Thyroid hormone receptor-α gene knockout mice are protected from diet-induced hepatic insulin resistance. 2012

François R Jornayvaz, and Hui-Young Lee, and Michael J Jurczak, and Tiago C Alves, and Fitsum Guebre-Egziabher, and Blas A Guigni, and Dongyan Zhang, and Varman T Samuel, and J Enrique Silva, and Gerald I Shulman
Department of Internal Medicine, Yale University School of Medicine, New Haven, Connecticut 06536, USA.

Nonalcoholic fatty liver disease (NAFLD) is the most frequent chronic liver disease in the United States and is strongly associated with hepatic insulin resistance. We examined whether the thyroid hormone receptor-α (Thra) would be a potential therapeutic target to prevent diet-induced NAFLD and insulin resistance. For that purpose, we assessed insulin action in high-fat diet-fed Thra gene knockout (Thra-0/0) and wild-type mice using hyperinsulinemic-euglycemic clamps combined with (3)H/(14)C-labeled glucose to assess basal and insulin-stimulated rates of glucose and fat metabolism. Body composition was assessed by (1)H magnetic resonance spectroscopy and energy expenditure by indirect calorimetry. Relative rates of hepatic glucose and fat oxidation were assessed in vivo using a novel proton-observed carbon-edited nuclear magnetic resonance technique. Thra-0/0 were lighter, leaner, and manifested greater whole-body insulin sensitivity than wild-type mice during the clamp, which could be attributed to increased insulin sensitivity both in liver and peripheral tissues. Increased hepatic insulin sensitivity could be attributed to decreased hepatic diacylglycerol content, resulting in decreased activation of protein kinase Cε and increased insulin signaling. In conclusion, loss of Thra protects mice from high-fat diet-induced hepatic steatosis and hepatic and peripheral insulin resistance. Therefore, thyroid receptor-α inhibition represents a novel pharmacologic target for the treatment of NAFLD, obesity, and type 2 diabetes.

UI MeSH Term Description Entries
D007328 Insulin A 51-amino acid pancreatic hormone that plays a major role in the regulation of glucose metabolism, directly by suppressing endogenous glucose production (GLYCOGENOLYSIS; GLUCONEOGENESIS) and indirectly by suppressing GLUCAGON secretion and LIPOLYSIS. Native insulin is a globular protein comprised of a zinc-coordinated hexamer. Each insulin monomer containing two chains, A (21 residues) and B (30 residues), linked by two disulfide bonds. Insulin is used as a drug to control insulin-dependent diabetes mellitus (DIABETES MELLITUS, TYPE 1). Iletin,Insulin A Chain,Insulin B Chain,Insulin, Regular,Novolin,Sodium Insulin,Soluble Insulin,Chain, Insulin B,Insulin, Sodium,Insulin, Soluble,Regular Insulin
D007333 Insulin Resistance Diminished effectiveness of INSULIN in lowering blood sugar levels: requiring the use of 200 units or more of insulin per day to prevent HYPERGLYCEMIA or KETOSIS. Insulin Sensitivity,Resistance, Insulin,Sensitivity, Insulin
D008099 Liver A large lobed glandular organ in the abdomen of vertebrates that is responsible for detoxification, metabolism, synthesis and storage of various substances. Livers
D008297 Male Males
D009765 Obesity A status with BODY WEIGHT that is grossly above the recommended standards, usually due to accumulation of excess FATS in the body. The standards may vary with age, sex, genetic or cultural background. In the BODY MASS INDEX, a BMI greater than 30.0 kg/m2 is considered obese, and a BMI greater than 40.0 kg/m2 is considered morbidly obese (MORBID OBESITY).
D004032 Diet Regular course of eating and drinking adopted by a person or animal. Diets
D004041 Dietary Fats Fats present in food, especially in animal products such as meat, meat products, butter, ghee. They are present in lower amounts in nuts, seeds, and avocados. Fats, Dietary,Dietary Fat,Fat, Dietary
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D015309 Glucose Clamp Technique Maintenance of a constant blood glucose level by perfusion or infusion with glucose or insulin. It is used for the study of metabolic rates (e.g., in glucose, lipid, amino acid metabolism) at constant glucose concentration. Euglycemic Clamping,Glucose Clamping,Euglycaemic Clamp,Euglycaemic Clamping,Euglycemic Clamp,Glucose Clamp,Glucose Clamp Technic,Clamp, Euglycaemic,Clamp, Euglycemic,Clamp, Glucose,Clamping, Euglycaemic,Clamping, Euglycemic,Clamping, Glucose,Clamps, Euglycaemic,Clamps, Euglycemic,Clamps, Glucose,Euglycaemic Clamps,Euglycemic Clamps,Glucose Clamp Technics,Glucose Clamp Techniques,Glucose Clamps,Technic, Glucose Clamp,Technics, Glucose Clamp,Technique, Glucose Clamp,Techniques, Glucose Clamp
D015398 Signal Transduction The intracellular transfer of information (biological activation/inhibition) through a signal pathway. In each signal transduction system, an activation/inhibition signal from a biologically active molecule (hormone, neurotransmitter) is mediated via the coupling of a receptor/enzyme to a second messenger system or to an ion channel. Signal transduction plays an important role in activating cellular functions, cell differentiation, and cell proliferation. Examples of signal transduction systems are the GAMMA-AMINOBUTYRIC ACID-postsynaptic receptor-calcium ion channel system, the receptor-mediated T-cell activation pathway, and the receptor-mediated activation of phospholipases. Those coupled to membrane depolarization or intracellular release of calcium include the receptor-mediated activation of cytotoxic functions in granulocytes and the synaptic potentiation of protein kinase activation. Some signal transduction pathways may be part of larger signal transduction pathways; for example, protein kinase activation is part of the platelet activation signal pathway. Cell Signaling,Receptor-Mediated Signal Transduction,Signal Pathways,Receptor Mediated Signal Transduction,Signal Transduction Pathways,Signal Transduction Systems,Pathway, Signal,Pathway, Signal Transduction,Pathways, Signal,Pathways, Signal Transduction,Receptor-Mediated Signal Transductions,Signal Pathway,Signal Transduction Pathway,Signal Transduction System,Signal Transduction, Receptor-Mediated,Signal Transductions,Signal Transductions, Receptor-Mediated,System, Signal Transduction,Systems, Signal Transduction,Transduction, Signal,Transductions, Signal

Related Publications

François R Jornayvaz, and Hui-Young Lee, and Michael J Jurczak, and Tiago C Alves, and Fitsum Guebre-Egziabher, and Blas A Guigni, and Dongyan Zhang, and Varman T Samuel, and J Enrique Silva, and Gerald I Shulman
October 2010, Endocrinology,
François R Jornayvaz, and Hui-Young Lee, and Michael J Jurczak, and Tiago C Alves, and Fitsum Guebre-Egziabher, and Blas A Guigni, and Dongyan Zhang, and Varman T Samuel, and J Enrique Silva, and Gerald I Shulman
September 2004, The Journal of clinical investigation,
François R Jornayvaz, and Hui-Young Lee, and Michael J Jurczak, and Tiago C Alves, and Fitsum Guebre-Egziabher, and Blas A Guigni, and Dongyan Zhang, and Varman T Samuel, and J Enrique Silva, and Gerald I Shulman
July 2005, American journal of physiology. Endocrinology and metabolism,
François R Jornayvaz, and Hui-Young Lee, and Michael J Jurczak, and Tiago C Alves, and Fitsum Guebre-Egziabher, and Blas A Guigni, and Dongyan Zhang, and Varman T Samuel, and J Enrique Silva, and Gerald I Shulman
August 2020, American journal of physiology. Endocrinology and metabolism,
François R Jornayvaz, and Hui-Young Lee, and Michael J Jurczak, and Tiago C Alves, and Fitsum Guebre-Egziabher, and Blas A Guigni, and Dongyan Zhang, and Varman T Samuel, and J Enrique Silva, and Gerald I Shulman
August 2013, The Journal of biological chemistry,
François R Jornayvaz, and Hui-Young Lee, and Michael J Jurczak, and Tiago C Alves, and Fitsum Guebre-Egziabher, and Blas A Guigni, and Dongyan Zhang, and Varman T Samuel, and J Enrique Silva, and Gerald I Shulman
December 2001, Diabetes,
François R Jornayvaz, and Hui-Young Lee, and Michael J Jurczak, and Tiago C Alves, and Fitsum Guebre-Egziabher, and Blas A Guigni, and Dongyan Zhang, and Varman T Samuel, and J Enrique Silva, and Gerald I Shulman
March 2012, American journal of physiology. Endocrinology and metabolism,
François R Jornayvaz, and Hui-Young Lee, and Michael J Jurczak, and Tiago C Alves, and Fitsum Guebre-Egziabher, and Blas A Guigni, and Dongyan Zhang, and Varman T Samuel, and J Enrique Silva, and Gerald I Shulman
November 2020, Molecular metabolism,
François R Jornayvaz, and Hui-Young Lee, and Michael J Jurczak, and Tiago C Alves, and Fitsum Guebre-Egziabher, and Blas A Guigni, and Dongyan Zhang, and Varman T Samuel, and J Enrique Silva, and Gerald I Shulman
August 2017, Journal of lipid research,
François R Jornayvaz, and Hui-Young Lee, and Michael J Jurczak, and Tiago C Alves, and Fitsum Guebre-Egziabher, and Blas A Guigni, and Dongyan Zhang, and Varman T Samuel, and J Enrique Silva, and Gerald I Shulman
March 2019, FASEB journal : official publication of the Federation of American Societies for Experimental Biology,
Copied contents to your clipboard!