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Metabolic and physiologic improvements from consuming a paleolithic, hunter-gatherer type diet

A Corrigendum to this article was published on 02 December 2015

Abstract

Background:

The contemporary American diet figures centrally in the pathogenesis of numerous chronic diseases—‘diseases of civilization’. We investigated in humans whether a diet similar to that consumed by our preagricultural hunter-gatherer ancestors (that is, a paleolithic type diet) confers health benefits.

Methods:

We performed an outpatient, metabolically controlled study, in nine nonobese sedentary healthy volunteers, ensuring no weight loss by daily weight. We compared the findings when the participants consumed their usual diet with those when they consumed a paleolithic type diet. The participants consumed their usual diet for 3 days, three ramp-up diets of increasing potassium and fiber for 7 days, then a paleolithic type diet comprising lean meat, fruits, vegetables and nuts, and excluding nonpaleolithic type foods, such as cereal grains, dairy or legumes, for 10 days. Outcomes included arterial blood pressure (BP); 24-h urine sodium and potassium excretion; plasma glucose and insulin areas under the curve (AUC) during a 2 h oral glucose tolerance test (OGTT); insulin sensitivity; plasma lipid concentrations; and brachial artery reactivity in response to ischemia.

Results:

Compared with the baseline (usual) diet, we observed (a) significant reductions in BP associated with improved arterial distensibility (−3.1±2.9, P=0.01 and +0.19±0.23, P=0.05);(b) significant reduction in plasma insulin vs time AUC, during the OGTT (P=0.006); and (c) large significant reductions in total cholesterol, low-density lipoproteins (LDL) and triglycerides (−0.8±0.6 (P=0.007), −0.7±0.5 (P=0.003) and −0.3±0.3 (P=0.01) mmol/l respectively). In all these measured variables, either eight or all nine participants had identical directional responses when switched to paleolithic type diet, that is, near consistently improved status of circulatory, carbohydrate and lipid metabolism/physiology.

Conclusions:

Even short-term consumption of a paleolithic type diet improves BP and glucose tolerance, decreases insulin secretion, increases insulin sensitivity and improves lipid profiles without weight loss in healthy sedentary humans.

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References

  • Appel LJ, Sacks FM, Carey VJ, Obarzanek E, Swain JF, Miller III ER et al. (2005). Effects of protein, monounsaturated fat, and carbohydrate intake on blood pressure and serum lipids: results of the OmniHeart randomized trial. J Am Med Assoc 294, 2455–2464.

    Article  CAS  Google Scholar 

  • Brandt Niel . Evolutionary and Geological Timelines. http://www.talkorigins.org/origins/geo_timeline.html. 2007.

  • Bucher HC, Cook RJ, Guyatt GH, Lang JD, Cook DJ, Hatala R et al. (1996). Effects of dietary calcium supplementation on blood pressure. A meta-analysis of randomized controlled trials. J Am Med Assoc 275, 1016–1022.

    Article  CAS  Google Scholar 

  • Cohen M (1989). Health and the Rise of Civilization. Yale University Press: New Haven, pp 131–141.

    Google Scholar 

  • Cordain L (1999). Cereal Grains: Humanity's Double-Edged Sword. In: Simopoulos AP (ed). Evolutionary Aspects of Nutrition and Health: Diet, Exercise, Genetics and Chronic Disease. S Karger: Switzerland, pp 19–73.

    Chapter  Google Scholar 

  • Cordain L, Eaton SB, Sebastian A, Mann N, Lindeberg S, Watkins BA et al. (2005). Origins and evolution of the Western diet: health implications for the 21st century. Am J Clin Nutr 81, 341–354.

    Article  CAS  Google Scholar 

  • Davidson MH, Toth PP (2004). Comparative effects of lipid-lowering therapies. Prog Cardiovasc Dis 47, 73–104.

    Article  CAS  Google Scholar 

  • Eaton SB, Cordain L (1997). Evolutionary aspects of diet: old genes, new fuels. Nutritional changes since agriculture. World Rev Nutr Diet 81, 26–37.

    CAS  PubMed  Google Scholar 

  • Eaton SB, Cordain L, Lindeberg S (2002). Evolutionary health promotion: a consideration of common counterarguments. Prev Med 34, 119–123.

    Article  Google Scholar 

  • Eaton SB, Eaton III SB (2000). Paleolithic vs modern diets—selected pathophysiological implications. Eur J Nutr 39, 67–70.

    Article  CAS  Google Scholar 

  • Eaton SB, Konner M (1985). Paleolithic nutrition. A consideration of its nature and current implications. N Engl J Med 312, 283–289.

    Article  CAS  Google Scholar 

  • Eaton SB, Konner M, Shostak M (1988). Stone agers in the fast lane; chronic degenerative diseases in evolutionary perspective. Am J Med 84, 739–749.

    Article  CAS  Google Scholar 

  • Jansson B (1990). Dietary, total body, and intracellular potassium-to-sodium ratios and their influence on cancer. Cancer Detect Prev 14, 563–565.

    CAS  PubMed  Google Scholar 

  • Lindeberg S, Cordain L, Eaton SB (2003a). The biological and clinical potential of a Palaeolithic diet: review. J Nutr Environ Med 13, 149–160.

    Article  Google Scholar 

  • Lindeberg S, Cordain L, Eaton BS (2003b). Biological and clinical potential of a palaeolithic diet. J Nutr Environ Med 13, 149–160.

    Article  Google Scholar 

  • Lindeberg S, Jonsson T, Granfeldt Y, Borgstrand E, Soffman J, Sjostrom K et al. (2007). A Palaeolithic diet improves glucose tolerance more than a Mediterranean-like diet in individuals with ischaemic heart disease. Diabetologia 50, 1795–1807.

    Article  CAS  Google Scholar 

  • Mann NJ (2004). Paleolithic nutrition: what can we learn from the past? Asia Pac J Clin Nutr 13, S17.

    Google Scholar 

  • McDougall I, Brown FH, Fleagle JG (2005). Stratigraphic placement and age of modern humans from Kibish, Ethiopia. Nature 433, 733–736.

    Article  CAS  Google Scholar 

  • Neel JV (1999). When Some Fine Old Genes Meet a ‘New’ Environment. In: AP Simopoulos (ed). Evolutionary Aspects of Nutrition and Health: Diet, Exercise, Genetics and Chronic Disease. S Karger: Switzerland, pp 1–15.

    Google Scholar 

  • O’Keefe Jr JH, Cordain L (2004). Cardiovascular disease resulting from a diet and lifestyle at odds with our Paleolithic genome: how to become a 21st-century hunter-gatherer. Mayo Clin Proc 79, 101–108.

    Article  Google Scholar 

  • Osterdahl M, Kocturk T, Koochek A, Wandell PE (2007). Effects of a short-term intervention with a paleolithic diet in healthy volunteers. Eur J Clin Nutr 62, 682–685.

    Article  Google Scholar 

  • Pryer J, Cappuccio FP, Elliott P (1995). Dietary calcium and blood pressure: a review of the observational studies. J Hum Hypertens 9, 597–604.

    CAS  PubMed  Google Scholar 

  • Sacks FM, Svetkey LP, Vollmer WM, Appel LJ, Bray GA, Harsha D et al. (2001). Effects on blood pressure of reduced dietary sodium and the Dietary Approaches to Stop Hypertension (DASH) diet. DASH-Sodium Collaborative Research Group. N Engl J Med 344, 3–10.

    Article  CAS  Google Scholar 

  • Sebastian A, Frassetto LA, Sellmeyer DE, Merriam RL, Morris Jr RC (2002). Estimation of the net acid load of the diet of ancestral preagricultural Homo sapiens and their hominid ancestors. Am J Clin Nutr 76, 1308–1316.

    Article  CAS  Google Scholar 

  • Sebastian A, Frassetto LA, Sellmeyer DE, Morris Jr RC (2006). The evolution-informed optimal dietary potassium intake of human beings greatly exceeds current and recommended intakes. Semin Nephrol 26, 447–453.

    Article  CAS  Google Scholar 

  • Simopoulos AP (1999). The Center for Genetics NaH. In: AP Simopoulos (ed). Evolutionary Aspects of Nutrition and Health: Diet, Exercise, Genetics and Chronic Disease. Switzerland: S Karger, pp 1–99.

    Chapter  Google Scholar 

  • Steinfeld H, Gerber P, Wassenaar T, Castel V, Rosales M, de Haan C (2006). Livestock's Long Shadow: Environmental Issues and Options. Food and Agricultural Organization of the United Nations: Rome. ftp://ftp.fao.org/docrep/fao/010/A0701E/A0701E00.pdf. ISBN 9789251055717, pp 79–111.

    Google Scholar 

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Acknowledgements

We thank the staff of the Clinical Research Center for all the work and support that they provided during this study. This study was supported by the GCRC center Grant M01 RR00027

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Correspondence to L A Frassetto.

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Frassetto, L., Schloetter, M., Mietus-Synder, M. et al. Metabolic and physiologic improvements from consuming a paleolithic, hunter-gatherer type diet. Eur J Clin Nutr 63, 947–955 (2009). https://doi.org/10.1038/ejcn.2009.4

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