Computed tomography analysis of the association between the SH2B1 rs7498665 single-nucleotide polymorphism and visceral fat area

[1]  Yusuke Nakamura,et al.  Polymorphisms in NRXN3, TFAP2B, MSRA, LYPLAL1, FTO and MC4R and their effect on visceral fat area in the Japanese population , 2010, Journal of Human Genetics.

[2]  F. Schick,et al.  Novel Obesity Risk Loci Do Not Determine Distribution of Body Fat Depots: A Whole‐body MRI/MRS study , 2010, Obesity.

[3]  J. Chan,et al.  Implication of genetic variants near NEGR1, SEC16B, TMEM18, ETV5/DGKG, GNPDA2, LIN7C/BDNF, MTCH2, BCDIN3D/FAIM2, SH2B1, FTO, MC4R, and KCTD15 with obesity and type 2 diabetes in 7705 Chinese. , 2010, The Journal of clinical endocrinology and metabolism.

[4]  Yusuke Nakamura,et al.  Association between obesity and polymorphisms in SEC16B, TMEM18, GNPDA2, BDNF, FAIM2 and MC4R in a Japanese population , 2009, Journal of Human Genetics.

[5]  C. Wijmenga,et al.  Obesity genes identified in genome-wide association studies are associated with adiposity measures and potentially with nutrient-specific food preference. , 2009, The American journal of clinical nutrition.

[6]  Suzette J. Bielinski,et al.  NRXN3 Is a Novel Locus for Waist Circumference: A Genome-Wide Association Study from the CHARGE Consortium , 2009, PLoS genetics.

[7]  Barbara Heude,et al.  Genome-wide association study for early-onset and morbid adult obesity identifies three new risk loci in European populations , 2009, Nature Genetics.

[8]  Paul W. Franks,et al.  Replication and extension of genome-wide association study results for obesity in 4923 adults from northern Sweden , 2009, Human molecular genetics.

[9]  Yusuke Nakamura,et al.  Variations in the FTO gene are associated with severe obesity in the Japanese , 2008, Journal of Human Genetics.

[10]  Yusuke Nakamura,et al.  Association of single-nucleotide polymorphisms in MTMR9 gene with obesity. , 2007, Human molecular genetics.

[11]  Yusuke Nakamura,et al.  Functional single-nucleotide polymorphisms in the secretogranin III (SCG3) gene that form secretory granules with appetite-related neuropeptides are associated with obesity. , 2007, The Journal of clinical endocrinology and metabolism.

[12]  Minghua Li,et al.  Neuronal SH2B1 is essential for controlling energy and glucose homeostasis. , 2007, The Journal of clinical investigation.

[13]  T. Spector,et al.  The SH2B Gene is Associated with Serum Leptin and Body Fat in Normal Female Twins , 2007, Obesity.

[14]  Y. Ouchi,et al.  Prevalence of metabolic syndrome in the general Japanese population in 2000. , 2006, Journal of atherosclerosis and thrombosis.

[15]  Y. Matsuzawa Metabolic syndrome--definition and diagnostic criteria in Japan. , 2005, Journal of atherosclerosis and thrombosis.

[16]  Minghua Li,et al.  Identification of SH2-B as a key regulator of leptin sensitivity, energy balance, and body weight in mice. , 2005, Cell metabolism.

[17]  C. D. Claussen,et al.  Age and gender related effects on adipose tissue compartments of subjects with increased risk for type 2 diabetes: a whole body MRI / MRS study , 2005, Magnetic Resonance Materials in Physics, Biology and Medicine.

[18]  M. White,et al.  Disruption of the SH2-B Gene Causes Age-Dependent Insulin Resistance and Glucose Intolerance , 2004, Molecular and Cellular Biology.

[19]  Jane B Shofer,et al.  Intra-abdominal fat is a major determinant of the National Cholesterol Education Program Adult Treatment Panel III criteria for the metabolic syndrome. , 2004, Diabetes.

[20]  Yusuke Nakamura,et al.  A high-throughput SNP typing system for genome-wide association studies , 2001, Journal of Human Genetics.

[21]  T. Funahashi,et al.  Circulating concentrations of the adipocyte protein adiponectin are decreased in parallel with reduced insulin sensitivity during the progression to type 2 diabetes in rhesus monkeys. , 2001, Diabetes.

[22]  S. Yamashita,et al.  Abdominal fat: standardized technique for measurement at CT. , 1999, Radiology.

[23]  M. Ehm,et al.  Detecting marker-disease association by testing for Hardy-Weinberg disequilibrium at a marker locus. , 1998, American journal of human genetics.

[24]  L. Mathews,et al.  Identification of SH2-Bbeta as a substrate of the tyrosine kinase JAK2 involved in growth hormone signaling , 1997, Molecular and cellular biology.

[25]  S. Yamashita,et al.  Visceral fat accumulation and vascular complications associated with VMH lesioning of spontaneously non-insulin-dependent diabetic GK rat. , 1996, International journal of obesity and related metabolic disorders : journal of the International Association for the Study of Obesity.

[26]  Ellen Kampman,et al.  Genome-wide association yields new sequence variants at seven loci that associate with measures of obesity , 2009, Nature Genetics.

[27]  Christian Gieger,et al.  Six new loci associated with body mass index highlight a neuronal influence on body weight regulation , 2009, Nature Genetics.

[28]  Minghua Li,et al.  Neuronal SH 2 B 1 is essential for controlling energy and glucose homeostasis , 2007 .

[29]  Y. Matsuzawa Therapy Insight: adipocytokines in metabolic syndrome and related cardiovascular disease , 2006, Nature Clinical Practice Cardiovascular Medicine.

[30]  Laura J. Scott,et al.  Edinburgh Research Explorer Genome-wide association scan meta-analysis identifies three loci influencing adiposity and fat distribution , 2022 .