF, Romanino K, Cloëtta D, Lin S, Mascarenhas JB, Oliveri F, Xia J, Casanova E, Costa CF, Brink M, Zorzato F, Hall MN, Rüegg MA
Cell Metab. 2008
PubMed ID: 19046572
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Large-scale gene trapping in C57BL/6N mouse embryonic stem cells.
Hansen GM, Markesich DC, Burnett MB, Zhu Q, Dionne KM, Richter LJ, Finnell RH, Sands AT, Zambrowicz BP, Abuin A
Genome Res. 2008
PubMed ID: 18799693
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Cytoplasmic and nuclear distribution of the protein complexes mTORC1 and mTORC2: rapamycin triggers dephosphorylation and delocalization of the mTORC2 components rictor and sin1.
Rosner M, Hengstschläger M
Hum Mol Genet. 2008
PubMed ID: 18614546
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Kinase-selective enrichment enables quantitative phosphoproteomics of the kinome across the cell cycle.
Daub H, Olsen JV, Bairlein M, Gnad F, Oppermann FS, Körner R, Greff Z, Kéri G, Stemmann O, Mann M
Mol Cell. 2008
PubMed ID: 18691976
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Hsp70 associates with Rictor and is required for mTORC2 formation and activity.
Martin J, Masri J, Bernath A, Nishimura RN, Gera J
Biochem Biophys Res Commun. 2008
PubMed ID: 18505677
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A quantitative atlas of mitotic phosphorylation.
Dephoure N, Zhou C, Villén J, Beausoleil SA, Bakalarski CE, Elledge SJ, Gygi SP
Proc Natl Acad Sci U S A. 2008
PubMed ID: 18669648
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Essential function of TORC2 in PKC and Akt turn motif phosphorylation, maturation and signalling.
Ikenoue T, Inoki K, Yang Q, Zhou X, Guan KL
EMBO J. 2008
PubMed ID: 18566587
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The mammalian target of rapamycin complex 2 controls folding and stability of Akt and protein kinase C.
Facchinetti V, Ouyang W, Wei H, Soto N, Lazorchak A, Gould C, Lowry C, Newton AC, Mao Y, Miao RQ, Sessa WC, Qin J, Zhang P, Su B, Jacinto E
EMBO J. 2008
PubMed ID: 18566586
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A Rictor-Myo1c complex participates in dynamic cortical actin events in 3T3-L1 adipocytes.
Hagan GN, Lin Y, Magnuson MA, Avruch J, Czech MP
Mol Cell Biol. 2008
PubMed ID: 18426911
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Rictor and integrin-linked kinase interact and regulate Akt phosphorylation and cancer cell survival.
McDonald PC, Oloumi A, Mills J, Dobreva I, Maidan M, Gray V, Wederell ED, Bally MB, Foster LJ, Dedhar S
Cancer Res. 2008
PubMed ID: 18339839
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Combining protein-based IMAC, peptide-based IMAC, and MudPIT for efficient phosphoproteomic analysis.
Cantin GT, Yi W, Lu B, Park SK, Xu T, Lee JD, Yates JR
J Proteome Res. 2008
PubMed ID: 18220336
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TOR complex 2 is needed for cell cycle progression and anchorage-independent growth of MCF7 and PC3 tumor cells.
Hietakangas V, Cohen SM
BMC Cancer. 2008
PubMed ID: 18831768
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Muscle-specific deletion of rictor impairs insulin-stimulated glucose transport and enhances Basal glycogen synthase activity.
Kumar A, Harris TE, Keller SR, Choi KM, Magnuson MA, Lawrence JC
Mol Cell Biol. 2008
PubMed ID: 17967879
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mTORC2 activity is elevated in gliomas and promotes growth and cell motility via overexpression of rictor.
Masri J, Bernath A, Martin J, Jo OD, Vartanian R, Funk A, Gera J
Cancer Res. 2007
PubMed ID: 18089801
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EUCOMM--the European conditional mouse mutagenesis program.
Friedel RH, Seisenberger C, Kaloff C, Wurst W
Brief Funct Genomic Proteomic. 2007
PubMed ID: 17967808
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PRR5, a novel component of mTOR complex 2, regulates platelet-derived growth factor receptor beta expression and signaling.
Woo SY, Kim DH, Jun CB, Kim YM, Haar EV, Lee SI, Hegg JW, Bandhakavi S, Griffin TJ, Kim DH
J Biol Chem. 2007
PubMed ID: 17599906
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Identification of Protor as a novel Rictor-binding component of mTOR complex-2.
Pearce LR, Huang X, Boudeau J, Pawłowski R, Wullschleger S, Deak M, Ibrahim AF, Gourlay R, Magnuson MA, Alessi DR
Biochem J. 2007
PubMed ID: 17461779
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ASCT2 silencing regulates mammalian target-of-rapamycin growth and survival signaling in human hepatoma cells.
Fuchs BC, Finger RE, Onan MC, Bode BP
Am J Physiol Cell Physiol. 2007
PubMed ID: 17329400
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Hypoxia-induced endothelial proliferation requires both mTORC1 and mTORC2.
Li W, Petrimpol M, Molle KD, Hall MN, Battegay EJ, Humar R
Circ Res. 2007
PubMed ID: 17110594
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BMC Genomics. 2007
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Ablation in mice of the mTORC components raptor, rictor, or mLST8 reveals that mTORC2 is required for signaling to Akt-FOXO and PKCalpha, but not S6K1.
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Dev Cell. 2006
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Global, in vivo, and site-specific phosphorylation dynamics in signaling networks.
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Cell. 2006
PubMed ID: 17081983
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Identification of Sin1 as an essential TORC2 component required for complex formation and kinase activity.
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Genes Dev. 2006
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Cell. 2006
PubMed ID: 16962653
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Multiallelic disruption of the rictor gene in mice reveals that mTOR complex 2 is essential for fetal growth and viability.
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Dev Cell. 2006
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Human cytomegalovirus infection alters the substrate specificities and rapamycin sensitivities of raptor- and rictor-containing complexes.
Kudchodkar SB, Yu Y, Maguire TG, Alwine JC
Proc Natl Acad Sci U S A. 2006
PubMed ID: 16959881
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mSin1 is necessary for Akt/PKB phosphorylation, and its isoforms define three distinct mTORC2s.
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Curr Biol. 2006
PubMed ID: 16919458
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Role of insulin, adipocyte hormones, and nutrient-sensing pathways in regulating fuel metabolism and energy homeostasis: a nutritional perspective of diabetes, obesity, and cancer.
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Sci STKE. 2006
PubMed ID: 16885148
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Prolonged rapamycin treatment inhibits mTORC2 assembly and Akt/PKB.
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Mol Cell. 2006
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mTOR.RICTOR is the Ser473 kinase for Akt/protein kinase B in 3T3-L1 adipocytes.
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J Biol Chem. 2005
PubMed ID: 16221682
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Redox regulation of the nutrient-sensitive raptor-mTOR pathway and complex.
Sarbassov DD, Sabatini DM
J Biol Chem. 2005
PubMed ID: 16183647
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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.
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Science. 2005
PubMed ID: 16141072
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Structure of S6 kinase 1 determines whether raptor-mTOR or rictor-mTOR phosphorylates its hydrophobic motif site.
Ali SM, Sabatini DM
J Biol Chem. 2005
PubMed ID: 15809305
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Phosphorylation and regulation of Akt/PKB by the rictor-mTOR complex.
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Science. 2005
PubMed ID: 15718470
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Mammalian TOR complex 2 controls the actin cytoskeleton and is rapamycin insensitive.
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Nat Cell Biol. 2004
PubMed ID: 15467718
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The status, quality, and expansion of the NIH full-length cDNA project: the Mammalian Gene Collection (MGC).
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Genome Res. 2004
PubMed ID: 15489334
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The DNA sequence and comparative analysis of human chromosome 5.
Schmutz J, Martin J, Terry A, Couronne O, Grimwood J, Lowry S, Gordon LA, Scott D, Xie G, Huang W, Hellsten U, Tran-Gyamfi M, She X, Prabhakar S, Aerts A, Altherr M, Bajorek E, Black S, Branscomb E, Caoile C, Challacombe JF, Chan YM, Denys M, Detter JC, Escobar J, Flowers D, Fotopulos D, Glavina T, Gomez M, Gonzales E, Goodstein D, Grigoriev I, Groza M, Hammon N, Hawkins T, Haydu L, Israni S, Jett J, Kadner K, Kimball H, Kobayashi A, Lopez F, Lou Y, Martinez D, Medina C, Morgan J, Nandkeshwar R, Noonan JP, Pitluck S, Pollard M, Predki P, Priest J, Ramirez L, Retterer J, Rodriguez A, Rogers S, Salamov A, Salazar A, Thayer N, Tice H, Tsai M, Ustaszewska A, Vo N, Wheeler J, Wu K, Yang J, Dickson M, Cheng JF, Eichler EE, Olsen A, Pennacchio LA, Rokhsar DS, Richardson P, Lucas SM, Myers RM, Rubin EM
Nature. 2004
PubMed ID: 15372022
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Large-scale characterization of HeLa cell nuclear phosphoproteins.
Beausoleil SA, Jedrychowski M, Schwartz D, Elias JE, Villén J, Li J, Cohn MA, Cantley LC, Gygi SP
Proc Natl Acad Sci U S A. 2004
PubMed ID: 15302935
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Rictor, a novel binding partner of mTOR, defines a rapamycin-insensitive and raptor-independent pathway that regulates the cytoskeleton.
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Curr Biol. 2004
PubMed ID: 15268862
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Okazaki N, F-Kikuno R, Ohara R, Inamoto S, Koseki H, Hiraoka S, Saga Y, Seino S, Nishimura M, Kaisho T, Hoshino K, Kitamura H, Nagase T, Ohara O, Koga H
DNA Res. 2004
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Nature. 2004
PubMed ID: 15057822
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Complete sequencing and characterization of 21,243 full-length human cDNAs.
Ota T, Suzuki Y, Nishikawa T, Otsuki T, Sugiyama T, Irie R, Wakamatsu A, Hayashi K, Sato H, Nagai K, Kimura K, Makita H, Sekine M, Obayashi M, Nishi T, Shibahara T, Tanaka T, Ishii S, Yamamoto J, Saito K, Kawai Y, Isono Y, Nakamura Y, Nagahari K, Murakami K, Yasuda T, Iwayanagi T, Wagatsuma M, Shiratori A, Sudo H, Hosoiri T, Kaku Y, Kodaira H, Kondo H, Sugawara M, Takahashi M, Kanda K, Yokoi T, Furuya T, Kikkawa E, Omura Y, Abe K, Kamihara K, Katsuta N, Sato K, Tanikawa M, Yamazaki M, Ninomiya K, Ishibashi T, Yamashita H, Murakawa K, Fujimori K, Tanai H, Kimata M, Watanabe M, Hiraoka S, Chiba Y, Ishida S, Ono Y, Takiguchi S, Watanabe S, Yosida M, Hotuta T, Kusano J, Kanehori K, Takahashi-Fujii A, Hara H, Tanase TO, Nomura Y, Togiya S, Komai F, Hara R, Takeuchi K, Arita M, Imose N, Musashino K, Yuuki H, Oshima A, Sasaki N, Aotsuka S, Yoshikawa Y, Matsunawa H, Ichihara T, Shiohata N, Sano S, Moriya S, Momiyama H, Satoh N, Takami S, Terashima Y, Suzuki O, Nakagawa S, Senoh A, Mizoguchi H, Goto Y, Shimizu F, Wakebe H, Hishigaki H, Watanabe T, Sugiyama A, Takemoto M, Kawakami B, Yamazaki M, Watanabe K, Kumagai A, Itakura S, Fukuzumi Y, Fujimori Y, Komiyama M, Tashiro H, Tanigami A, Fujiwara T, Ono T, Yamada K, Fujii Y, Ozaki K, Hirao M, Ohmori Y, Kawabata A, Hikiji T, Kobatake N, Inagaki H, Ikema Y, Okamoto S, Okitani R, Kawakami T, Noguchi S, Itoh T, Shigeta K, Senba T, Matsumura K, Nakajima Y, Mizuno T, Morinaga M, Sasaki M, Togashi T, Oyama M, Hata H, Watanabe M, Komatsu T, Mizushima-Sugano J, Satoh T, Shirai Y, Takahashi Y, Nakagawa K, Okumura K, Nagase T, Nomura N, Kikuchi H, Masuho Y, Yamashita R, Nakai K, Yada T, Nakamura Y, Ohara O, Isogai T, Sugano S
Nat Genet. 2004
PubMed ID: 14702039
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Wnk1 kinase deficiency lowers blood pressure in mice: a gene-trap screen to identify potential targets for therapeutic intervention.
Zambrowicz BP, Abuin A, Ramirez-Solis R, Richter LJ, Piggott J, BeltrandelRio H, Buxton EC, Edwards J, Finch RA, Friddle CJ, Gupta A, Hansen G, Hu Y, Huang W, Jaing C, Key BW, Kipp P, Kohlhauff B, Ma ZQ, Markesich D, Payne R, Potter DG, Qian N, Shaw J, Schrick J, Shi ZZ, Sparks MJ, Van Sligtenhorst I, Vogel P, Walke W, Xu N, Zhu Q, Person C, Sands AT
Proc Natl Acad Sci U S A. 2003
PubMed ID: 14610273
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A large-scale, gene-driven mutagenesis approach for the functional analysis of the mouse genome.
Hansen J, Floss T, Van Sloun P, Füchtbauer EM, Vauti F, Arnold HH, Schnütgen F, Wurst W, von Melchner H, Ruiz P
Proc Natl Acad Sci U S A. 2003
PubMed ID: 12904583
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Stryke D, Kawamoto M, Huang CC, Johns SJ, King LA, Harper CA, Meng EC, Lee RE, Yee A, L'Italien L, Chuang PT, Young SG, Skarnes WC, Babbitt PC, Ferrin TE
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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.
Okazaki Y, Furuno M, Kasukawa T, Adachi J, Bono H, Kondo S, Nikaido I, Osato N, Saito R, Suzuki H, Yamanaka I, Kiyosawa H, Yagi K, Tomaru Y, Hasegawa Y, Nogami A, Schönbach C, Gojobori T, Baldarelli R, Hill DP, Bult C, Hume DA, Quackenbush J, Schriml LM, Kanapin A, Matsuda H, Batalov S, Beisel KW, Blake JA, Bradt D, Brusic V, Chothia C, Corbani LE, Cousins S, Dalla E, Dragani TA, Fletcher CF, Forrest A, Frazer KS, Gaasterland T, Gariboldi M, Gissi C, Godzik A, Gough J, Grimmond S, Gustincich S, Hirokawa N, Jackson IJ, Jarvis ED, Kanai A, Kawaji H, Kawasawa Y, Kedzierski RM, King BL, Konagaya A, Kurochkin IV, Lee Y, Lenhard B, Lyons PA, Maglott DR, Maltais L, Marchionni L, McKenzie L, Miki H, Nagashima T, Numata K, Okido T, Pavan WJ, Pertea G, Pesole G, Petrovsky N, Pillai R, Pontius JU, Qi D, Ramachandran S, Ravasi T, Reed JC, Reed DJ, Reid J, Ring BZ, Ringwald M, Sandelin A, Schneider C, Semple CA, Setou M, Shimada K, Sultana R, Takenaka Y, Taylor MS, Teasdale RD, Tomita M, Verardo R, Wagner L, Wahlestedt C, Wang Y, Watanabe Y, Wells C, Wilming LG, Wynshaw-Boris A, Yanagisawa M, Yang I, Yang L, Yuan Z, Zavolan M, Zhu Y, Zimmer A, Carninci P, Hayatsu N, Hirozane-Kishikawa T, Konno H, Nakamura M, Sakazume N, Sato K, Shiraki T, Waki K, Kawai J, Aizawa K, Arakawa T, Fukuda S, Hara A, Hashizume W, Imotani K, Ishii Y, Itoh M, Kagawa I, Miyazaki A, Sakai K, Sasaki D, Shibata K, Shinagawa A, Yasunishi A, Yoshino M, Waterston R, Lander ES, Rogers J, Birney E, Hayashizaki Y, FANTOM Consortium, RIKEN Genome Exploration Research Group Phase I & II Team
Nature. 2002
PubMed ID: 12466851
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Genome Res. 2001
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Methods Enzymol. 1999
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