The BREAK study protocol: Effects of intermittent energy restriction on adaptive thermogenesis during weight loss and its maintenance
暂无分享,去创建一个
[1] M. Carta,et al. Weight Maintenance after Dietary Weight Loss: Systematic Review and Meta-Analysis on the Effectiveness of Behavioural Intensive Intervention , 2022, Nutrients.
[2] M. Heo,et al. Adaptive thermogenesis after moderate weight loss: magnitude and methodological issues , 2021, European Journal of Nutrition.
[3] Justin T. Peddle,et al. Nonsurgical weight loss interventions: A systematic review of systematic reviews and meta‐analyses , 2021, Obesity reviews : an official journal of the International Association for the Study of Obesity.
[4] R. Simó,et al. Evaluation of Resting Energy Expenditure in Subjects with Severe Obesity and Its Evolution After Bariatric Surgery , 2021, Obesity Surgery.
[5] K. Charlot,et al. An augmented food strategy leads to complete energy compensation during a 15‐day military training expedition in the cold , 2021, Physiological reports.
[6] I. Korhonen,et al. Frequency of Self-Weighing and Weight Change: Cohort Study With 10,000 Smart Scale Users , 2021, Journal of medical Internet research.
[7] Mark Hopkins,et al. Does adaptive thermogenesis occur after weight loss in adults? A systematic review , 2021, British Journal of Nutrition.
[8] A. Dulloo. Physiology of weight regain: Lessons from the classic Minnesota Starvation Experiment on human body composition regulation , 2021, Obesity reviews : an official journal of the International Association for the Study of Obesity.
[9] G. Hunter,et al. Metabolic adaptation is associated with less weight and fat mass loss in response to low-energy diets , 2021, Nutrition & Metabolism.
[10] J. Nasrollahzadeh,et al. Effect of intermittent versus continuous calorie restriction on body weight and cardiometabolic risk markers in subjects with overweight or obesity and mild-to-moderate hypertriglyceridemia: a randomized trial , 2020, Lipids in Health and Disease.
[11] G. Hunter,et al. Metabolic adaptation is not a major barrier to weight-loss maintenance , 2020, The American journal of clinical nutrition.
[12] B. Campbell,et al. Intermittent Energy Restriction Attenuates the Loss of Fat Free Mass in Resistance Trained Individuals. A Randomized Controlled Trial , 2020, Journal of functional morphology and kinesiology.
[13] P. Teixeira,et al. Successful weight loss maintenance: A systematic review of weight control registries , 2020, Obesity reviews : an official journal of the International Association for the Study of Obesity.
[14] S. Toselli,et al. Comparison of the Effect of Different Resistance Training Frequencies on Phase Angle and Handgrip Strength in Obese Women: A Randomized Controlled Trial , 2020, International journal of environmental research and public health.
[15] L. Sardinha,et al. Champ4life Study Protocol: A One-Year Randomized Controlled Trial of a Lifestyle Intervention for Inactive Former Elite Athletes with Overweight/Obesity , 2020, Nutrients.
[16] M. Rollo,et al. Validity of Dietary Assessment Methods When Compared to the Method of Doubly Labeled Water: A Systematic Review in Adults , 2019, Front. Endocrinol..
[17] G. Guerra‐Júnior,et al. Methods for data analysis of resting energy expenditure measured using indirect calorimetry. , 2019, Nutrition.
[18] P. Fournier,et al. Intermittent Dieting: Theoretical Considerations for the Athlete , 2019, Sports.
[19] N. Byrne,et al. Rationale for novel intermittent dieting strategies to attenuate adaptive responses to energy restriction , 2018, Obesity reviews : an official journal of the International Association for the Study of Obesity.
[20] W. Kroeze,et al. Determinants of weight loss maintenance: a systematic review , 2018, Obesity reviews : an official journal of the International Association for the Study of Obesity.
[21] P. Fournier,et al. Continuous versus intermittent moderate energy restriction for increased fat mass loss and fat free mass retention in adult athletes: protocol for a randomised controlled trial—the ICECAP trial (Intermittent versus Continuous Energy restriction Compared in an Athlete Population) , 2018, BMJ Open Sport & Exercise Medicine.
[22] P. Teixeira,et al. What is the effect of diet and/or exercise interventions on behavioural compensation in non-exercise physical activity and related energy expenditure of free-living adults? A systematic review. , 2018, The British journal of nutrition.
[23] B. Kulseng,et al. Timeline of changes in adaptive physiological responses, at the level of energy expenditure, with progressive weight loss , 2018, British Journal of Nutrition.
[24] F. Casanueva,et al. Resting metabolic rate of obese patients under very low calorie ketogenic diet , 2018, Nutrition & Metabolism.
[25] N. Byrne,et al. Intermittent energy restriction improves weight loss efficiency in obese men: the MATADOR study , 2017, International Journal of Obesity.
[26] D. Ryan,et al. Weight Loss and Improvement in Comorbidity: Differences at 5%, 10%, 15%, and Over , 2017, Current Obesity Reports.
[27] J. Rehfeld,et al. Compensatory mechanisms activated with intermittent energy restriction: A randomized control trial. , 2017, Clinical nutrition.
[28] Corby K. Martin,et al. Persistence of weight loss and acquired behaviors 2 y after stopping a 2-y calorie restriction intervention. , 2017, The American journal of clinical nutrition.
[29] Eun-Kyung Kim,et al. Measurement Methods for Physical Activity and Energy Expenditure: a Review , 2017, Clinical nutrition research.
[30] A. Bosy-Westphal,et al. Changes in Energy Expenditure with Weight Gain and Weight Loss in Humans , 2016, Current Obesity Reports.
[31] Kong Y. Chen,et al. Persistent metabolic adaptation 6 years after “The Biggest Loser” competition , 2016, Obesity.
[32] R. Ross. Is setting a criterion for ‘clinically significant weight loss’ necessary? , 2016, Obesity.
[33] R. Dalle Grave,et al. Long-term weight loss maintenance for obesity: a multidisciplinary approach , 2016, Diabetes, metabolic syndrome and obesity : targets and therapy.
[34] J. Bryan,et al. Definition of the Mediterranean Diet: A Literature Review , 2015, Nutrients.
[35] D. Frankenfield,et al. Evidence analysis library review of best practices for performing indirect calorimetry in healthy and non-critically ill individuals. , 2015, Journal of the Academy of Nutrition and Dietetics.
[36] H. Rasmussen,et al. Effects of carbohydrate quantity and glycemic index on resting metabolic rate and body composition during weight loss , 2015, Obesity.
[37] F. Greenway. Physiological adaptations to weight loss and factors favouring weight regain , 2015, International Journal of Obesity.
[38] Dori M. Steinberg,et al. Weighing every day matters: daily weighing improves weight loss and adoption of weight control behaviors. , 2015, Journal of the Academy of Nutrition and Dietetics.
[39] J. Montani,et al. Pathways from dieting to weight regain, to obesity and to the metabolic syndrome: an overview , 2015, Obesity reviews : an official journal of the International Association for the Study of Obesity.
[40] F. Hu,et al. 2013 AHA/ACC/TOS guideline for the management of overweight and obesity in adults: a report of the American College of Cardiology/American Heart Association Task Force on Practice Guidelines and The Obesity Society. , 2014, Journal of the American College of Cardiology.
[41] P. Clifton,et al. Effects of intermittent compared to continuous energy restriction on short‐term weight loss and long‐term weight loss maintenance , 2014, Clinical obesity.
[42] Nuala M. Byrne,et al. Assessment of Physical Activity and Energy Expenditure: An Overview of Objective Measures , 2014, Front. Nutr..
[43] Mark Hopkins,et al. The adaptive metabolic response to exercise-induced weight loss influences both energy expenditure and energy intake , 2014, European Journal of Clinical Nutrition.
[44] C. Glüer,et al. Impact of body composition during weight change on resting energy expenditure and homeostasis model assessment index in overweight nonsmoking adults. , 2014, The American journal of clinical nutrition.
[45] S. H. Davoodi,et al. Calorie Shifting Diet Versus Calorie Restriction Diet: A Comparative Clinical Trial Study , 2014, International journal of preventive medicine.
[46] D. Głąbska,et al. Indirect calorimetry in the assessment of the energy requirement in overweight and obese women , 2013 .
[47] S B Heymsfield,et al. Can a weight loss of one pound a week be achieved with a 3500-kcal deficit? Commentary on a commonly accepted rule , 2013, International Journal of Obesity.
[48] A. Bosy-Westphal,et al. Adaptive thermogenesis with weight loss in humans , 2013, Obesity.
[49] N. Byrne,et al. Biology or Behavior: Which Is the Strongest Contributor to Weight Gain? , 2013, Current Obesity Reports.
[50] Dartagnan Pinto Guedes,et al. Clinical procedures used for analysis of the body composition , 2013 .
[51] J. Montani,et al. Adaptive thermogenesis in human body weight regulation: more of a concept than a measurable entity? , 2012, Obesity reviews : an official journal of the International Association for the Study of Obesity.
[52] A. Tremblay,et al. Short- and long-term effects of continuous versus intermittent restrictive diet approaches on body composition and the metabolic profile in overweight and obese postmenopausal women: a pilot study , 2012, Menopause.
[53] H. Wyatt,et al. Energy balance and obesity. , 2012, Circulation.
[54] C. Champagne,et al. Effect of diet composition and weight loss on resting energy expenditure in the POUNDS LOST study , 2012, Obesity.
[55] Kevin D Hall,et al. Energy balance and its components: implications for body weight regulation. , 2012, The American journal of clinical nutrition.
[56] W. Kraus,et al. Approaches for quantifying energy intake and %calorie restriction during calorie restriction interventions in humans: the multicenter CALERIE study. , 2012, American journal of physiology. Endocrinology and metabolism.
[57] Duncan J Macfarlane,et al. Validity of the international physical activity questionnaire short form (IPAQ-SF): A systematic review , 2011, The international journal of behavioral nutrition and physical activity.
[58] Dinesh John,et al. Validation and comparison of ActiGraph activity monitors. , 2011, Journal of science and medicine in sport.
[59] Corby K. Martin,et al. Development of adherence metrics for caloric restriction interventions , 2011, Clinical trials.
[60] Scott E Crouter,et al. Refined two-regression model for the ActiGraph accelerometer. , 2010, Medicine and science in sports and exercise.
[61] J. Unick,et al. Validation of Cosmed’s FitMate™ in Measuring Oxygen Consumption and Estimating Resting Metabolic Rate , 2006, Research in sports medicine.
[62] Kelly R Evenson,et al. Accelerometer use in physical activity: best practices and research recommendations. , 2005, Medicine and science in sports and exercise.
[63] R. Wing,et al. Successful weight loss maintenance. , 2003, Annual review of nutrition.
[64] G. Hunter,et al. Influence of distribution of lean body mass on resting metabolic rate after weight loss and weight regain: comparison of responses in white and black women. , 2003, The American journal of clinical nutrition.
[65] R. Wing,et al. Prescribed "breaks" as a means to disrupt weight control efforts. , 2003, Obesity research.
[66] S. Heymsfield,et al. Are dual-energy X-ray absorptiometry regional estimates associated with visceral adipose tissue mass? , 2002, International Journal of Obesity.
[67] C. Bouchard,et al. Evidence for the existence of adaptive thermogenesis during weight loss , 2001, British Journal of Nutrition.
[68] E. Ravussin,et al. A comparative study of different means of assessing long-term energy expenditure in humans. , 1996, The American journal of physiology.
[69] World Medical Association Declaration of Helsinki: ethical principles for medical research involving human subjects. , 2013, JAMA.
[70] H. Wyatt,et al. The Importance of Energy Balance. , 2013, European endocrinology.
[71] L. Mâsse,et al. Physical activity in the United States measured by accelerometer. , 2008, Medicine and science in sports and exercise.