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Insulin resistance, hyperinsulinemia, and cardiovascular disease. The need for novel dietary prevention strategies

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Summary

Insulin resistance associated with hyperinsulinemia (metabolic syndrome) emerged in recent years as an important health risk which is present in approximately 25% of the normal population in western industrialized societies. Insulin resistance as assessed for the whole body arises from a reduced glucose utilization of skeletal muscle. If the metabolic syndrome persists over a prolonged period of time, detrimental influences on the cardiovascular system become apparent involving diabetes mellitus, hypertension, and arteriosclerosis. Of particular pathogenic relevance is an unbalanced influence of insulin arising either from a diminished or enhanced insulin action depending on whether the various tissues of the body exhibit a reduced or unchanged insulin sensitivity. Since insulin resistance and hyperinsulinemia appear to be affected by various lifestyle factors, the unique opportunity exists of reducing cardiovascular mortality by correcting this syndrome at a time when degenerative changes have not occurred in the cardiovascular system. Of great importance is the finding that dietary factors can have a modulatory action on insulin sensitivity. In animal experiments, an increased intake of (saturated) fat and refined carbohydrates increased insulin resistance. Since psychosocial distress is expected to be associated with a sustained activation of the sympathoadrenal axis, it is likely also to aggravate the metabolic syndrome. A factor with a beneficial action appears to be physical exercise. In view of the high incidence of cardiovascular diseases, further research on lifestyle factors with an insulin-sensitizing or insulin-desensitizing action is required. Of prime importance is the reevaluation of established dietary recommendations and diets should be designed which take into account the individual cardiovascular risk factor profile.

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References

  1. Amelsvoort JMM van, Beek A van der, Stam JJ, Houtsmuller UMT (1988) Dietary influence on the insulin function in the epidymal fat cell of the Wistar rat. I Effect of type of fat. Ann Nutr Metab 32:138–148

    Google Scholar 

  2. Amelsvoort JMM van, Beek A van der, Stam JJ (1988) Dietary influence on the insulin function in the epidymal fat cell of the Wistar rat. II. Effect of type of carbohydrate. Ann Nutr Metab 32:149–159

    Google Scholar 

  3. Amelsvoort JMM van, Beek A van der, Stam JJ (1988) Dietary influence on the insulin function in the epidymal fat cell of the Wistar rat. III. Effect of the ratio carbohydrate to fat. Ann Nutr Metab 32:160–168

    Google Scholar 

  4. Bennett PH, Stern MP (1991) Patient population and genetics: role in diabetes. Am J Med 90 (suppl 2A):76S-79S

    Google Scholar 

  5. Bergmann E, Casper W, Menzel R, Wiesner G (1992) Daten zur Entwicklung der Mortalität in Deutschland von 1955 bis 1989. Bundesgesundhbl 35:29–34

    Google Scholar 

  6. Björntorp P, De Jounge K, Sjöström L (1970) The effect of physical training on insulin production in obesity. Metabolism 19:631–638

    Google Scholar 

  7. DeFronzo RA (1981) The effect of insulin on renal sodium metabolism: a review with clinical implications. Diabetologia 21:165–171

    Google Scholar 

  8. DeFronzo RA, Tobin JD, Andres R (1979) Glucose clamp technique: a method for quantifying insulin secretion and resistance. Am J Physiol 237:E214-E223

    Google Scholar 

  9. Die Nationale Verzehrsstudie (1991) Materialien zur Gesundheitsforschung Band 18, Bremerhaven, Wirtschaftsverlag NW, 1–115

  10. Ferrannini E, Buzzigoli G, Bonadonna R, Giorico MA, Oleggini M, Graziadei L, Pedrinelli R, Brandi L, Bevilacqua S (1987) Insulin resistance in essential hypertension. N Engl J Med 317:350–357

    Google Scholar 

  11. Flack JM, Sowers JR (1991) Epidemiologic and clinical aspects of insulin resistance and hyperinsulinemia. Am J Med 91 (suppl 1A):11S-21S

    Google Scholar 

  12. Flack JM, Wiist W (1992) The prevalence of cardiovascular risk factors in screenes of the Northeast Oklahoma City Cholesterol Education Program (NEOCEP). J of Ethnicity and Disease (in press)

  13. Golay A, Felber JP, Dusmet M, Gomez F, Curchod B, Jequier E (1985) Effect of weight loss on glucose disposal in obese and obese diabetic patients. Int J Obes 9:181–191

    Google Scholar 

  14. Hall JE, Coleman TG, Mizelle HL, Smith MJ Jr (1990) Chronic hyperinsulinemia and blood pressure regulation. Am J Physiol 258:F722-F731

    Google Scholar 

  15. Hypertension, lipids, and cardiovascular disease: is insulin the missing link? (1991) Am J Med 90 (suppl 2A):1S–88S

  16. Jensen M, Haymond M, Rizza R, Cryer P, Miles J (1989) Influence of body fat distribution on free fatty acid metabolism in obesity. J Clin Invest 83:1168–1173

    Google Scholar 

  17. Krauss RM (1991) The tangled web of coronary risk factors. Am J Med 90 (suppl 2A):36S-41S

    Google Scholar 

  18. Krolewski AS, Warram JH, Valsania P, Martin BC, Laffel LMB, Christlieb AR (1991) Evolving natural history of coronary artery disease in diabetes mellitus. Am J Med 90 (suppl 2A):56S-61S

    Google Scholar 

  19. Landin K, Krotkiewski M, Smith U (1989) Importance of obesity for the metabolic abnormalities associated with an abdominal fat distribution. Metabolism 38:572–576

    Google Scholar 

  20. Landin K, Tengborn L, Smith U (1990) Elevated fibrinogen and plasminogen activator inhibitor (PAI-1) in hypertension are related to metabolic risk factors for cardiovascular disease. J Intern Med 227:273–278

    Google Scholar 

  21. Landsberg L, Young JB (1985) Insulin-mediated glucose metabolism in the relationship between dietary intake and sympathetic nervous system activity. Int J Obes 9 (suppl 2):63–68

    Google Scholar 

  22. Levenson SM (ed) Nutritional Assessment — Present Status, Future Directions and Prospects, Report of the Second Ross Conference on Medical Research (1981) Columbus/Ohio, Ross Laboratories, 1–141

    Google Scholar 

  23. Modan M, Halkin H, Lusky A, Segal P, Fuchs Z, Chetrit A (1988) Hyperinsulinemia is characterized by jointly disturbed plasma VLDL, LDL, and HDL levels. Arteriosclerosis 8:227–236

    Google Scholar 

  24. Moore RD (1983) Effects of insulin upon ion transport. Biochim Biophys Acta 737:1–49

    Google Scholar 

  25. Pfeifle B, Ditschuneit HH, Ditschuneit H (1980) Insulin as a cellular growth regulator of rat arterial smooth muscle cells in vitro. Horm Metab Res 12:381–385

    Google Scholar 

  26. Pierce GN, Dhalla NS (1983) Sarcolemmal Na+, K+-ATPase activity in diabetic rat heart. Am J Physiol 245:C241-C247

    Google Scholar 

  27. Pollare T, Lithell H, Berne C (1989) A comparison of the effects of hydrochlorothiazide and captopril on glucose and lipid metabolism in patients with hypertension. New Engl J Med 321:868–873

    Google Scholar 

  28. Reaven GM (1988) Banting Lecture 1988: role of insulin resistance in human disease. Diabetes 37:1595–1607

    Google Scholar 

  29. Reaven GM (1991) Insulin resistance, hyperinsulinemia, and hypertriglyceridemia in the etiology and clinical course of hypertension. Am J Med 90 (suppl. 2A):7S-12S

    Google Scholar 

  30. Recommended Nutrient Intakes for Canadians (1983) Ottawa, Canadian Government Publ Centre, 28–30

  31. Rocchini AP, Katch V, Kveselis D, Moorehead C, Martin M, Lampman R, Gregory M (1989) Insulin and renal sodium retention in obese adolescents. Hypertension 14:367–374

    Google Scholar 

  32. Rupp H (1991) The metabolic syndrome and signal transduction of gene expression. Basic Res Cardiol 86(suppl 3.):65–81

    Google Scholar 

  33. Rupp H, Elimban V, Dhalla NS (1988) Sucrose feeding prevents changes in myosin isoenzymes and sarcoplasmic reticulum Ca2+-pump ATPase in pressure-loaded rat heart Biochem Biophys Res Commun 156:917–923

    Google Scholar 

  34. Rupp H, Elimban V, Dhalla NS (1989) Diabetes-like action of intermittent fasting on sarcoplasmic reticulum Ca2+-pump ATPase and myosin isoenzymes can be prevented by sucrose. Biochem Biophys Res Commun 164:319–325

    Google Scholar 

  35. Rupp H, Elimban V, Dhalla NS (1992) Modification of subcellular organelles in pressure overloaded heart by etomoxir, a carnitine palmitoyltransferase 1 inhibitor. FASEB J (in press)

  36. Rupp H, Jacob R (1992) Metabolically-modulated growth and phenotype of the rat heart. Eur Heart J (suppl) (in press)

  37. Siegrist J, Peter R, Motz W, Strauer BE (1992) The role of hypertension, left ventricular hypertrophy and psychosocial risks in cardiovascular disease: prospective evidence from blue-collar men. Eur Heart J (suppl) (in press)

  38. Siegrist J, Peter R, Georg W, Cremer P, Seidel D (1991) Psychosocial and biobehavioral characteristics of hypertensive men with elevated atherogenic lipids. Atherosclerosis 86:211–218

    Google Scholar 

  39. Siegrist J, Peter R, Junge A, Cremer P, Seidel D (1990) Low status control, high effort at work and ischemic heart disease: prospective evidence from blue-collar men. Soc Sci Med 31:1127–1134

    Google Scholar 

  40. Stolar MW (1988) Atherosclerosis in diabetes: the role of hyperinsulinemia. Metabolism 37 (2 suppl 1):1–9

    Google Scholar 

  41. Strom A, Jensen RA (1951) Mortality from circulatory diseases in Norway, 1940–1945. Lancet 1:126–129

    Google Scholar 

  42. Weber MA, Smith DHG, Neutel JM, Graettinger WF (1991) Cardiovascular and metabolic characteristics of hypertension. Am J Med 91 (suppl 1A):4S-10S

    Google Scholar 

  43. Zavaroni I, Chen YI, Mondon CE, Reaven GM (1981) Ability of exercise to inhibit carbohydrate-induced hypertriglyceridemia in rats. Metabolism 30:476–480

    Google Scholar 

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Rupp, H. Insulin resistance, hyperinsulinemia, and cardiovascular disease. The need for novel dietary prevention strategies. Basic Res Cardiol 87, 99–105 (1992). https://doi.org/10.1007/BF00801957

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