A Six Months Exercise Intervention Influences the Genome-wide DNA Methylation Pattern in Human Adipose Tissue
暂无分享,去创建一个
Leif Groop | Åsa Tornberg | Elin Hall | Petr Volkov | K. Eriksson | L. Groop | C. Ling | Å. Tornberg | T. Rönn | M. Dekker Nitert | Petr Volkov | Cajsa Davegårdh | T. Dayeh | E. Hall | A. Olsson | E. Nilsson | H. Jones | Charlotte Ling | Karl-Fredrik Eriksson | Tasnim Dayeh | Tina Rönn | Cajsa Davegårdh | Anders H. Olsson | Emma Nilsson | Marloes Dekker Nitert | Helena A. Jones | Elin Hall | Petr A. Volkov
[1] E. Mannarino,et al. The endocrine function of adipose tissue: an update , 2006, Clinical endocrinology.
[2] C. Sotiriou,et al. Evaluation of the Infinium Methylation 450K technology. , 2011, Epigenomics.
[3] A. Garnham,et al. Exercise‐induced histone modifications in human skeletal muscle , 2009, The Journal of physiology.
[4] Richard D Emes,et al. Make way for the 'next generation': application and prospects for genome-wide, epigenome-specific technologies in endocrine research. , 2012, Journal of molecular endocrinology.
[5] L. Groop,et al. Unique splicing pattern of the TCF7L2 gene in human pancreatic islets , 2009, Diabetologia.
[6] L. Groop,et al. Metabolic Consequences of a Family History of NIDDM (The Botnia Study): Evidence for Sex-Specific Parental Effects , 1996, Diabetes.
[7] L. Groop,et al. Epigenetic regulation of PPARGC1A in human type 2 diabetic islets and effect on insulin secretion , 2008, Diabetologia.
[8] R. Weksberg,et al. Discovery of cross-reactive probes and polymorphic CpGs in the Illumina Infinium HumanMethylation450 microarray , 2013, Epigenetics.
[9] W. Kraus,et al. Exercise, Abdominal Obesity, Skeletal Muscle, and Metabolic Risk: Evidence for a Dose Response , 2009, Obesity.
[10] Chia-Lin Wei,et al. Dynamic changes in the human methylome during differentiation. , 2010, Genome research.
[11] C. Ling,et al. Increased DNA Methylation and Decreased Expression of PDX-1 in Pancreatic Islets from Patients with Type 2 Diabetes. , 2012 .
[12] Cheng Li,et al. Adjusting batch effects in microarray expression data using empirical Bayes methods. , 2007, Biostatistics.
[13] L. Groop,et al. Heritability and familiality of type 2 diabetes and related quantitative traits in the Botnia Study , 2011, Diabetologia.
[14] L. Groop,et al. Epigenetics: A Molecular Link Between Environmental Factors and Type 2 Diabetes , 2009, Diabetes.
[15] J. Schwabe,et al. Nuclear hormone receptor co-repressors: Structure and function , 2012, Molecular and Cellular Endocrinology.
[16] C. Ling,et al. Identification of CpG-SNPs associated with type 2 diabetes and differential DNA methylation in human pancreatic islets , 2013, Diabetologia.
[17] K. Eriksson,et al. First-degree relatives of type 2 diabetic patients have reduced expression of genes involved in fatty acid metabolism in skeletal muscle. , 2012, The Journal of clinical endocrinology and metabolism.
[18] A. Teschendorff,et al. An Epigenetic Signature in Peripheral Blood Predicts Active Ovarian Cancer , 2009, PloS one.
[19] A. Olson,et al. Class II Histone Deacetylases Downregulate GLUT4 Transcription in Response to Increased cAMP Signaling in Cultured Adipocytes and Fasting Mice , 2012, Diabetes.
[20] J. Mill,et al. Differential epigenomic and transcriptomic responses in subcutaneous adipose tissue between low and high responders to caloric restriction. , 2010, The American journal of clinical nutrition.
[21] R. Vatsyayan,et al. RLIP76, a Glutathione-Conjugate Transporter, Plays a Major Role in the Pathogenesis of Metabolic Syndrome , 2011, PloS one.
[22] T. Valle,et al. Prevention of type 2 diabetes mellitus by changes in lifestyle among subjects with impaired glucose tolerance. , 2001, The New England journal of medicine.
[23] B. Popkin,et al. Time use and physical activity: a shift away from movement across the globe , 2012, Obesity reviews : an official journal of the International Association for the Study of Obesity.
[24] L. Groop,et al. Age influences DNA methylation and gene expression of COX7A1 in human skeletal muscle , 2008, Diabetologia.
[25] Qian Wang,et al. Activation of RalA is required for insulin-stimulated Glut4 trafficking to the plasma membrane via the exocyst and the motor protein Myo1c. , 2007, Developmental cell.
[26] M. Laakso,et al. Adipose Tissue TCF7L2 Splicing Is Regulated by Weight Loss and Associates With Glucose and Fatty Acid Metabolism , 2012, Diabetes.
[27] Robin M. Murray,et al. Epigenome-Wide Scans Identify Differentially Methylated Regions for Age and Age-Related Phenotypes in a Healthy Ageing Population , 2012, PLoS genetics.
[28] L. Groop,et al. Genetic and epigenetic factors are associated with expression of respiratory chain component NDUFB6 in human skeletal muscle. , 2007, The Journal of clinical investigation.
[29] M. Brady,et al. The Silencing Mediator of Retinoid and Thyroid Hormone Receptors (SMRT) Regulates Adipose Tissue Accumulation and Adipocyte Insulin Sensitivity in Vivo* , 2010, The Journal of Biological Chemistry.
[30] A. Feinberg,et al. Stochastic epigenetic variation as a driving force of development, evolutionary adaptation, and disease , 2010, Proceedings of the National Academy of Sciences.
[31] S. Fowler,et al. Reduction in the incidence of type 2 diabetes with lifestyle intervention or metformin. , 2002 .
[32] T. Spector,et al. Epigenetic differences arise during the lifetime of monozygotic twins. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[33] Steve Horvath,et al. Epigenetic Predictor of Age , 2011, PloS one.
[34] K. Eriksson,et al. Impact of an Exercise Intervention on DNA Methylation in Skeletal Muscle From First-Degree Relatives of Patients With Type 2 Diabetes , 2012, Diabetes.
[35] Rafael A Irizarry,et al. Exploration, normalization, and summaries of high density oligonucleotide array probe level data. , 2003, Biostatistics.
[36] J. Zierath,et al. Non-CpG methylation of the PGC-1alpha promoter through DNMT3B controls mitochondrial density. , 2009, Cell metabolism.
[37] Insulin promoter DNA methylation correlates negatively with insulin gene expression and positively with HbA1c levels in human pancreatic islets , 2010, Diabetologia.
[38] Matthieu Defrance,et al. DNA methylation profiling identifies epigenetic dysregulation in pancreatic islets from type 2 diabetic patients , 2012, The EMBO journal.
[39] Yoko Ito,et al. Maternal diet and aging alter the epigenetic control of a promoter–enhancer interaction at the Hnf4a gene in rat pancreatic islets , 2011, Proceedings of the National Academy of Sciences.
[40] Tatjana Buklijas,et al. Epigenetic mechanisms that underpin metabolic and cardiovascular diseases , 2009, Nature Reviews Endocrinology.
[41] K. Gunderson,et al. High density DNA methylation array with single CpG site resolution. , 2011, Genomics.
[42] E. Gibney,et al. Epigenetics and gene expression , 2010, Heredity.
[43] J. M. Suh,et al. Corepressor SMRT promotes oxidative phosphorylation in adipose tissue and protects against diet-induced obesity and insulin resistance , 2011, Proceedings of the National Academy of Sciences.
[44] D. O'Gorman,et al. Acute exercise remodels promoter methylation in human skeletal muscle. , 2012, Cell metabolism.
[45] Pan Du,et al. lumi: a pipeline for processing Illumina microarray , 2008, Bioinform..
[46] Antonello Mai,et al. Inhibition of Class I Histone Deacetylases Unveils a Mitochondrial Signature and Enhances Oxidative Metabolism in Skeletal Muscle and Adipose Tissue , 2013, Diabetes.
[47] Peter A. Jones. Functions of DNA methylation: islands, start sites, gene bodies and beyond , 2012, Nature Reviews Genetics.
[48] A. Bird. DNA methylation patterns and epigenetic memory. , 2002, Genes & development.
[49] Thomas Meitinger,et al. Meta-analysis identifies 13 new loci associated with waist-hip ratio and reveals sexual dimorphism in the genetic basis of fat distribution , 2010, Nature Genetics.
[50] Owen T McCann,et al. Human aging-associated DNA hypermethylation occurs preferentially at bivalent chromatin domains. , 2010, Genome research.
[51] A. Oshlack,et al. SWAN: Subset-quantile Within Array Normalization for Illumina Infinium HumanMethylation450 BeadChips , 2012, Genome Biology.
[52] J. Rogers,et al. DNA methylation profiling of human chromosomes 6, 20 and 22 , 2006, Nature Genetics.
[53] Mark I McCarthy,et al. Genomics, type 2 diabetes, and obesity. , 2010, The New England journal of medicine.
[54] Xiao Zhang,et al. Comparison of Beta-value and M-value methods for quantifying methylation levels by microarray analysis , 2010, BMC Bioinformatics.
[55] M. McCarthy,et al. Insights Into the Molecular Mechanism for Type 2 Diabetes Susceptibility at the KCNQ1 Locus From Temporal Changes in Imprinting Status in Human Islets , 2013, Diabetes.
[56] John D. Storey,et al. Statistical significance for genomewide studies , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[57] A. Feinberg,et al. Genome-wide methylation analysis of human colon cancer reveals similar hypo- and hypermethylation at conserved tissue-specific CpG island shores , 2008, Nature Genetics.
[58] R. Cardarelli,et al. Physical activity and global genomic DNA methylation in a cancer-free population , 2011, Epigenetics.
[59] Jean YH Yang,et al. Bioconductor: open software development for computational biology and bioinformatics , 2004, Genome Biology.
[60] L. Groop,et al. A family history of diabetes is associated with reduced physical fitness in the Prevalence, Prediction and Prevention of Diabetes (PPP)–Botnia study , 2010, Diabetologia.