Regulation of mTORC1 by amino acids.
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[1] J. Schneider,et al. Autophagy and Metabolism , 2016 .
[2] L. Cantley,et al. Spatial Control of the TSC Complex Integrates Insulin and Nutrient Regulation of mTORC1 at the Lysosome , 2014, Cell.
[3] D. Sabatini,et al. The folliculin tumor suppressor is a GAP for the RagC/D GTPases that signal amino acid levels to mTORC1. , 2013, Molecular cell.
[4] S. Ferguson,et al. Recruitment of folliculin to lysosomes supports the amino acid–dependent activation of Rag GTPases , 2013, The Journal of cell biology.
[5] B. Manning,et al. Cell signalling: Nutrient sensing lost in cancer , 2013, Nature.
[6] Xin Zhang,et al. Signal recognition particle: an essential protein-targeting machine. , 2013, Annual review of biochemistry.
[7] C. De Virgilio,et al. Amino Acid Deprivation Inhibits TORC1 Through a GTPase-Activating Protein Complex for the Rag Family GTPase Gtr1 , 2013, Science Signaling.
[8] Matthew Meyerson,et al. A Tumor Suppressor Complex with GAP Activity for the Rag GTPases That Signal Amino Acid Sufficiency to mTORC1 , 2013, Science.
[9] R. Miles,et al. Mutations of DEPDC5 cause autosomal dominant focal epilepsies , 2013, Nature Genetics.
[10] I. Scheffer,et al. Mutations in DEPDC5 cause familial focal epilepsy with variable foci , 2013, Nature Genetics.
[11] K. Guan,et al. Amino acid signalling upstream of mTOR , 2013, Nature Reviews Molecular Cell Biology.
[12] O. Kirak,et al. Regulation of mTORC1 by the Rag GTPases is necessary for neonatal autophagy and survival , 2012, Nature.
[13] Jianping Ding,et al. Ego3 functions as a homodimer to mediate the interaction between Gtr1-Gtr2 and Ego1 in the ego complex to activate TORC1. , 2012, Structure.
[14] D. Sabatini,et al. Ragulator Is a GEF for the Rag GTPases that Signal Amino Acid Levels to mTORC1 , 2012, Cell.
[15] Roberto Zoncu,et al. Amino acids and mTORC1: from lysosomes to disease. , 2012, Trends in molecular medicine.
[16] P. Finan,et al. TBC1D7 is a third subunit of the TSC1-TSC2 complex upstream of mTORC1. , 2012, Molecular cell.
[17] A. Constanti,et al. The mTOR Signaling Pathway in the Brain: Focus on Epilepsy and Epileptogenesis , 2012, Molecular Neurobiology.
[18] B. Oh,et al. Crystal Structure of the Gtr1pGTP-Gtr2pGDP Protein Complex Reveals Large Structural Rearrangements Triggered by GTP-to-GDP Conversion* , 2012, Journal of Biological Chemistry.
[19] Timothy J Griffin,et al. SH3BP4 is a negative regulator of amino acid-Rag GTPase-mTORC1 signaling. , 2012, Molecular cell.
[20] C. De Virgilio,et al. Leucyl-tRNA synthetase controls TORC1 via the EGO complex. , 2012, Molecular cell.
[21] Sunghoon Kim,et al. Leucyl-tRNA Synthetase Is an Intracellular Leucine Sensor for the mTORC1-Signaling Pathway , 2012, Cell.
[22] D. Sabatini,et al. mTOR Signaling in Growth Control and Disease , 2012, Cell.
[23] D. Kwiatkowski,et al. Genotype and cognitive phenotype of patients with tuberous sclerosis complex , 2011, European Journal of Human Genetics.
[24] Roberto Zoncu,et al. mTORC1 Senses Lysosomal Amino Acids Through an Inside-Out Mechanism That Requires the Vacuolar H+-ATPase , 2011, Science.
[25] I. Vetter,et al. Structural analysis of the Ras-like G protein MglA and its cognate GAP MglB and implications for bacterial polarity , 2011, The EMBO journal.
[26] K. Guan,et al. Crystal structure of the Gtr1p-Gtr2p complex reveals new insights into the amino acid-induced TORC1 activation. , 2011, Genes & development.
[27] S. Gygi,et al. Phosphoproteomic Analysis Identifies Grb10 as an mTORC1 Substrate That Negatively Regulates Insulin Signaling , 2011, Science.
[28] D. Sabatini,et al. The mTOR-Regulated Phosphoproteome Reveals a Mechanism of mTORC1-Mediated Inhibition of Growth Factor Signaling , 2011, Science.
[29] Avner Schlessinger,et al. A Conserved Coatomer-related Complex Containing Sec13 and Seh1 Dynamically Associates With the Vacuole in Saccharomyces cerevisiae* , 2011, Molecular & Cellular Proteomics.
[30] F. Lacroix,et al. Structural characterization of HBXIP: the protein that interacts with the anti-apoptotic protein survivin and the oncogenic viral protein HBx. , 2011, Journal of molecular biology.
[31] C. Ostrowicz,et al. The Mon1-Ccz1 Complex Is the GEF of the Late Endosomal Rab7 Homolog Ypt7 , 2010, Current Biology.
[32] Eric D. Spear,et al. Structural conservation of components in the amino acid sensing branch of the TOR pathway in yeast and mammals. , 2010, Journal of molecular biology.
[33] D. Sabatini,et al. Structure of the human mTOR complex I and its implications for rapamycin inhibition. , 2010, Molecular cell.
[34] D. Sabatini,et al. Ragulator-Rag Complex Targets mTORC1 to the Lysosomal Surface and Is Necessary for Its Activation by Amino Acids , 2010, Cell.
[35] J. Backer,et al. The Late Endosome is Essential for mTORC1 Signaling , 2010, Molecular biology of the cell.
[36] Nicolas Panchaud,et al. The Vam6 GEF controls TORC1 by activating the EGO complex. , 2009, Molecular cell.
[37] J. Blenis,et al. Molecular mechanisms of mTOR-mediated translational control , 2009, Nature Reviews Molecular Cell Biology.
[38] D. Sabatini,et al. DEPTOR Is an mTOR Inhibitor Frequently Overexpressed in Multiple Myeloma Cells and Required for Their Survival , 2009, Cell.
[39] M. Okada,et al. The novel lipid raft adaptor p18 controls endosome dynamics by anchoring the MEK–ERK pathway to late endosomes , 2009, The EMBO journal.
[40] Jeffrey P. MacKeigan,et al. Bidirectional Transport of Amino Acids Regulates mTOR and Autophagy , 2009, Cell.
[41] M. Karin,et al. p53 Target Genes Sestrin1 and Sestrin2 Connect Genotoxic Stress and mTOR Signaling , 2008, Cell.
[42] T. P. Neufeld,et al. Regulation of TORC1 by Rag GTPases in nutrient response , 2008, Nature Cell Biology.
[43] Enrique M. De La Cruz,et al. The Structural Basis for Activation of the Rab Ypt1p by the TRAPP Membrane-Tethering Complexes , 2008, Cell.
[44] David M. Sabatini,et al. The Rag GTPases Bind Raptor and Mediate Amino Acid Signaling to mTORC1 , 2008, Science.
[45] S. Steinberg,et al. BHD mutations, clinical and molecular genetic investigations of Birt–Hogg–Dubé syndrome: a new series of 50 families and a review of published reports , 2008, Journal of Medical Genetics.
[46] P. Choyke,et al. Kidney-targeted Birt-Hogg-Dube gene inactivation in a mouse model: Erk1/2 and Akt-mTOR activation, cell hyperproliferation, and polycystic kidneys. , 2008, Journal of the National Cancer Institute.
[47] M. Mann,et al. Integral and Associated Lysosomal Membrane Proteins , 2007, Traffic.
[48] Michael Forgac,et al. Vacuolar ATPases: rotary proton pumps in physiology and pathophysiology , 2007, Nature Reviews Molecular Cell Biology.
[49] Alfred Wittinghofer,et al. GEFs and GAPs: Critical Elements in the Control of Small G Proteins , 2007, Cell.
[50] S. Carr,et al. PRAS40 is an insulin-regulated inhibitor of the mTORC1 protein kinase. , 2007, Molecular cell.
[51] C. Klein,et al. p14–MP1-MEK1 signaling regulates endosomal traffic and cellular proliferation during tissue homeostasis , 2006, The Journal of cell biology.
[52] C. Kaiser,et al. A conserved GTPase-containing complex is required for intracellular sorting of the general amino-acid permease in yeast , 2006, Nature Cell Biology.
[53] J. Bos,et al. Regulation of the small GTPase Rheb by amino acids , 2006, Oncogene.
[54] E. Cameroni,et al. The TOR and EGO protein complexes orchestrate microautophagy in yeast. , 2005, Molecular cell.
[55] C. Proud,et al. The Tuberous Sclerosis Protein TSC2 Is Not Required for the Regulation of the Mammalian Target of Rapamycin by Amino Acids and Certain Cellular Stresses* , 2005, Journal of Biological Chemistry.
[56] Paul Tempst,et al. Phosphorylation and Functional Inactivation of TSC2 by Erk Implications for Tuberous Sclerosisand Cancer Pathogenesis , 2005, Cell.
[57] E. Hafen,et al. The hypoxia-induced paralogs Scylla and Charybdis inhibit growth by down-regulating S6K activity upstream of TSC in Drosophila. , 2004, Genes & development.
[58] E. Hafen,et al. Regulation of mTOR function in response to hypoxia by REDD1 and the TSC1/TSC2 tumor suppressor complex. , 2004, Genes & development.
[59] Sebastian Maurer-Stroh,et al. Crystal structure of the p14/MP1 scaffolding complex: how a twin couple attaches mitogen-activated protein kinase signaling to late endosomes. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[60] K. Inoki,et al. TSC2 Mediates Cellular Energy Response to Control Cell Growth and Survival , 2003, Cell.
[61] K. Inoki,et al. Rheb GTPase is a direct target of TSC2 GAP activity and regulates mTOR signaling. , 2003, Genes & development.
[62] B. Edgar,et al. Rheb promotes cell growth as a component of the insulin/TOR signalling network , 2003, Nature Cell Biology.
[63] E. Hafen,et al. Rheb is an essential regulator of S6K in controlling cell growth in Drosophila , 2003, Nature Cell Biology.
[64] B. Edgar,et al. Rheb is a direct target of the tuberous sclerosis tumour suppressor proteins , 2003, Nature Cell Biology.
[65] Paul Tempst,et al. GbetaL, a positive regulator of the rapamycin-sensitive pathway required for the nutrient-sensitive interaction between raptor and mTOR. , 2003, Molecular cell.
[66] S. Nicosia,et al. Phosphatidylinositol 3-Kinase/Akt Pathway Regulates Tuberous Sclerosis Tumor Suppressor Complex by Phosphorylation of Tuberin* , 2002, The Journal of Biological Chemistry.
[67] K. Inoki,et al. TSC2 is phosphorylated and inhibited by Akt and suppresses mTOR signalling , 2002, Nature Cell Biology.
[68] Tian Xu,et al. Akt regulates growth by directly phosphorylating Tsc2 , 2002, Nature Cell Biology.
[69] J. Avruch,et al. Raptor, a Binding Partner of Target of Rapamycin (TOR), Mediates TOR Action , 2002, Cell.
[70] D. Sabatini,et al. mTOR Interacts with Raptor to Form a Nutrient-Sensitive Complex that Signals to the Cell Growth Machinery , 2002, Cell.
[71] J. Blenis,et al. Identification of the tuberous sclerosis complex-2 tumor suppressor gene product tuberin as a target of the phosphoinositide 3-kinase/akt pathway. , 2002, Molecular cell.
[72] B. Giros,et al. Identification and characterization of a lysosomal transporter for small neutral amino acids , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[73] T. Nishimoto,et al. Novel G Proteins, Rag C and Rag D, Interact with GTP-binding Proteins, Rag A and Rag B* , 2001, The Journal of Biological Chemistry.
[74] E. Koonin,et al. Dynein light chains of the Roadblock/LC7 group belong to an ancient protein superfamily implicated in NTPase regulation , 2000, Current Biology.
[75] J. Minna,et al. The 630-kb lung cancer homozygous deletion region on human chromosome 3p21.3: identification and evaluation of the resident candidate tumor suppressor genes. The International Lung Cancer Chromosome 3p21.3 Tumor Suppressor Gene Consortium. , 2000, Cancer research.
[76] Scott D. Emr,et al. New Component of the Vacuolar Class C-Vps Complex Couples Nucleotide Exchange on the Ypt7 Gtpase to Snare-Dependent Docking and Fusion , 2000, The Journal of cell biology.
[77] M. Sacher,et al. Trapp Stimulates Guanine Nucleotide Exchange on Ypt1p , 2000, The Journal of cell biology.
[78] E. Noguchi,et al. Saccharomyces cerevisiae putative G protein, Gtr1p, which forms complexes with itself and a novel protein designated as Gtr2p, negatively regulates the Ran/Gsp1p G protein cycle through Gtr2p. , 1999, Genetics.
[79] C. Proud,et al. Amino acid availability regulates p70 S6 kinase and multiple translation factors. , 1998, The Biochemical journal.
[80] J. Avruch,et al. Amino Acid Sufficiency and mTOR Regulate p70 S6 Kinase and eIF-4E BP1 through a Common Effector Mechanism* , 1998, The Journal of Biological Chemistry.
[81] S Povey,et al. Identification of the tuberous sclerosis gene TSC1 on chromosome 9q34. , 1997, Science.
[82] A. Schürmann,et al. Cloning of a Novel Family of Mammalian GTP-binding Proteins (RagA, RagBs, RagB1) with Remote Similarity to the Ras-related GTPases * , 1995, The Journal of Biological Chemistry.
[83] S. Thomas,et al. Identification and characterization of the tuberous sclerosis gene on chromosome 16 , 1993, Cell.
[84] V. Preedy,et al. The response of muscle protein synthesis to nutrient intake in postabsorptive rats: The role of insulin and amino acids , 1986, Bioscience reports.
[85] Bodo Grimbacher,et al. A novel human primary immunodeficiency syndrome caused by deficiency of the endosomal adaptor protein p14 , 2007, Nature Medicine.
[86] T. Nishimoto,et al. RagA is a functional homologue of S. cerevisiae Gtr1p involved in the Ran/Gsp1-GTPase pathway. , 1998, Journal of cell science.