Effects of experimental weight perturbation on skeletal muscle work efficiency, fuel utilization, and biochemistry in human subjects.
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Katherine H. Pavlovich | D. Gallagher | D. Joanisse | R. Leibel | M. Rosenbaum | R. Goldsmith | Elisabeth L. Shamoon
[1] K. Sahlin,et al. Turning down lipid oxidation during heavy exercise--what is the mechanism? , 2008, Journal of physiology and pharmacology : an official journal of the Polish Physiological Society.
[2] B. Goodpaster,et al. Separate and combined effects of exercise training and weight loss on exercise efficiency and substrate oxidation. , 2008, Journal of applied physiology.
[3] William A. Dafoe,et al. Principles of Exercise Testing and Interpretation , 2007 .
[4] M. J. Yoon,et al. Adiponectin Increases Fatty Acid Oxidation in Skeletal Muscle Cells by Sequential Activation of AMP-Activated Protein Kinase, p38 Mitogen-Activated Protein Kinase, and Peroxisome Proliferator–Activated Receptor α , 2006, Diabetes.
[5] S. Heymsfield,et al. Low-dose leptin reverses skeletal muscle, autonomic, and neuroendocrine adaptations to maintenance of reduced weight. , 2005, The Journal of clinical investigation.
[6] K. Nair,et al. Changes in myosin heavy chain mRNA and protein expression in human skeletal muscle with age and endurance exercise training. , 2005, Journal of applied physiology.
[7] A. P. Arruda,et al. Role of Sarco/Endoplasmic Reticulum Ca2+-ATPase in Thermogenesis , 2005, Bioscience reports.
[8] J. Montani,et al. The direct effect of leptin on skeletal muscle thermogenesis is mediated by substrate cycling between de novo lipogenesis and lipid oxidation , 2004, FEBS letters.
[9] B. Braun,et al. Effects of insulin resistance on substrate utilization during exercise in overweight women. , 2004, Journal of applied physiology.
[10] J. Levine. Non-exercise activity thermogenesis (NEAT). , 2004, Nutrition reviews.
[11] C. Scriver,et al. The Metabolic and Molecular Bases of Inherited Disease, 8th Edition 2001 , 2001, Journal of Inherited Metabolic Disease.
[12] L. Campbell,et al. Fat oxidation, body composition and insulin sensitivity in diabetic and normoglycaemic obese adults 5 years after weight loss , 2003, International Journal of Obesity.
[13] B. Goodpaster,et al. Enhanced fat oxidation through physical activity is associated with improvements in insulin sensitivity in obesity. , 2003, Diabetes.
[14] S. Heymsfield,et al. Effects of experimental weight perturbation on skeletal muscle work efficiency in human subjects. , 2003, American journal of physiology. Regulatory, integrative and comparative physiology.
[15] K. Nair,et al. Effect of insulin on human skeletal muscle mitochondrial ATP production, protein synthesis, and mRNA transcripts , 2003, Proceedings of the National Academy of Sciences of the United States of America.
[16] J. Engel,et al. Structure-Function Studies of the Adipocyte-secreted Hormone Acrp30/Adiponectin , 2003, The Journal of Biological Chemistry.
[17] C. Irvin,et al. Exercise Physiology , 2003, Springer New York.
[18] D. Downham,et al. Enzyme activities in the tibialis anterior muscle of young moderately active men and women: relationship with body composition, muscle cross-sectional area and fibre type composition. , 2002, Acta physiologica Scandinavica.
[19] T. Tai,et al. Weight reduction increases plasma levels of an adipose-derived anti-inflammatory protein, adiponectin. , 2001, The Journal of clinical endocrinology and metabolism.
[20] R. Leibel,et al. Reply to R Weinsier et al , 2001 .
[21] Guiding principles for research involving animals and human beings. , 2001, American journal of physiology. Regulatory, integrative and comparative physiology.
[22] R. Curi,et al. The response of skeletal muscle to leptin. , 2001, Frontiers in bioscience : a journal and virtual library.
[23] S. Rössner,et al. Associations of leptin, insulin resistance and thyroid function with long‐term weight loss in dieting obese men , 2000, Journal of internal medicine.
[24] R. Leibel,et al. Effects of changes in body weight on carbohydrate metabolism, catecholamine excretion, and thyroid function. , 2000, The American journal of clinical nutrition.
[25] G R Hunter,et al. Energy expenditure and free-living physical activity in black and white women: comparison before and after weight loss. , 2000, The American journal of clinical nutrition.
[26] U. F. Rasmussen,et al. Human skeletal muscle mitochondrial capacity. , 2000, Acta physiologica Scandinavica.
[27] C. Elger,et al. Evaluation of methods for the determination of mitochondrial respiratory chain enzyme activities in human skeletal muscle samples. , 2000, Analytical biochemistry.
[28] E. Ravussin,et al. Energy expenditure, fat oxidation, and body weight regulation: a study of metabolic adaptation to long-term weight change. , 2000, The Journal of clinical endocrinology and metabolism.
[29] R. Leibel,et al. The role of leptin in human physiology. , 1999, The New England journal of medicine.
[30] S. Toubro,et al. Meta-analysis of resting metabolic rate in formerly obese subjects. , 1999, The American journal of clinical nutrition.
[31] T Nakamura,et al. Paradoxical decrease of an adipose-specific protein, adiponectin, in obesity. , 1999, Biochemical and biophysical research communications.
[32] P. Shetty. Adaptation to low energy intakes: the responses and limits to low intakes in infants, children and adults , 1999, European Journal of Clinical Nutrition.
[33] B. Saltin,et al. Effect of muscle glycogen on glucose, lactate and amino acid metabolism during exercise and recovery in human subjects , 1999, The Journal of physiology.
[34] R. Curi,et al. Comparing effects of leptin and insulin on glucose metabolism in skeletal muscle: evidence for an effect of leptin on glucose uptake and decarboxylation , 1999, International Journal of Obesity.
[35] Saris,et al. Skeletal muscle metabolic characteristics before and after energy restriction in human obesity: fibre type, enzymatic β‐oxidative capacity and fatty acid‐binding protein content , 1998, European journal of clinical investigation.
[36] K. Baldwin,et al. Novel transitions in MHC isoforms: separate and combined effects of thyroid hormone and mechanical unloading. , 1998, Journal of applied physiology.
[37] S. Papa,et al. Low Reserve of Cytochrome c Oxidase Capacity in Vivo in the Respiratory Chain of a Variety of Human Cell Types* , 1998, The Journal of Biological Chemistry.
[38] C. Reggiani,et al. Thyroid hormone regulation of MHC isoform composition and myofibrillar ATPase activity in rat skeletal muscles. , 1998, Archives of physiology and biochemistry.
[39] J. Houmard,et al. Fiber type and citrate synthase activity in the human gastrocnemius and vastus lateralis with aging. , 1998, Journal of applied physiology.
[40] G. Shull,et al. Sarco(endo)plasmic Reticulum Ca2+ ATPase Isoforms and Their Role in Muscle Physiology and Pathology , 1998, Annals of the New York Academy of Sciences.
[41] K. Adamo,et al. Comparison of traditional measurements with macroglycogen and proglycogen analysis of muscle glycogen. , 1998, Journal of applied physiology.
[42] T. Noakes,et al. Influence of muscle glycogen content on metabolic regulation. , 1998, The American journal of physiology.
[43] A. Astrup,et al. Fat metabolism in formerly obese women. , 1998, The American journal of physiology.
[44] C. Denis,et al. Enzyme adaptations of human skeletal muscle during bicycle short-sprint training and detraining. , 1997, Acta physiologica Scandinavica.
[45] Rudolph L. Leibel,et al. Medical progress: Obesity. , 1997 .
[46] R. Coleman,et al. Leptin Directly Alters Lipid Partitioning in Skeletal Muscle , 1997, Diabetes.
[47] M. Huang,et al. The exchange between proglycogen and macroglycogen and the metabolic role of the protein-rich glycogen in rat skeletal muscle. , 1997, The Journal of clinical investigation.
[48] S B Heymsfield,et al. Dual-energy X-ray absorptiometry body composition model: review of physical concepts. , 1996, The American journal of physiology.
[49] C. Mantzoros,et al. Role of leptin in the neuroendocrine response to fasting , 1996, Nature.
[50] E. Ravussin,et al. A comparative study of different means of assessing long-term energy expenditure in humans. , 1996, The American journal of physiology.
[51] J. Simoneau. Adaptation of human skeletal muscle to exercise-training. , 1995, International journal of obesity and related metabolic disorders : journal of the International Association for the Study of Obesity.
[52] W. Whelan,et al. A new look at the biogenesis of glycogen , 1995, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[53] R. Leibel,et al. Autonomic nervous system activity in weight gain and weight loss. , 1995, The American journal of physiology.
[54] L. Ploutz-Snyder,et al. Energy-rich phosphates in slow and fast human skeletal muscle. , 1995, The American journal of physiology.
[55] J. Simoneau,et al. Skeletal muscle utilization of free fatty acids in women with visceral obesity. , 1995, The Journal of clinical investigation.
[56] R. Leibel,et al. Changes in energy expenditure resulting from altered body weight. , 1995, The New England journal of medicine.
[57] J. Simoneau,et al. Skeletal muscle glycolytic and oxidative enzyme capacities are determinants of insulin sensitivity and muscle composition in obese women , 1995, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[58] R. Thériault,et al. Human skeletal muscle adaptation in response to chronic low-frequency electrical stimulation. , 1994, Journal of applied physiology.
[59] C. Bouchard,et al. Impact of exercise intensity on body fatness and skeletal muscle metabolism. , 1994, Metabolism: clinical and experimental.
[60] C. Gibbs,et al. Energetics of fast‐ and slow‐twitch muscles of the mouse. , 1993, The Journal of physiology.
[61] T. Wadden,et al. Treatment of Obesity by Moderate and Severe Caloric Restriction: Results of Clinical Research Trials , 1993, Annals of Internal Medicine.
[62] M. Kushmerick,et al. Separate measures of ATP utilization and recovery in human skeletal muscle. , 1993, The Journal of physiology.
[63] A Tremblay,et al. Overfeeding and energy expenditure in humans. , 1992, The American journal of clinical nutrition.
[64] C. Bouchard,et al. Human variation in skeletal muscle fiber-type proportion and enzyme activities. , 1989, The American journal of physiology.
[65] S. Suduikis. Exercise, Nutrition and Energy Metabolism , 1989 .
[66] J. Brunzell,et al. Weight loss leads to a marked decrease in nonresting energy expenditure in ambulatory human subjects. , 1988, Metabolism: clinical and experimental.
[67] M. Najjar,et al. Anthropometric reference data and prevalence of overweight, United States, 1976-80. , 1987, Vital and health statistics. Series 11, Data from the National Health Survey.
[68] C. Bouchard,et al. Heredity and overfeeding-induced changes in submaximal exercise VO2. , 1987, Journal of applied physiology.
[69] L. Leinwand,et al. Characterization of diverse forms of myosin heavy chain expressed in adult human skeletal muscle. , 1986, Nucleic acids research.
[70] Rall Ja,et al. Energetic aspects of skeletal muscle contraction: implications of fiber types. , 1985 .
[71] J A Rall,et al. Energetic aspects of skeletal muscle contraction: implications of fiber types. , 1985, Exercise and sport sciences reviews.
[72] B. Gutin,et al. Thermic effect of food during graded exercise in normal weight and obese men. , 1984, The American journal of clinical nutrition.
[73] V. Marks. Handbook of Radioimmunoassay , 1978 .
[74] G. Abraham. Handbook of radioimmunoassay , 1977 .
[75] P. Andersen,et al. Capillary density in skeletal muscle of man. , 1975, Acta physiologica Scandinavica.
[76] G. Brooks,et al. Muscular efficiency during steady-rate exercise: effects of speed and work rate. , 1975, Journal of applied physiology.
[77] C. W. Greene. THE AMERICAN PHYSIOLOGICAL SOCIETY. , 1922, Science.