Regulation and mechanism of action of miRNAs on insulin resistance in skeletal muscles
暂无分享,去创建一个
A. Sufianov | O. Beylerli | Yanchao Liang | Tatiana Ilyasova | Sema Begliarzade | V. Kudriashov | A. Kostin | A. Beilerli | A. Mukhamedzyanov
[1] A. Sufianov,et al. MicroRNAs as potential diagnostic markers of glial brain tumors , 2022, Non-coding RNA research.
[2] A. Sufianov,et al. MicroRNAs as prognostic markers and therapeutic targets in gliomas , 2022, Non-coding RNA research.
[3] A. Sufianov,et al. Circulating ciRS-7 as a potential non-invasive biomarker for epithelial ovarian cancer: An investigative study , 2022, Non-coding RNA research.
[4] A. Sufianov,et al. Long noncoding RNAs as promising biomarkers in cancer , 2022, Non-coding RNA research.
[5] Aamir Ahmad,et al. Long non-coding RNAs in oncourology , 2021, Non-coding RNA research.
[6] Aamir Ahmad,et al. Differential non-coding RNAs expression profiles of invasive and non-invasive pituitary adenomas , 2021, Non-coding RNA research.
[7] G. Aliev,et al. The Role of Long Non-Coding RNAs in Intracranial Aneurysms and Subarachnoid Hemorrhage , 2020, Life.
[8] V. Pavlov,et al. The role of lncRNAs in the biology of pituitary adenomas. , 2020, World neurosurgery.
[9] S. Marzi,et al. Noncoding RNA. , 2019, Microbiology spectrum.
[10] G. Basturea,et al. Endocytosis , 1985, Springer US.
[11] Rajat Singh,et al. Autophagy and Mitochondria in Obesity and Type 2 Diabetes. , 2017, Current diabetes reviews.
[12] R. Curi,et al. Role of microRNAs on the Regulation of Mitochondrial Biogenesis and Insulin Signaling in Skeletal Muscle , 2017, Journal of cellular physiology.
[13] D. O'Gorman,et al. Altered miR-29 Expression in Type 2 Diabetes Influences Glucose and Lipid Metabolism in Skeletal Muscle , 2017, Diabetes.
[14] D. Gauguier,et al. Biological roles of microRNAs in the control of insulin secretion and action. , 2017, Physiological genomics.
[15] Y. Miao,et al. MicroRNA‐106b targets FUT6 to promote cell migration, invasion, and proliferation in human breast cancer , 2016, IUBMB life.
[16] Yaohui Nie,et al. Impaired exercise tolerance, mitochondrial biogenesis, and muscle fiber maintenance in miR‐133a–deficient mice , 2016, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[17] R. Curi,et al. MyomiRs as Markers of Insulin Resistance and Decreased Myogenesis in Skeletal Muscle of Diet-Induced Obese Mice , 2016, Front. Endocrinol..
[18] C. Yen,et al. miR-106b promotes cancer progression in hepatitis B virus-associated hepatocellular carcinoma. , 2016, World journal of gastroenterology.
[19] Chaoqian Xu,et al. Regulation of Insulin Resistance by Multiple MiRNAs via Targeting the GLUT4 Signalling Pathway , 2016, Cellular Physiology and Biochemistry.
[20] J. Deiuliis. MicroRNAs as regulators of metabolic disease: pathophysiologic significance and emerging role as biomarkers and therapeutics , 2015, International Journal of Obesity.
[21] Chaoxian Zhao,et al. MicroRNA-761 regulates mitochondrial biogenesis in mouse skeletal muscle in response to exercise. , 2015, Biochemical and biophysical research communications.
[22] Ya-ping Zhao,et al. Silencing miR-106b improves palmitic acid-induced mitochondrial dysfunction and insulin resistance in skeletal myocytes. , 2015, Molecular medicine reports.
[23] C. Steer,et al. microRNAs in Mitochondria: An Unexplored Niche. , 2015, Advances in experimental medicine and biology.
[24] P. Pardo,et al. MicroRNA-149 Inhibits PARP-2 and Promotes Mitochondrial Biogenesis via SIRT-1/PGC-1α Network in Skeletal Muscle , 2014, Diabetes.
[25] Kwang-Hoon Chun,et al. MicroRNA-494, Upregulated by Tumor Necrosis Factor-α, Desensitizes Insulin Effect in C2C12 Muscle Cells , 2013, PloS one.
[26] Lei Yang,et al. MicroRNA-106b induces mitochondrial dysfunction and insulin resistance in C2C12 myotubes by targeting mitofusin-2 , 2013, Molecular and Cellular Endocrinology.
[27] D. Turnbull,et al. Acute exercise remodels mitochondrial membrane interactions in mouse skeletal muscle , 2013, Journal of applied physiology.
[28] M. Côrrea-Giannella,et al. SLC2A4gene: a promising target for pharmacogenomics of insulin resistance. , 2013, Pharmacogenomics.
[29] M. Rudnicki,et al. MicroRNA-133 controls brown adipose determination in skeletal muscle satellite cells by targeting Prdm16. , 2013, Cell metabolism.
[30] A. Russell,et al. Disruption of skeletal muscle mitochondrial network genes and miRNAs in amyotrophic lateral sclerosis , 2013, Neurobiology of Disease.
[31] J. Ryall. The role of sirtuins in the regulation of metabolic homeostasis in skeletal muscle , 2012, Current opinion in clinical nutrition and metabolic care.
[32] Alan R. Saltiel,et al. Regulation of glucose transport by insulin: traffic control of GLUT4 , 2012, Nature Reviews Molecular Cell Biology.
[33] Guo-Qing Chen,et al. Altered microRNA expression in skeletal muscle results from high-fat diet-induced insulin resistance in mice. , 2012, Molecular medicine reports.
[34] Margaret S. Ebert,et al. Roles for MicroRNAs in Conferring Robustness to Biological Processes , 2012, Cell.
[35] S. Caprio,et al. Insulin resistance. , 2012, The Journal of pediatrics.
[36] E. Olson,et al. Control of glucose homeostasis and insulin sensitivity by the Let-7 family of microRNAs , 2011, Proceedings of the National Academy of Sciences.
[37] M. Zavolan,et al. MicroRNAs 103 and 107 regulate insulin sensitivity , 2011, Nature.
[38] J. Auwerx,et al. PARP-1 inhibition increases mitochondrial metabolism through SIRT1 activation. , 2011, Cell metabolism.
[39] A. Klip,et al. Endocytosis, recycling, and regulated exocytosis of glucose transporter 4. , 2011, Biochemistry.
[40] K. Siddle,et al. The involvement of microRNAs in Type 2 diabetes. , 2010, Biochemical Society transactions.
[41] C. Schéele,et al. Muscle specific microRNAs are regulated by endurance exercise in human skeletal muscle , 2010, The Journal of physiology.
[42] D. Leroith,et al. Insulin resistance in obesity as the underlying cause for the metabolic syndrome. , 2010, The Mount Sinai journal of medicine, New York.
[43] S. Cook,et al. MicroRNA-223 regulates Glut4 expression and cardiomyocyte glucose metabolism. , 2010, Cardiovascular research.
[44] M. McCarthy,et al. Global microRNA expression profiles in insulin target tissues in a spontaneous rat model of type 2 diabetes , 2010, Diabetologia.
[45] J. Zierath,et al. Impaired insulin-induced site-specific phosphorylation of TBC1 domain family, member 4 (TBC1D4) in skeletal muscle of type 2 diabetes patients is restored by endurance exercise-training , 2010, Diabetologia.
[46] Claes Wahlestedt,et al. Integration of microRNA changes in vivo identifies novel molecular features of muscle insulin resistance in type 2 diabetes , 2010, Genome Medicine.
[47] Takeshi Kimura,et al. MicroRNA-133 regulates the expression of GLUT4 by targeting KLF15 and is involved in metabolic control in cardiac myocytes. , 2009, Biochemical and biophysical research communications.
[48] Sophie Rome,et al. The microRNA Signature in Response to Insulin Reveals Its Implication in the Transcriptional Action of Insulin in Human Skeletal Muscle and the Role of a Sterol Regulatory Element–Binding Protein-1c/Myocyte Enhancer Factor 2C Pathway , 2009, Diabetes.
[49] Joris Hoeks,et al. Lower Intrinsic ADP-Stimulated Mitochondrial Respiration Underlies In Vivo Mitochondrial Dysfunction in Muscle of Male Type 2 Diabetic Patients , 2008, Diabetes.
[50] Kishore Guda,et al. The noncoding RNA, miR‐126, suppresses the growth of neoplastic cells by targeting phosphatidylinositol 3‐kinase signaling and is frequently lost in colon cancers , 2008, Genes, chromosomes & cancer.
[51] P. Puigserver,et al. Metabolic control of muscle mitochondrial function and fatty acid oxidation through SIRT1/PGC‐1α , 2007, The EMBO journal.
[52] R. Boushel,et al. Patients with type 2 diabetes have normal mitochondrial function in skeletal muscle , 2007, Diabetologia.
[53] K. Petersen,et al. Molecular Mechanisms of Insulin Resistance in Humans and Their Potential Links With Mitochondrial Dysfunction , 2006, Diabetes.
[54] C. Ling,et al. Enhanced mitochondrial metabolism may account for the adaptation to insulin resistance in islets from C57BL/6J mice fed a high-fat diet , 2006, Diabetologia.
[55] S. Kane,et al. Insulin-stimulated phosphorylation of the Akt substrate AS160 is impaired in skeletal muscle of type 2 diabetic subjects. , 2005, Diabetes.
[56] R. Scarpulla,et al. Transcriptional regulatory circuits controlling mitochondrial biogenesis and function. , 2004, Genes & development.
[57] C. Kahn,et al. Glucose toxicity and the development of diabetes in mice with muscle-specific inactivation of GLUT4. , 2001, The Journal of clinical investigation.
[58] G. Shulman,et al. Contrasting Effects of IRS-1 Versus IRS-2 Gene Disruption on Carbohydrate and Lipid Metabolism in Vivo * , 2000, The Journal of Biological Chemistry.
[59] J. Boeke,et al. A phylogenetically conserved NAD+-dependent protein deacetylase activity in the Sir2 protein family. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[60] A. Baron,et al. Gene Expression of GLUT4 in Skeletal Muscle From Insulin-Resistant Patients With Obesity, IGT, GDM, and NIDDM , 1992, Diabetes.