O-GlcNAcylation of Raptor transduces glucose signals to mTORC1.
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Xing Chen | Dong Wang | Chenchen Xu | Ying Liu | Xiaoqing Pan | Yuanyuan Guan | Wenyu Yang
[1] Wilhelm Palm,et al. Direct control of lysosomal catabolic activity by mTORC1 through regulation of V-ATPase assembly , 2022, Nature Communications.
[2] Chun-Chun Wang,et al. Cell-type-specific labeling and profiling of glycans in living mice , 2022, Nature Chemical Biology.
[3] Xing Chen,et al. An Optimized Isotopic Photocleavable Tagging Strategy for Site-Specific and Quantitative Profiling of Protein O-GlcNAcylation in Colorectal Cancer Metastasis. , 2022, ACS chemical biology.
[4] Wenyu Yang,et al. E3 ligase RNF167 and deubiquitinase STAMBPL1 modulate mTOR and cancer progression. , 2022, Molecular cell.
[5] B. Cravatt,et al. CIMAGE2.0: An Expanded Tool for Quantitative Analysis of Activity-Based Protein Profiling (ABPP) Data. , 2021, Journal of proteome research.
[6] Xing Chen,et al. Glycan Labeling and Analysis in Cells and In Vivo. , 2021, Annual review of analytical chemistry.
[7] Mark R. Marten,et al. Guidelines for the use and interpretation of assays for monitoring autophagy (4th edition)1 , 2021, Autophagy.
[8] D. Sabatini,et al. Dihydroxyacetone phosphate signals glucose availability to mTORC1 , 2020, Nature Metabolism.
[9] D. Sabatini,et al. mTOR at the nexus of nutrition, growth, ageing and disease , 2020, Nature Reviews Molecular Cell Biology.
[10] D. Sabatini,et al. Structural basis for the docking of mTORC1 on the lysosomal surface , 2019, Science.
[11] Xing Chen,et al. Next-generation unnatural monosaccharides reveal that ESRRB O-GlcNAcylation regulates pluripotency of mouse embryonic stem cells , 2019, Nature Communications.
[12] Sheng-Cai Lin,et al. Transient Receptor Potential V Channels Are Essential for Glucose Sensing by Aldolase and AMPK , 2019, Cell metabolism.
[13] K. Guan,et al. mTOR as a central hub of nutrient signalling and cell growth , 2019, Nature Cell Biology.
[14] Y. Kido,et al. mTORC1 Signaling: A Double-Edged Sword in Diabetic β Cells. , 2017, Cell metabolism.
[15] C. Peng,et al. Regulation of the Hippo-YAP Pathway by Glucose Sensor O-GlcNAcylation. , 2017, Molecular cell.
[16] Gregory A. Wyant,et al. Lysosomal metabolomics reveals V-ATPase- and mTOR-dependent regulation of amino acid efflux from lysosomes , 2017, Science.
[17] M. Erion,et al. Systemic pan-AMPK activator MK-8722 improves glucose homeostasis but induces cardiac hypertrophy , 2017, Science.
[18] Xing Chen,et al. Quantitative time-resolved chemoproteomics reveals that stable O-GlcNAc regulates box C/D snoRNP biogenesis , 2017, Proceedings of the National Academy of Sciences.
[19] Sheng-Cai Lin,et al. Fructose-1,6-bisphosphate and aldolase mediate glucose sensing by AMPK , 2017, Nature.
[20] Xiaoyong Yang,et al. Protein O-GlcNAcylation: emerging mechanisms and functions , 2017, Nature Reviews Molecular Cell Biology.
[21] Neville E Sanjana,et al. Genome-scale CRISPR-Cas9 knockout and transcriptional activation screening , 2016, Nature Protocols.
[22] J. Shabanowitz,et al. Cross-talk between Two Essential Nutrient-sensitive Enzymes , 2014, The Journal of Biological Chemistry.
[23] Jiahuai Han,et al. AMP as a low-energy charge signal autonomously initiates assembly of AXIN-AMPK-LKB1 complex for AMPK activation. , 2013, Cell metabolism.
[24] D. Sabatini,et al. Ragulator Is a GEF for the Rag GTPases that Signal Amino Acid Levels to mTORC1 , 2012, Cell.
[25] J. Yates,et al. O-GlcNAc transferase/host cell factor C1 complex regulates gluconeogenesis by modulating PGC-1α stability. , 2012, Cell metabolism.
[26] J. Hanover,et al. Bittersweet memories: linking metabolism to epigenetics through O-GlcNAcylation , 2012, Nature Reviews Molecular Cell Biology.
[27] Matthew S Macauley,et al. Increasing O-GlcNAc slows neurodegeneration and stabilizes tau against aggregation. , 2012, Nature chemical biology.
[28] Gerald W. Hart,et al. O-GlcNAc signalling: implications for cancer cell biology , 2011, Nature Reviews Cancer.
[29] Anne E Carpenter,et al. mTOR Complex 1 Regulates Lipin 1 Localization to Control the SREBP Pathway , 2011, Cell.
[30] B. Kemp,et al. AMPK Is a Direct Adenylate Charge-Regulated Protein Kinase , 2011, Science.
[31] G. Hart,et al. Cross talk between O-GlcNAcylation and phosphorylation: roles in signaling, transcription, and chronic disease. , 2011, Annual review of biochemistry.
[32] D. Sabatini,et al. mTOR: from growth signal integration to cancer, diabetes and ageing , 2010, Nature Reviews Molecular Cell Biology.
[33] G. Hart,et al. O-GlcNAc signaling: a metabolic link between diabetes and cancer? , 2010, Trends in biochemical sciences.
[34] S. Ryu,et al. Glycolytic Flux Signals to mTOR through Glyceraldehyde-3-Phosphate Dehydrogenase-Mediated Regulation of Rheb , 2009, Molecular and Cellular Biology.
[35] J. Guan,et al. Nutrient-dependent mTORC1 association with the ULK1-Atg13-FIP200 complex required for autophagy. , 2009, Molecular biology of the cell.
[36] T. P. Neufeld,et al. Regulation of TORC1 by Rag GTPases in nutrient response , 2008, Nature Cell Biology.
[37] David M. Sabatini,et al. The Rag GTPases Bind Raptor and Mediate Amino Acid Signaling to mTORC1 , 2008, Science.
[38] B. Turk,et al. AMPK phosphorylation of raptor mediates a metabolic checkpoint. , 2008, Molecular cell.
[39] W. V. So,et al. Phosphoinositide signalling links O-GlcNAc transferase to insulin resistance , 2008, Nature.
[40] D. Guerini,et al. Requirement for O‐linked N‐acetylglucosaminyltransferase in lymphocytes activation , 2007, The EMBO journal.
[41] Ming You,et al. TSC2 Integrates Wnt and Energy Signals via a Coordinated Phosphorylation by AMPK and GSK3 to Regulate Cell Growth , 2006, Cell.
[42] L. Kifle,et al. Identification and characterization of a small molecule AMPK activator that treats key components of type 2 diabetes and the metabolic syndrome. , 2006, Cell metabolism.
[43] Joseph Avruch,et al. Rheb Binds and Regulates the mTOR Kinase , 2005, Current Biology.
[44] R. DePinho,et al. The LKB1 tumor suppressor negatively regulates mTOR signaling. , 2004, Cancer cell.
[45] J. Blenis,et al. TOS Motif-Mediated Raptor Binding Regulates 4E-BP1 Multisite Phosphorylation and Function , 2003, Current Biology.
[46] J. Avruch,et al. The Mammalian Target of Rapamycin (mTOR) Partner, Raptor, Binds the mTOR Substrates p70 S6 Kinase and 4E-BP1 through Their TOR Signaling (TOS) Motif* , 2003, The Journal of Biological Chemistry.
[47] 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.
[48] D. Sabatini,et al. mTOR Interacts with Raptor to Form a Nutrient-Sensitive Complex that Signals to the Cell Growth Machinery , 2002, Cell.
[49] J. Avruch,et al. Raptor, a Binding Partner of Target of Rapamycin (TOR), Mediates TOR Action , 2002, Cell.
[50] Gerald W. Hart,et al. Glycosylation of Nucleocytoplasmic Proteins: Signal Transduction and O-GlcNAc , 2001, Science.
[51] C. Dohet,et al. Reconstitution of skinned cardiac fibres with human recombinant cardiac troponin‐I mutants and troponin‐C , 1995, FEBS letters.
[52] 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.
[53] Charles C Hong,et al. Dorsomorphin inhibits BMP signals required for embryogenesis and iron metabolism. , 2008, Nature chemical biology.