Effects of a Very Low-Carbohydrate High-Fat Diet and High-Intensity Interval Training on Visceral Fat Deposition and Cardiorespiratory Fitness in Overfat Individuals: A Randomized Controlled Clinical Trial

. 2021 ; 8 () : 785694. [epub] 20211221

Status PubMed-not-MEDLINE Jazyk angličtina Země Švýcarsko Médium electronic-ecollection

Typ dokumentu časopisecké články

Perzistentní odkaz   https://www.medvik.cz/link/pmid34993222

Purpose: This randomized controlled parallel-group study examined the effects of a very low-carbohydrate high-fat (VLCHF) diet and high-intensity interval training (HIIT) program over 12 weeks on visceral adipose tissue (VAT) and cardiorespiratory fitness (CRF) level in overfat individuals. Methods: Ninety-one participants were randomly allocated to the HIIT (N = 22), VLCHF (N = 25), VLCHF+HIIT (N = 25), or control (N = 19) groups for 12 weeks. Body composition and CRF were analyzed before the experimental period and after 4, 8, and 12 weeks. Dual-energy X-ray absorptiometry (DXA) and graded exercise test (GXT) to volitional exhaustion were used for the body composition and CRF assessments, respectively. Results: There were significant between-group differences in the VAT mass and body composition outcome changes. VAT mass decreased after 12 weeks only in the VLCHF and VLCHF+HIIT groups (p < 0.001, median [95% CI]: VLCHF: -142.0 [-187.0; -109.5] g; VLCHF+HIIT: -104.0 [-135.0; -71.0] g). Similarly, changes in body mass, total body fat, trunk fat mass, waist and hip circumferences were distinctly decreased in the VLCHF and VLCHF+HIIT groups, when compared to HIIT and Control groups. Total lean mass significantly decreased in the VLCHF and VLCHF+HIIT groups (-2.1 [-3.0; -1.6] kg and -2.5 [-3.6; -1.8] kg, respectively) after 12 weeks. While the HIIT program significantly increased total time to exhaustion in the GXT, peak oxygen uptake was unchanged. Conclusions: A VLCHF diet, either in isolation or in combination with HIIT, was shown to induce a significant reduction in VAT mass and body composition variables. HIIT alone did not cause such effects on body composition, but improved exercise capacity. Our findings indicate that the VLCHF diet and exercise training provoked different and isolated effects on body composition and CRF. Clinical Trial Registration: https://clinicaltrials.gov/ct2/show/NCT03934476, identifier: NCT03934476.

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Maffetone PB, Laursen PB. Revisiting the global overfat pandemic. Front Public Heal. (2020) 8:1–5. 10.3389/fpubh.2020.00051 PubMed DOI PMC

Maffetone PB, Rivera-Dominguez I, Laursen PB. Overfat and underfat: new terms and definitions long overdue. Front Public Heal. (2017) 4:1–10. 10.3389/fpubh.2016.00279 PubMed DOI PMC

Bosy-Westphal A, Müller MJ. Diagnosis of obesity based on body composition-associated health risks—Time for a change in paradigm. Obes Rev. (2021) 22:1–7. 10.1111/obr.13190 PubMed DOI

Wu H, Ballantyne CM. Metabolic inflammation and insulin resistance in obesity. Circ Res. (2020) 126:1549–64. 10.1161/CIRCRESAHA.119.315896 PubMed DOI PMC

Blüher M. Metabolically healthy obesity. Endocr Rev. (2020) 41:405–20. 10.1210/endrev/bnaa004 PubMed DOI PMC

Mendoza MF, Kachur SM, Lavie CJ. Hypertension in obesity. Curr Opin Cardiol. (2020) 35:389–96. 10.1097/HCO.0000000000000749 PubMed DOI

Cordeiro A, Costa R, Andrade N, Silva C, Canabrava N, Pena MJ, et al. . Does adipose tissue inflammation drive the development of non-alcoholic fatty liver disease in obesity? Clin Res Hepatol Gastroenterol. (2020) 44:394–402. 10.1016/j.clinre.2019.10.001 PubMed DOI

Paoli A, Cenci L, Pompei P, Sahin N, Bianco A, Neri M, et al. . Effects of two months of very low carbohydrate ketogenic diet on body composition, muscle strength, muscle area, and blood parameters in competitive natural body builders. Nutrients. (2021) 13:374. 10.3390/nu13020374 PubMed DOI PMC

Lee HS, Lee J. Effects of combined exercise and low carbohydrate ketogenic diet interventions on waist circumference and triglycerides in overweight and obese individuals: a systematic review and meta-analysis. Int J Environ Res Public Health. (2021) 18:828. 10.3390/ijerph18020828 PubMed DOI PMC

Goss AM, Gower B, Soleymani T, Stewart M, Pendergrass M, Lockhart M, et al. . Effects of weight loss during a very low carbohydrate diet on specific adipose tissue depots and insulin sensitivity in older adults with obesity: a randomized clinical trial. Nutr Metab. (2020) 17:64. 10.1186/s12986-020-00481-9 PubMed DOI PMC

Ludwig DS, Dickinson SL, Henschel B, Ebbeling CB, Allison DB. Do lower-carbohydrate diets increase total energy expenditure? An updated and reanalyzed meta-analysis of 29 controlled-feeding studies. J Nutr. (2020) 151:482–90. 10.1093/jn/nxaa350 PubMed DOI PMC

Miller VJ, LaFountain RA, Barnhart E, Sapper TS, Short J, Arnold WD, et al. . A ketogenic diet combined with exercise alters mitochondrial function in human skeletal muscle while improving metabolic health. Am J Physiol Metab. (2020) 319:E995–1007. 10.1152/ajpendo.00305.2020 PubMed DOI

Luukkonen PK, Dufour S, Lyu K, Zhang XM, Hakkarainen A, Lehtimäki TE, et al. . Effect of a ketogenic diet on hepatic steatosis and hepatic mitochondrial metabolism in nonalcoholic fatty liver disease. Proc Natl Acad Sci U S A. (2020) 117:7347–54. 10.1073/pnas.1922344117 PubMed DOI PMC

Lennerz BS, Koutnik AP, Azova S, Wolfsdorf JI, Ludwig DS. Carbohydrate restriction for diabetes: rediscovering centuries-old wisdom. J Clin Invest. (2021) 131: 10.1172/JCI142246 PubMed DOI PMC

Yang H, Shan W, Zhu F, Wu J, Wang Q. Ketone bodies in neurological diseases: focus on neuroprotection and underlying mechanisms. Front Neurol. (2019) 10:585. 10.3389/fneur.2019.00585 PubMed DOI PMC

Mujica-Parodi LR, Amgalan A, Sultan SF, Antal B, Sun X, Skiena S, et al. . Diet modulates brain network stability, a biomarker for brain aging, in young adults. Proc Natl Acad Sci USA. (2020) 117:6170–7. 10.1073/pnas.1913042117 PubMed DOI PMC

Youm Y-H, Nguyen KY, Grant RW, Goldberg EL, Bodogai M, Kim D, et al. . The ketone metabolite β-hydroxybutyrate blocks NLRP3 inflammasome-mediated inflammatory disease. Nat Med. (2015) 21:263–9. 10.1038/nm.3804 PubMed DOI PMC

Møller N. Ketone Body, 3-hydroxybutyrate: minor metabolite - major medical manifestations. J Clin Endocrinol Metab. (2020) 29:2341–86. 10.1210/clinem/dgaa370 PubMed DOI

Riebe D. Guidelines for Exercise Testing and Prescription (ACSM). 10th ed. Philadelphia, PA: Wolters Kluwer Health | Lippincott Williams & Wilkins; (2018).

Gaesser GA, Angadi SS. Obesity treatment: weight loss versus increasing fitness and physical activity for reducing health risks. iScience. (2021) 24:102995. 10.1016/j.isci.2021.102995 PubMed DOI PMC

Laursen P, Buchheit M. Science and application of high-intensity interval training: solutions to the programming puzzle. Human Kinetics. (2019). 10.5040/9781492595830 PubMed DOI

Reljic D, Wittmann F, Fischer JE. Effects of low-volume high-intensity interval training in a community setting: a pilot study. Eur J Appl Physiol. (2018) 118:1–15. 10.1007/s00421-018-3845-8 PubMed DOI

Jelleyman C, Yates T, O'Donovan G, Gray LJ, King JA, Khunti K, et al. . The effects of high-intensity interval training on glucose regulation and insulin resistance: a meta-analysis. Obes Rev. (2015) 16:942–61. 10.1111/obr.12317 PubMed DOI

Gillen JB, Martin BJ, MacInnis MJ, Skelly LE, Tarnopolsky MA, Gibala MJ. Twelve weeks of sprint interval training improves indices of cardiometabolic health similar to traditional endurance training despite a five-fold lower exercise volume and time commitment. PLoS One. (2016) 11:e0154075. 10.1371/journal.pone.0154075 PubMed DOI PMC

Sawyer BJ, Tucker WJ, Bhammar DM, Ryder JR, Sweazea KL, Gaesser GA. Effects of high-intensity interval training and moderate-intensity continuous training on endothelial function and cardiometabolic risk markers in obese adults. J Appl Physiol. (2016) 121:279–88. 10.1152/japplphysiol.00024.2016 PubMed DOI PMC

Ramos JS, Dalleck LC, Tjonna AE, Beetham KS, Coombes JS. The impact of high-intensity interval training versus moderate-intensity continuous training on vascular function: a systematic review and meta-analysis. Sport Med. (2015) 45:679–92. 10.1007/s40279-015-0321-z PubMed DOI

Grace F, Herbert P, Elliott AD, Richards J, Beaumont A, Sculthorpe NF. High intensity interval training (HIIT) improves resting blood pressure, metabolic (MET) capacity and heart rate reserve without compromising cardiac function in sedentary aging men. Exp Gerontol. (2018) 109:75–81. 10.1016/j.exger.2017.05.010 PubMed DOI

Bogdanis GC, Stavrinou P, Fatouros IG, Philippou A, Chatzinikolaou A, Draganidis D, et al. . Short-term high-intensity interval exercise training attenuates oxidative stress responses and improves antioxidant status in healthy humans. Food Chem Toxicol. (2013) 61:171–7. 10.1016/j.fct.2013.05.046 PubMed DOI

Cassidy S, Thoma C, Houghton D, Trenell MI. High-intensity interval training: a review of its impact on glucose control and cardiometabolic health. Diabetologia. (2017) 60:7–23. 10.1007/s00125-016-4106-1 PubMed DOI PMC

Su L, Fu J, Sun S, Zhao G, Cheng W, Dou C, et al. . Effects of HIIT and MICT on cardiovascular risk factors in adults with overweight and/or obesity: a meta-analysis. PLoS ONE. (2019) 14:e0210644. 10.1371/journal.pone.0210644 PubMed DOI PMC

Oikonomou EK, Antoniades C. The role of adipose tissue in cardiovascular health and disease. Nat Rev Cardiol. (2019) 16:83–99. 10.1038/s41569-018-0097-6 PubMed DOI

Piché ME, Poirier P, Lemieux I, Després JP. Overview of epidemiology and contribution of obesity and body fat distribution to cardiovascular disease: an update. Prog Cardiovasc Dis. (2018) 61:103–13. 10.1016/j.pcad.2018.06.004 PubMed DOI

Feinman RD, Pogozelski WK, Astrup A, Bernstein RK, Fine EJ, Westman EC, et al. . Dietary carbohydrate restriction as the first approach in diabetes management: critical review and evidence base. Nutrition. (2015) 31:1–13. 10.1016/j.nut.2014.06.011 PubMed DOI

Taylor JL, Holland DJ, Coombes JS, Keating SE. Accuracy of dual-energy x-ray absorptiometry for assessing longitudinal change in visceral adipose tissue in patients with coronary artery disease. Int J Obes. (2021) 45:1740–50. 10.1038/s41366-021-00840-3 PubMed DOI

Ehrman JK, Gordon PM, Visich PS, Keteyian Steven J. Clinical Exercise Physiology. Champaign, IL: Human Kinetics; (2019).

Binder RK, Wonisch M, Corra U, Cohen-Solal A, Vanhees L, Saner H, et al. . Methodological approach to the first and second lactate threshold in incremental cardiopulmonary exercise testing. Eur J Prev Cardiol. (2008) 15:726–34. 10.1097/HJR.0b013e328304fed4 PubMed DOI

Macfarlane DJ. Automated metabolic gas analysis systems. Sport Med. (2001) 31:841–61. 10.2165/00007256-200131120-00002 PubMed DOI

Tomczak M, Tomczak E. The need to report effect size estimates revisited. An overview of some recommended measures of effect size. Trends Sport Sci. (2014) 1:19–25.

Faul F, Erdfelder E, Lang A-G, Buchner A. G*Power 3: a flexible statistical power analysis program for the social, behavioral, and biomedical sciences. Behav Res Methods. (2007) 39:175–91. 10.3758/BF03193146 PubMed DOI

Cohen J. Statistical Power Analysis for the Behavioural Sciences. 2nd ed. Hillsdale, NJ: Erlbau; (1988).

R Core Team,. The R Project for Statistical Computing. (2020). Available online at: https://www.r-project.org/

Dostal T, Plews DJ, Hofmann P, Laursen PB, Cipryan L. Effects of a 12-week very-low carbohydrate high-fat diet on maximal aerobic capacity, high-intensity intermittent exercise, and cardiac autonomic regulation: non-randomized parallel-group study. Front Physiol. (2019) 10:912. 10.3389/fphys.2019.00912 PubMed DOI PMC

Cipryan L, Plews DJ, Ferretti A, Maffetone PB, Laursen PB. Effects of a 4-week very low-carbohydrate diet on high-intensity interval training responses. J Sports Sci Med. (2018) 17:259–268. PubMed PMC

Terink R, Witkamp RF, Hopman MTE, Siebelink E, Savelkoul HFJ, Mensink M, et al. . 2 week cross-over intervention with a low carbohydrate, high fat diet compared to a high carbohydrate diet attenuates exercise-induced cortisol response, but not the reduction of exercise capacity, in recreational athletes. Nutrients. (2021) 13:1–15. 10.3390/nu13010157 PubMed DOI PMC

Sjödin A, Hellström F, Sehlstedt E, Svensson M, Burén J. Effects of a ketogenic diet on muscle fatigue in healthy, young, normal-weight women: a randomized controlled feeding trial. Nutrients. (2020) 12:955. 10.3390/nu12040955 PubMed DOI PMC

Volek JS, Freidenreich DJ, Saenz C, Kunces LJ, Creighton BC, Bartley JM, et al. . Metabolic characteristics of keto-adapted ultra-endurance runners. Metabolism. (2016) 65:100–10. 10.1016/j.metabol.2015.10.028 PubMed DOI

Miller VJ, Villamena FA, Volek JS. Nutritional ketosis and mitohormesis: potential implications for mitochondrial function and human health. J Nutr Metab. (2018) 2018:5157645. 10.1155/2018/5157645 PubMed DOI PMC

Veldhorst MA, Westerterp-Plantenga MS, Westerterp KR. Gluconeogenesis and energy expenditure after a high-protein, carbohydrate-free diet. Am J Clin Nutr. (2009) 90:519–26. 10.3945/ajcn.2009.27834 PubMed DOI

Garr Barry V, Stewart M, Soleymani T, Desmond RA, Goss AM, Gower BA. Greater loss of central adiposity from low-carbohydrate versus low-fat diet in middle-aged adults with overweight and obesity. Nutrients. (2021) 13:475. 10.3390/nu13020475 PubMed DOI PMC

Perissiou M, Borkoles E, Kobayashi K, Polman R. The effect of an 8 week prescribed exercise and low-carbohydrate diet on cardiorespiratory fitness, body composition and cardiometabolic risk factors in obese individuals: a randomised controlled trial. Nutrients. (2020) 12:1–14. 10.3390/nu12020482 PubMed DOI PMC

Kelly T, Unwin D, Finucane F. Low-carbohydrate diets in the management of obesity and type 2 diabetes: a review from clinicians using the approach in practice. Int J Environ Res Public Heal. (2020) 17:2557. 10.3390/ijerph17072557 PubMed DOI PMC

Greene DA, Varley BJ, Hartwig TB, Chapman P, Rigney M. A Low-carbohydrate ketogenic diet reduces body weight without compromising performance in powerlifting and olympic weightlifting athletes. J Strength Cond Res. (2018) 32:1. 10.1519/JSC.0000000000002904 PubMed DOI

St-Onge M-P, Wang Z, Horlick M, Wang J, Heymsfield SB. Dual-energy X-ray absorptiometry lean soft tissue hydration: independent contributions of intra- and extracellular water. Am J Physiol Metab. (2004) 287:E842–7. 10.1152/ajpendo.00361.2003 PubMed DOI

Hu J, Wang Z, Lei B, Li J, Wang R. Effects of a low-carbohydrate high-fat diet combined with high-intensity interval training on body composition and maximal oxygen uptake: a systematic review and meta-analysis. Int J Environ Res Public Health. (2021) 18:10740. 10.3390/ijerph182010740 PubMed DOI PMC

Sartor F, de Morree HM, Matschke V, Marcora SM, Milousis A, Thom JM, et al. . High-intensity exercise and carbohydrate-reduced energy-restricted diet in obese individuals. Eur J Appl Physiol. (2010) 110:893–903. 10.1007/s00421-010-1571-y PubMed DOI

McSwiney FT, Wardrop B, Hyde PN, Lafountain RA, Volek JS, Doyle L. Keto-adaptation enhances exercise performance and body composition responses to training in endurance athletes. Metabolism. (2018) 81:25–34. 10.1016/j.metabol.2017.10.010 PubMed DOI

Burke LM, Ross ML, Garvican-Lewis LA, Welvaert M, Heikura IA, Forbes SG, et al. . Low carbohydrate, high fat diet impairs exercise economy and negates the performance benefit from intensified training in elite race walkers. J Physiol. (2017) 595:2785–807. 10.1113/JP273230 PubMed DOI PMC

Phinney SD, Bistrian BR, Evans WJ, Gervino E, Blackburn GL. The human metabolic response to chronic ketosis without caloric restriction: preservation of submaximal exercise capability with reduced carbohydrate oxidation. Metabolism. (1983) 32:769–76. 10.1016/0026-0495(83)90106-3 PubMed DOI

Shaw DM, Merien F, Braakhuis A, Maunder ED, Dulson DK. Effect of a ketogenic diet on submaximal exercise capacity and efficiency in runners. Med Sci Sports Exerc. (2019) 51:2135–46. 10.1249/MSS.0000000000002008 PubMed DOI

Psychogios N, Hau DD, Peng J, Guo AC, Mandal R, Bouatra S, et al. . The human serum metabolome. PLoS ONE. (2011) 6:e16957. 10.1371/journal.pone.0016957 PubMed DOI PMC

Jensen MD, Miles JM, Gerich JE, Cryer PE, Haymond MW. Preservation of insulin effects on glucose production and proteolysis during fasting. Am J Physiol Metab. (1988) 254:E700–7. 10.1152/ajpendo.1988.254.6.E700 PubMed DOI

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