Posttranscriptional regulation of de novo lipogenesis by glucose-induced O-GlcNAcylation.
暂无分享,去创建一个
F. He | Yu Xue | C. Peng | Huadong Pei | Shaofeng Lin | Wenge Zhu | Yi Yao | A. Sun | Q. Song | Wanjun Zhang | Weijie Qin | Xiangpan Li | Zhuqing Li | Yali Chen | Yingge Li | Lulu Chen | Zhaohua Hu | Wei Tan | Pei Jiang | Changmin Peng
[1] A. Näär,et al. SREBP1-dependent de novo fatty acid synthesis gene expression is elevated in malignant melanoma and represents a cellular survival trait , 2019, Scientific Reports.
[2] J. Novak,et al. Glycosylation in health and disease , 2019, Nature Reviews Nephrology.
[3] M. Dong,et al. Serine/arginine protein‐specific kinase 2 promotes the development and progression of pancreatic cancer by downregulating Numb and p53 , 2019, The FEBS journal.
[4] Dirk Mossmann,et al. mTOR signalling and cellular metabolism are mutual determinants in cancer , 2018, Nature Reviews Cancer.
[5] Y. Chook,et al. Karyopherins in cancer. , 2018, Current opinion in cell biology.
[6] J. Blenis,et al. Post-transcriptional Regulation of De Novo Lipogenesis by mTORC1-S6K1-SRPK2 Signaling , 2017, Cell.
[7] L. Hanakahi,et al. TDP1 is required for efficient non-homologous end joining in human cells. , 2017, DNA repair.
[8] C. Peng,et al. Regulation of the Hippo-YAP Pathway by Glucose Sensor O-GlcNAcylation. , 2017, Molecular cell.
[9] H. Shimano,et al. SREBP-regulated lipid metabolism: convergent physiology — divergent pathophysiology , 2017, Nature Reviews Endocrinology.
[10] Xiaoyong Yang,et al. Protein O-GlcNAcylation: emerging mechanisms and functions , 2017, Nature Reviews Molecular Cell Biology.
[11] C. Dang,et al. From Krebs to clinic: glutamine metabolism to cancer therapy , 2016, Nature Reviews Cancer.
[12] N. Hay,et al. Reprogramming glucose metabolism in cancer: can it be exploited for cancer therapy? , 2016, Nature Reviews Cancer.
[13] Jason K. Kim,et al. An alternative splicing program promotes adipose tissue thermogenesis , 2016, eLife.
[14] Kohji Yamada,et al. Importin α: a key molecule in nuclear transport and non-transport functions. , 2016, Journal of biochemistry.
[15] A. Kallies,et al. Glucose- and glutamine-fueled stabilization of C-Myc is required for T-cell proliferation and malignant transformation , 2016, Cell Death Discovery.
[16] N. Pavlova,et al. The Emerging Hallmarks of Cancer Metabolism. , 2016, Cell metabolism.
[17] Hsien-Da Huang,et al. dbPTM 2016: 10-year anniversary of a resource for post-translational modification of proteins , 2015, Nucleic Acids Res..
[18] S. Pinho,et al. Glycosylation in cancer: mechanisms and clinical implications , 2015, Nature Reviews Cancer.
[19] G. Hart,et al. Nutrient regulation of signaling, transcription, and cell physiology by O-GlcNAcylation. , 2014, Cell metabolism.
[20] D. Sabatini,et al. Regulation of mTORC1 by amino acids. , 2014, Trends in cell biology.
[21] Neville E. Sanjana,et al. Improved vectors and genome-wide libraries for CRISPR screening , 2014, Nature Methods.
[22] W. Dias,et al. O-GlcNAcylation: The Sweet Side of the Cancer , 2014, Front. Oncol..
[23] Neville E. Sanjana,et al. Genome-Scale CRISPR-Cas9 Knockout Screening in Human Cells , 2014, Science.
[24] A. Schulze,et al. Hooked on fat: the role of lipid synthesis in cancer metabolism and tumour development , 2013, Disease Models & Mechanisms.
[25] Robert V Farese,et al. Cellular fatty acid metabolism and cancer. , 2013, Cell metabolism.
[26] B. Manning,et al. Signal integration by mTORC1 coordinates nutrient input with biosynthetic output , 2013, Nature Cell Biology.
[27] E. White,et al. Hypoxic and Ras-transformed cells support growth by scavenging unsaturated fatty acids from lysophospholipids , 2013, Proceedings of the National Academy of Sciences.
[28] N. Akimitsu,et al. Genome-wide technology for determining RNA stability in mammalian cells , 2012, RNA biology.
[29] J. Hanover,et al. Bittersweet memories: linking metabolism to epigenetics through O-GlcNAcylation , 2012, Nature Reviews Molecular Cell Biology.
[30] D. Vocadlo,et al. Insights into O-Linked N-Acetylglucosamine ([0-9]O-GlcNAc) Processing and Dynamics through Kinetic Analysis of O-GlcNAc Transferase and O-GlcNAcase Activity on Protein Substrates* , 2012, The Journal of Biological Chemistry.
[31] Gerald W. Hart,et al. O-GlcNAc signalling: implications for cancer cell biology , 2011, Nature Reviews Cancer.
[32] G. Hart,et al. Cross talk between O-GlcNAcylation and phosphorylation: roles in signaling, transcription, and chronic disease. , 2011, Annual review of biochemistry.
[33] M. Bryś,et al. Gene expression of O-GlcNAc cycling enzymes in human breast cancers , 2011, Clinical and Experimental Medicine.
[34] A. Krainer,et al. Interaction between the RNA binding domains of Ser-Arg splicing factor 1 and U1-70K snRNP protein determines early spliceosome assembly , 2011, Proceedings of the National Academy of Sciences.
[35] Mengwei Zang,et al. AMPK phosphorylates and inhibits SREBP activity to attenuate hepatic steatosis and atherosclerosis in diet-induced insulin-resistant mice. , 2011, Cell metabolism.
[36] Hongfang Liu,et al. dbOGAP - An Integrated Bioinformatics Resource for Protein O-GlcNAcylation , 2011, BMC Bioinformatics.
[37] P. Barker,et al. Stress‐induced expression of the p75 neurotrophin receptor is regulated by O‐GlcNAcylation of the Sp1 transcription factor , 2011, Journal of neurochemistry.
[38] G. Cingolani,et al. Phosphorylation meets nuclear import: a review , 2010, Cell Communication and Signaling.
[39] M. Azumano,et al. Interaction of Sp1 zinc finger with transport factor in the nuclear localization of transcription factor Sp1. , 2010, Biochemical and biophysical research communications.
[40] B. Paschal,et al. Karyopherin α7 (KPNA7), a divergent member of the importin α family of nuclear import receptors , 2010, BMC Cell Biology.
[41] F. Damiano,et al. Translational control of the sterol-regulatory transcription factor SREBP-1 mRNA in response to serum starvation or ER stress is mediated by an internal ribosome entry site. , 2010, The Biochemical journal.
[42] J. Hanover,et al. The hexosamine signaling pathway: O-GlcNAc cycling in feast or famine. , 2010, Biochimica et biophysica acta.
[43] A. Levey,et al. Interaction of Akt-phosphorylated SRPK2 with 14-3-3 Mediates Cell Cycle and Cell Death in Neurons* , 2009, The Journal of Biological Chemistry.
[44] L. Cantley,et al. Understanding the Warburg Effect: The Metabolic Requirements of Cell Proliferation , 2009, Science.
[45] M. Azumano,et al. Role of zinc finger structure in nuclear localization of transcription factor Sp1. , 2009, Biochemical and biophysical research communications.
[46] D. McClain,et al. Up-regulation of O-GlcNAc Transferase with Glucose Deprivation in HepG2 Cells Is Mediated by Decreased Hexosamine Pathway Flux* , 2009, Journal of Biological Chemistry.
[47] Ji Hyun Kim,et al. Activation of PPARgamma negatively regulates O-GlcNAcylation of Sp1. , 2008, Biochemical and biophysical research communications.
[48] S. Yang,et al. Serine/arginine protein-specific kinase 2 promotes leukemia cell proliferation by phosphorylating acinus and regulating cyclin A1. , 2008, Cancer research.
[49] H. Urlaub,et al. Phosphorylation of human PRP28 by SRPK2 is required for integration of the U4/U6-U5 tri-snRNP into the spliceosome , 2008, Nature Structural &Molecular Biology.
[50] W. V. So,et al. Phosphoinositide signalling links O-GlcNAc transferase to insulin resistance , 2008, Nature.
[51] G. Hart,et al. O-GlcNAc modification in diabetes and Alzheimer's disease. , 2007, Molecular bioSystems.
[52] J. Menéndez,et al. Fatty acid synthase and the lipogenic phenotype in cancer pathogenesis , 2007, Nature Reviews Cancer.
[53] Gerald W. Hart,et al. Cycling of O-linked β-N-acetylglucosamine on nucleocytoplasmic proteins , 2007, Nature.
[54] M. Stewart. Molecular mechanism of the nuclear protein import cycle , 2007, Nature Reviews Molecular Cell Biology.
[55] L. Kinnunen,et al. NF-κB Is Transported into the Nucleus by Importin α3 and Importin α4* , 2005, Journal of Biological Chemistry.
[56] D. Goldfarb,et al. Importin α: A multipurpose nuclear-transport receptor , 2004 .
[57] Joseph L Goldstein,et al. SREBPs: activators of the complete program of cholesterol and fatty acid synthesis in the liver. , 2002, The Journal of clinical investigation.
[58] I. Macara. Transport into and out of the Nucleus , 2001, Microbiology and Molecular Biology Reviews.
[59] K. Itoh,et al. Zn finger and nuclear localization of transcription factor Sp1. , 2000, Nucleic acids symposium series.
[60] G. Hart,et al. Regulation of a Cytosolic and Nuclear O-GlcNAc Transferase , 1999, The Journal of Biological Chemistry.
[61] L. Cantley,et al. SRPK2: A Differentially Expressed SR Protein-specific Kinase Involved in Mediating the Interaction and Localization of Pre-mRNA Splicing Factors in Mammalian Cells , 1998, The Journal of cell biology.
[62] M. Garcia-Blanco,et al. Protein–protein interactions and 5'-splice-site recognition in mammalian mRNA precursors , 1994, Nature.
[63] S. Marshall,et al. Discovery of a metabolic pathway mediating glucose-induced desensitization of the glucose transport system. Role of hexosamine biosynthesis in the induction of insulin resistance. , 1991, The Journal of biological chemistry.
[64] R. Deberardinis,et al. The biology of cancer: metabolic reprogramming fuels cell growth and proliferation. , 2008, Cell metabolism.