Literature DB >> 21778216

The fall in leptin concentration is a major determinant of the metabolic adaptation induced by caloric restriction independently of the changes in leptin circadian rhythms.

Virgile Lecoultre1, Eric Ravussin, Leanne M Redman.   

Abstract

CONTEXT: Leptin is involved in the hormonal regulation of the reproductive, somatotropic, thyroid, and autonomic axes and ultimately in the regulation of energy balance. In parallel to the metabolic adaptation observed in response to caloric restriction (CR), plasma leptin concentrations are substantially decreased, suggesting a role for this hormone in the drop in energy expenditure beyond that predicted by the changes in body composition (metabolic adaptation). AIM: The aim of the study was to explore the changes in 24-h leptin circadian rhythm in response to CR and to investigate the relationship between these changes and metabolic adaptation.
DESIGN: In a randomized, controlled trial (Comprehensive Assessment of Long-Term Effects of Reducing Intake of Energy), 48 subjects were assigned to a control group or one of three CR groups for 6 months. Leptin concentration was assessed every 30 min for 24 h, and leptin circadian variations were fitted by Cosinor analysis. Sedentary energy expenditure and urinary catecholamine excretion were measured for 24 h in a metabolic chamber.
RESULTS: Six months of CR decreased body weight by -11.4 ± 0.6% (mean ± sem; P < 0.001). Mean 24-h circulating leptin concentration decreased by -44 ± 3% (P < 0.001), whereas leptin diurnal amplitude slightly increased over the 6 months of CR. CR caused a metabolic adaptation of -126 ± 25 kcal/d (P <0.001) and a significant decrease in urinary norepinephrine (-13 ± 3%) and T(3) concentrations (10 ± 2%). The metabolic adaptation was significantly and independently related to the changes in 24-h leptin (r(2) = 0 .22, P < 0.01) but not to the changes in leptin amplitude.
CONCLUSION: Our results confirm an important role for leptin as an independent determinant of the metabolic adaptation in response to CR.

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Year:  2011        PMID: 21778216      PMCID: PMC3167663          DOI: 10.1210/jc.2011-1286

Source DB:  PubMed          Journal:  J Clin Endocrinol Metab        ISSN: 0021-972X            Impact factor:   5.958


  26 in total

1.  Low dose leptin administration reverses effects of sustained weight-reduction on energy expenditure and circulating concentrations of thyroid hormones.

Authors:  Michael Rosenbaum; Ellen M Murphy; Steven B Heymsfield; Dwight E Matthews; Rudolph L Leibel
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4.  Roles of leptin and ghrelin in the loss of body weight caused by a low fat, high carbohydrate diet.

Authors:  David S Weigle; David E Cummings; Patricia D Newby; Patricia A Breen; R Scott Frayo; Colleen C Matthys; Holly S Callahan; Jonathan Q Purnell
Journal:  J Clin Endocrinol Metab       Date:  2003-04       Impact factor: 5.958

5.  Role of leptin in the neuroendocrine response to fasting.

Authors:  R S Ahima; D Prabakaran; C Mantzoros; D Qu; B Lowell; E Maratos-Flier; J S Flier
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6.  Incomplete modified fast in obese early pubertal girls leads to an increase in 24-hour growth hormone concentration and a lessening of the circadian pattern in leptin.

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7.  Role of baseline leptin and ghrelin levels on body weight and fat mass changes after an energy-restricted diet intervention in obese women: effects on energy metabolism.

Authors:  Idoia Labayen; Francisco B Ortega; Jonatan R Ruiz; Arrate Lasa; Edurne Simón; Javier Margareto
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8.  Weight regain after a diet-induced loss is predicted by higher baseline leptin and lower ghrelin plasma levels.

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Authors:  A Tremblay; C Pelletier; E Doucet; P Imbeault
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10.  Changes in energy expenditure resulting from altered body weight.

Authors:  R L Leibel; M Rosenbaum; J Hirsch
Journal:  N Engl J Med       Date:  1995-03-09       Impact factor: 91.245

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  30 in total

Review 1.  Leptin applications in 2015: what have we learned about leptin and obesity?

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Authors:  Kevin D Hall; Juen Guo
Journal:  Gastroenterology       Date:  2017-02-11       Impact factor: 22.682

3.  Effect of physical activity on weight loss, energy expenditure, and energy intake during diet induced weight loss.

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4.  Energy Metabolic Adaptation and Cardiometabolic Improvements One Year After Gastric Bypass, Sleeve Gastrectomy, and Gastric Band.

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5.  Metabolic Slowing and Reduced Oxidative Damage with Sustained Caloric Restriction Support the Rate of Living and Oxidative Damage Theories of Aging.

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Journal:  Cell Metab       Date:  2018-03-22       Impact factor: 27.287

Review 6.  Novel strategy for the use of leptin for obesity therapy.

Authors:  Charmaine S Tam; Virgile Lecoultre; Eric Ravussin
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7.  The adaptive metabolic response to exercise-induced weight loss influences both energy expenditure and energy intake.

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9.  No effect of caloric restriction on salivary cortisol levels in overweight men and women.

Authors:  Charmaine S Tam; Elizabeth A Frost; Wenting Xie; Jennifer Rood; Eric Ravussin; Leanne M Redman
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10.  Effects of caloric restriction on human physiological, psychological, and behavioral outcomes: highlights from CALERIE phase 2.

Authors:  James L Dorling; Stephan van Vliet; Kim M Huffman; William E Kraus; Manjushri Bhapkar; Carl F Pieper; Tiffany Stewart; Sai Krupa Das; Susan B Racette; Susan B Roberts; Eric Ravussin; Leanne M Redman; Corby K Martin
Journal:  Nutr Rev       Date:  2021-01-01       Impact factor: 7.110

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