miR-33a/b contribute to the regulation of fatty acid metabolism and insulin signaling
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K. Moore | E. Lai | A. Dávalos | L. Goedeke | Peter Smibert | C. Ramírez | Nikhil Warrier | Ursula Andréo | D. Cirera-Salinas | K. Rayner | U. Suresh | J. C. Pastor-Pareja | E. Esplugues | E. Fisher | L. Penalva | Y. Suárez | C. Fernández-Hernando | K. Moore
[1] L. Brady,et al. Regulation of the long‐chain carnitine acyltransferases , 1993, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[2] J. Goldstein,et al. The SREBP Pathway: Regulation of Cholesterol Metabolism by Proteolysis of a Membrane-Bound Transcription Factor , 1997, Cell.
[3] R. Ramsay,et al. Selective modulation of carnitine long-chain acyltransferase activities. Kinetics, inhibitors, and active sites of COT and CPT-II. , 1999, Advances in experimental medicine and biology.
[4] G. Mannaerts,et al. Peroxisomal lipid degradation via beta- and alpha-oxidation in mammals. , 2000, Cell biochemistry and biophysics.
[5] Aldons J. Lusis,et al. Atherosclerosis : Vascular biology , 2000 .
[6] T. Osborne,et al. Sterol Regulatory Element-binding Proteins (SREBPs): Key Regulators of Nutritional Homeostasis and Insulin Action* , 2000, The Journal of Biological Chemistry.
[7] S. Eaton,et al. The mitochondrial trifunctional protein: centre of a beta-oxidation metabolon? , 2000, Biochemical Society transactions.
[8] Christopher K. Glass,et al. Atherosclerosis The Road Ahead , 2001, Cell.
[9] 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.
[10] M. White,et al. IRS proteins and the common path to diabetes. , 2002, American journal of physiology. Endocrinology and metabolism.
[11] R. B. Rawson. The SREBP pathway — insights from insigs and insects , 2003, Nature Reviews Molecular Cell Biology.
[12] D. Accili,et al. FoxOs at the Crossroads of Cellular Metabolism, Differentiation, and Transformation , 2004, Cell.
[13] V. Ambros. The functions of animal microRNAs , 2004, Nature.
[14] Paul Zimmet,et al. The metabolic syndrome—a new worldwide definition , 2005, The Lancet.
[15] L. N. Valenti,et al. Nuclear Trapping of the Forkhead Transcription Factor FoxO1 via Sirt-dependent Deacetylation Promotes Expression of Glucogenetic Genes* , 2005, Journal of Biological Chemistry.
[16] N. Rajewsky,et al. Silencing of microRNAs in vivo with ‘antagomirs’ , 2005, Nature.
[17] G. Hotamisligil,et al. Inflammation and metabolic disorders , 2006, Nature.
[18] J. Shaw,et al. Metabolic syndrome—a new world‐wide definition. A Consensus Statement from the International Diabetes Federation , 2006, Diabetic medicine : a journal of the British Diabetic Association.
[19] A. Klip,et al. Tissue-specific roles of IRS proteins in insulin signaling and glucose transport , 2006, Trends in Endocrinology & Metabolism.
[20] Mark Graham,et al. miR-122 regulation of lipid metabolism revealed by in vivo antisense targeting. , 2006, Cell metabolism.
[21] E. Lai,et al. The Mirtron Pathway Generates microRNA-Class Regulatory RNAs in Drosophila , 2007, Cell.
[22] A. Silahtaroglu,et al. Antagonism of microRNA-122 in mice by systemically administered LNA-antimiR leads to up-regulation of a large set of predicted target mRNAs in the liver , 2007, Nucleic acids research.
[23] W. Filipowicz,et al. Mechanisms of post-transcriptional regulation by microRNAs: are the answers in sight? , 2008, Nature Reviews Genetics.
[24] S. Kauppinen,et al. LNA-mediated microRNA silencing in non-human primates , 2008, Nature.
[25] D. Accili,et al. The double life of Irs. , 2008, Cell metabolism.
[26] R. Hegele,et al. Genetics of metabolic syndrome , 2008, Current diabetes reports.
[27] D. Bartel. MicroRNAs: Target Recognition and Regulatory Functions , 2009, Cell.
[28] C. Thummel,et al. Drosophila HNF4 regulates lipid mobilization and beta-oxidation. , 2009, Cell metabolism.
[29] Xiaoling Xu,et al. Hepatic-specific disruption of SIRT6 in mice results in fatty liver formation due to enhanced glycolysis and triglyceride synthesis. , 2010, Cell metabolism.
[30] Oksana Gavrilova,et al. SIRT6 Deficiency Results in Severe Hypoglycemia by Enhancing Both Basal and Insulin-stimulated Glucose Uptake in Mice* , 2010, The Journal of Biological Chemistry.
[31] T. Shioda,et al. MicroRNA-33 and the SREBP Host Genes Cooperate to Control Cholesterol Homeostasis , 2010, Science.
[32] Daniel S. Ory,et al. miR-33 links SREBP-2 induction to repression of sterol transporters , 2010, Proceedings of the National Academy of Sciences.
[33] Orian S. Shirihai,et al. The Histone Deacetylase Sirt6 Regulates Glucose Homeostasis via Hif1α , 2010, Cell.
[34] K. Moore,et al. MiR-33 Contributes to the Regulation of Cholesterol Homeostasis , 2010, Science.
[35] I. Gérin,et al. Expression of miR-33 from an SREBP2 Intron Inhibits Cholesterol Export and Fatty Acid Oxidation* , 2010, The Journal of Biological Chemistry.
[36] J. Goldstein,et al. HDL miR-ed Down by SREBP Introns , 2010, Science.