Skip to main content
Top
Published in: Acta Diabetologica 3/2011

01-09-2011 | Review Article

The diabetic cardiomyopathy

Authors: Roberto Tarquini, Chiara Lazzeri, Laura Pala, Carlo Maria Rotella, Gian Franco Gensini

Published in: Acta Diabetologica | Issue 3/2011

Login to get access

Abstract

Diabetic cardiomyopathy has been defined as “a distinct entity characterized by the presence of abnormal myocardial performance or structure in the absence of epicardial coronary artery disease, hypertension, and significant valvular disease”. The diagnosis stems from the detection of myocardial abnormalities and the exclusion of other contributory causes of cardiomyopathy. It rests on non-invasive imaging techniques which can demonstrate myocardial dysfunction across the spectra of clinical presentation. The presence of diabetes is associated with an increased risk of developing heart failure, and the 75% of patients with unexplained idiopathic dilated cardiomyopathy were found to be diabetic. Diabetic patients with microvascular complications show the strongest association between diabetes and cardiomyopathy, an association that parallels the duration and severity of hyperglycemia. Metabolic abnormalities (that is hyperglycemia, hyperinsulinemia, and hyperlipemia) can lead to the cellular alterations characterizing diabetic cardiomyopathy (that is myocardial fibrosis and/or myocardial hypertrophy) directly or indirectly (that is by means of renin-angiotensin system activation, cardiac autonomic neuropathy, alterations in calcium homeostasis). Moreover, metabolic abnormalities represent, on a clinical ground, the main therapeutic target in the patients with diabetes since the diagnosis of diabetes is made. Since diabetic cardiomyopathy is highly prevalent in the asymptomatic type 2 diabetic patients, screening for its presence at the earliest stage of development can lead to prevent the progression to chronic heart failure. The most sensitive test is standard echocardiogram, while a less expensive pre-screening method is the detection of microalbuminuria.
Appendix
Available only for authorised users
Literature
1.
go back to reference Aneja A, Tang WH, Bansilal S, Garcia MJ, Farkouh ME (2008) Diabetic cardiomyopathy: insights into pathogenesis, diagnostic challenges, and therapeutic options. Am J Med 121(9):748–757PubMedCrossRef Aneja A, Tang WH, Bansilal S, Garcia MJ, Farkouh ME (2008) Diabetic cardiomyopathy: insights into pathogenesis, diagnostic challenges, and therapeutic options. Am J Med 121(9):748–757PubMedCrossRef
2.
go back to reference Fang ZY, Prins JB, Marwick TH (2004) Diabetic cardiomyopathy: evidence, mechanisms, and therapeutic implications. Endocr Rev 25(4):543–567PubMedCrossRef Fang ZY, Prins JB, Marwick TH (2004) Diabetic cardiomyopathy: evidence, mechanisms, and therapeutic implications. Endocr Rev 25(4):543–567PubMedCrossRef
3.
go back to reference Rubler S, Dlugash J, Yuceoglu YZ, Kumral T, Branwood AW, Grishman A (1972) New type of cardiomyopathy associated with diabetic glomerulosclerosis. Am J Cardiol 30(6):595–602PubMedCrossRef Rubler S, Dlugash J, Yuceoglu YZ, Kumral T, Branwood AW, Grishman A (1972) New type of cardiomyopathy associated with diabetic glomerulosclerosis. Am J Cardiol 30(6):595–602PubMedCrossRef
4.
go back to reference Regan TJ, Lyons MM, Ahmed SS, Levinson GE, Oldewurtel HA, Ahmad MR, Haider B (1977) Evidence for cardiomyopathy in familial diabetes mellitus. J Clin Invest 60(4):884–899PubMedCrossRef Regan TJ, Lyons MM, Ahmed SS, Levinson GE, Oldewurtel HA, Ahmad MR, Haider B (1977) Evidence for cardiomyopathy in familial diabetes mellitus. J Clin Invest 60(4):884–899PubMedCrossRef
5.
go back to reference Nichols GA, Hillier TA, Erbey JR, Brown JB (2001) Congestive heart failure in type 2 diabetes: prevalence, incidence, and risk factors. Diabetes Care 24(9):1614–1619PubMedCrossRef Nichols GA, Hillier TA, Erbey JR, Brown JB (2001) Congestive heart failure in type 2 diabetes: prevalence, incidence, and risk factors. Diabetes Care 24(9):1614–1619PubMedCrossRef
6.
go back to reference Kannel WB, McGee DL (1979) Diabetes and cardiovascular disease. The Framingham study. JAMA 241(19):2035–2038PubMedCrossRef Kannel WB, McGee DL (1979) Diabetes and cardiovascular disease. The Framingham study. JAMA 241(19):2035–2038PubMedCrossRef
7.
go back to reference Hunt SA, American College of Cardiology; American Heart Association Task Force on Practice Guidelines (Writing Committee to Update the 2001 Guidelines for the Evaluation, Management of Heart Failure) (2005) ACC/AHA 2005 guideline update for the diagnosis and management of chronic heart failure in the adult: a report of the American College of Cardiology/American Heart Association Task Force on Practice Guidelines (Writing Committee to Update the 2001 Guidelines for the Evaluation and Management of Heart Failure). JACC 46(6):e1–e82PubMed Hunt SA, American College of Cardiology; American Heart Association Task Force on Practice Guidelines (Writing Committee to Update the 2001 Guidelines for the Evaluation, Management of Heart Failure) (2005) ACC/AHA 2005 guideline update for the diagnosis and management of chronic heart failure in the adult: a report of the American College of Cardiology/American Heart Association Task Force on Practice Guidelines (Writing Committee to Update the 2001 Guidelines for the Evaluation and Management of Heart Failure). JACC 46(6):e1–e82PubMed
8.
go back to reference Stratton IM, Adler AI, Neil HA, Yudkin JS, Matthews DR, Cull CA et al (2000) Association of glycemia with macrovascular and microvascular complications of type 2 diabetes (United Kingdom Prospective Diabetes Study 35): prospective observational study. BMJ 321:405–412PubMedCrossRef Stratton IM, Adler AI, Neil HA, Yudkin JS, Matthews DR, Cull CA et al (2000) Association of glycemia with macrovascular and microvascular complications of type 2 diabetes (United Kingdom Prospective Diabetes Study 35): prospective observational study. BMJ 321:405–412PubMedCrossRef
9.
go back to reference Bertoni AG, Tsai A, Kasper EK, Brancati FL (2003) Diabetes and idiopathic cardiomyopathy: a nationwide case-control study. Diabetes Care 26(10):2791–2795PubMedCrossRef Bertoni AG, Tsai A, Kasper EK, Brancati FL (2003) Diabetes and idiopathic cardiomyopathy: a nationwide case-control study. Diabetes Care 26(10):2791–2795PubMedCrossRef
10.
go back to reference Bertoni AG, Hundley WG, Massing MW, Bonds DE, Burke GL, Goff DC Jr (2004) Heart failure prevalence, incidence, and mortality in the elderly with diabetes. Diabetes Care 27:699–703PubMedCrossRef Bertoni AG, Hundley WG, Massing MW, Bonds DE, Burke GL, Goff DC Jr (2004) Heart failure prevalence, incidence, and mortality in the elderly with diabetes. Diabetes Care 27:699–703PubMedCrossRef
11.
go back to reference Kannel WB, McGee DL (1979) Diabetes and cardiovascular disease: the Framingham study. JAMA 241:2035–2038PubMedCrossRef Kannel WB, McGee DL (1979) Diabetes and cardiovascular disease: the Framingham study. JAMA 241:2035–2038PubMedCrossRef
12.
go back to reference Poornima IG, Parikh P, Shannon RP (2006) Diabetic cardiomyopathy: the search for a unifying hypothesis. Circ Res 98(5):596–605PubMedCrossRef Poornima IG, Parikh P, Shannon RP (2006) Diabetic cardiomyopathy: the search for a unifying hypothesis. Circ Res 98(5):596–605PubMedCrossRef
13.
go back to reference Liu GX, Hanley PJ, Ray J, Daut J (2001) Long-chain acyl-coenzyme A esters and fatty acids directly link metabolism to K (ATP) channels in the heart. Circ Res 88(9):918–924PubMedCrossRef Liu GX, Hanley PJ, Ray J, Daut J (2001) Long-chain acyl-coenzyme A esters and fatty acids directly link metabolism to K (ATP) channels in the heart. Circ Res 88(9):918–924PubMedCrossRef
14.
go back to reference Boudina S, Abel ED (2006) Mitochondrial uncoupling: a key contributor to reduced cardiac efficiency in diabetes. Physiology 21:250–258PubMedCrossRef Boudina S, Abel ED (2006) Mitochondrial uncoupling: a key contributor to reduced cardiac efficiency in diabetes. Physiology 21:250–258PubMedCrossRef
15.
go back to reference McGavock JM, Lingvay I, Zib I, Tillery T, Salas N, Unger R et al (2007) Cardiac steatosis in diabetes mellitus: a 1H-magnetic resonance spectroscopy study. Circulation 116:1170–1175PubMedCrossRef McGavock JM, Lingvay I, Zib I, Tillery T, Salas N, Unger R et al (2007) Cardiac steatosis in diabetes mellitus: a 1H-magnetic resonance spectroscopy study. Circulation 116:1170–1175PubMedCrossRef
16.
go back to reference Rijzewijk LJ, van der Meer RW, Smit JW, Diamant M, Bax JJ, Hammer S et al (2008) Myocardial steatosis is an independent predictor of diastolic dysfunction in type 2 diabetes mellitus. Am Coll Cardiol 52(22):1793–1799CrossRef Rijzewijk LJ, van der Meer RW, Smit JW, Diamant M, Bax JJ, Hammer S et al (2008) Myocardial steatosis is an independent predictor of diastolic dysfunction in type 2 diabetes mellitus. Am Coll Cardiol 52(22):1793–1799CrossRef
17.
go back to reference Herrero P, Peterson LR, McGill JB, Matthew S, Lesniak D, Dence C et al (2006) Increased myocardial fatty acid metabolism in patients with type 1 diabetes mellitus. J Am Coll Cardiol 47:598–604PubMedCrossRef Herrero P, Peterson LR, McGill JB, Matthew S, Lesniak D, Dence C et al (2006) Increased myocardial fatty acid metabolism in patients with type 1 diabetes mellitus. J Am Coll Cardiol 47:598–604PubMedCrossRef
18.
go back to reference Peterson LR, Herrero P, Schechtman KB, Racette SB, Waggoner AD, Kisrieva-Ware Z et al (2004) Effect of obesity and insulin resistance on myocardial substrate metabolism and efficiency in young women. Circulation 109:2191–2196PubMedCrossRef Peterson LR, Herrero P, Schechtman KB, Racette SB, Waggoner AD, Kisrieva-Ware Z et al (2004) Effect of obesity and insulin resistance on myocardial substrate metabolism and efficiency in young women. Circulation 109:2191–2196PubMedCrossRef
19.
go back to reference O’Neill BT, Abel ED (2005) Akt1 in the cardiovascular system: friend or foe? J Clin Invest 115:2059–2064PubMedCrossRef O’Neill BT, Abel ED (2005) Akt1 in the cardiovascular system: friend or foe? J Clin Invest 115:2059–2064PubMedCrossRef
20.
go back to reference Kern W, Peters A, Born J, Fehm HL, Schultes B (2005) Changes in blood pressure and plasma catecholamine levels during prolonged hyperinsulinemia. Metabolism 54:391–396PubMedCrossRef Kern W, Peters A, Born J, Fehm HL, Schultes B (2005) Changes in blood pressure and plasma catecholamine levels during prolonged hyperinsulinemia. Metabolism 54:391–396PubMedCrossRef
21.
go back to reference Naito Z, Takashi E, Xu G, Ishiwata T, Teduka K, Yokoyama M et al (2003) Different influences of hyperglycemic duration on phosphorylated extracellular signal-regulated kinase 1/2 in rat heart. Exp Mol Pathol 74:23–32PubMedCrossRef Naito Z, Takashi E, Xu G, Ishiwata T, Teduka K, Yokoyama M et al (2003) Different influences of hyperglycemic duration on phosphorylated extracellular signal-regulated kinase 1/2 in rat heart. Exp Mol Pathol 74:23–32PubMedCrossRef
22.
go back to reference Du X, Matsumura T, Edelstein D, Rossetti L, Zsengeller Z, Szabo C, Brownlee M (2003) Inhibition of GAPDH activity by poly(ADP-ribose) polymerase activates three major pathways of hyperglycemic damage in endothelial cells. J Clin Invest 112:1049–1057PubMed Du X, Matsumura T, Edelstein D, Rossetti L, Zsengeller Z, Szabo C, Brownlee M (2003) Inhibition of GAPDH activity by poly(ADP-ribose) polymerase activates three major pathways of hyperglycemic damage in endothelial cells. J Clin Invest 112:1049–1057PubMed
23.
go back to reference Kilhovd BK, Berg TJ, Birkeland KI, Thorsby P, Hanssen KF (1999) Serum levels of advanced glycation end products are increased in patients with type 2 diabetes and coronary heart disease. Diabetes Care 22(9):1543–1548PubMedCrossRef Kilhovd BK, Berg TJ, Birkeland KI, Thorsby P, Hanssen KF (1999) Serum levels of advanced glycation end products are increased in patients with type 2 diabetes and coronary heart disease. Diabetes Care 22(9):1543–1548PubMedCrossRef
24.
go back to reference Antonio Ceriello, Michael A. Ihnat, Jessica E (2009) Thorpe. The “metabolic memory”: is more than just tight glucose control necessary to prevent diabetic complications?. J Clin Endocrinol Metab 410–415 Antonio Ceriello, Michael A. Ihnat, Jessica E (2009) Thorpe. The “metabolic memory”: is more than just tight glucose control necessary to prevent diabetic complications?. J Clin Endocrinol Metab 410–415
25.
go back to reference Mannucci E, Ognibene A, Cremasco F, Bardini G, Mencucci A, Pierazzuoli E, Ciani S, Fanelli A, Messeri G, Rotella CM (2000) Glucagon-like peptide (GLP)-1 and leptin concentrations in obese patients with Type 2 diabetes mellitus. Diabet Med 713–719 Mannucci E, Ognibene A, Cremasco F, Bardini G, Mencucci A, Pierazzuoli E, Ciani S, Fanelli A, Messeri G, Rotella CM (2000) Glucagon-like peptide (GLP)-1 and leptin concentrations in obese patients with Type 2 diabetes mellitus. Diabet Med 713–719
26.
go back to reference Mannucci E, Pala L, Ciani S, Bardini G, Pezzatini A, Sposato I, Cremasco F, Ognibene A, Rotella CM (2005) Hyperglycaemia increases dipeptidyl peptidase IV activity in diabetes mellitus. Diabetologia 48(6):1168–1172PubMedCrossRef Mannucci E, Pala L, Ciani S, Bardini G, Pezzatini A, Sposato I, Cremasco F, Ognibene A, Rotella CM (2005) Hyperglycaemia increases dipeptidyl peptidase IV activity in diabetes mellitus. Diabetologia 48(6):1168–1172PubMedCrossRef
27.
go back to reference Rotella CM, Mannucci E (2008) Future perspectives on glucagon-like peptide-1, diabetes and cardiovascular risk. Nutr Metab Cardiovasc Dis 18:639–645PubMedCrossRef Rotella CM, Mannucci E (2008) Future perspectives on glucagon-like peptide-1, diabetes and cardiovascular risk. Nutr Metab Cardiovasc Dis 18:639–645PubMedCrossRef
28.
go back to reference Barragan JM, Rodriguez RE, Blazquez E (1994) Changes in arterial blood pressure and heart rate induced by glucagon-like peptide-1 (7–36) amide in rats. Am J Physiol 266:E459e66 Barragan JM, Rodriguez RE, Blazquez E (1994) Changes in arterial blood pressure and heart rate induced by glucagon-like peptide-1 (7–36) amide in rats. Am J Physiol 266:E459e66
29.
go back to reference Yamamoto H, Lee CE, Marcus JN, Williams TD, Overton JM, Lopez ME et al (2002) Glucagon-like peptide-1 receptor stimulation increases blood pressure and heart rate and activates autonomic regulatory neurons. J Clin Invest 110:43e52 Yamamoto H, Lee CE, Marcus JN, Williams TD, Overton JM, Lopez ME et al (2002) Glucagon-like peptide-1 receptor stimulation increases blood pressure and heart rate and activates autonomic regulatory neurons. J Clin Invest 110:43e52
30.
go back to reference Saraceni C, Broderick TL (2007) Effects of glucagon-like peptide-1 and long-acting analogues on cardiovascular and metabolic function. Drugs R D 8:145–153PubMedCrossRef Saraceni C, Broderick TL (2007) Effects of glucagon-like peptide-1 and long-acting analogues on cardiovascular and metabolic function. Drugs R D 8:145–153PubMedCrossRef
31.
go back to reference Bojanowska E, Stempniak B (2009) Effects of centrally or systematically injected glucagon-like peptide-1(7–36) amide in rats. Regul Pept 91:75–81CrossRef Bojanowska E, Stempniak B (2009) Effects of centrally or systematically injected glucagon-like peptide-1(7–36) amide in rats. Regul Pept 91:75–81CrossRef
32.
go back to reference Gardiner SM, March JE, Kemp PA, Bennett T (2006) Mesenteric vasoconstriction and hindquarters vasodilation accompany the pressor actions of exendin-4 in conscious rats. J Pharmacol Exp Ther 316:852–859PubMedCrossRef Gardiner SM, March JE, Kemp PA, Bennett T (2006) Mesenteric vasoconstriction and hindquarters vasodilation accompany the pressor actions of exendin-4 in conscious rats. J Pharmacol Exp Ther 316:852–859PubMedCrossRef
33.
go back to reference Amori RE, Lau J, Pittas AG (2007) Efficacy and safety of incretin therapy in type 2 diabetes. Systematic review and metaanalysis. JAMA 298:194–206PubMedCrossRef Amori RE, Lau J, Pittas AG (2007) Efficacy and safety of incretin therapy in type 2 diabetes. Systematic review and metaanalysis. JAMA 298:194–206PubMedCrossRef
34.
go back to reference Drucker DJ, Nauck MA (2006) The incretin system: glucagon-like peptide-1 receptor agonists and dipeptidyl peptidase-4 inhibitors in type 2 diabetes. Lancet 318:1696–1705CrossRef Drucker DJ, Nauck MA (2006) The incretin system: glucagon-like peptide-1 receptor agonists and dipeptidyl peptidase-4 inhibitors in type 2 diabetes. Lancet 318:1696–1705CrossRef
35.
go back to reference Inzucchi SE, McGuire DK (2008) New drugs for the treatment of diabetes. Part II: incretin-based therapy and beyond. Circulation 117:574–584PubMedCrossRef Inzucchi SE, McGuire DK (2008) New drugs for the treatment of diabetes. Part II: incretin-based therapy and beyond. Circulation 117:574–584PubMedCrossRef
36.
go back to reference Vilsbøll T (2007) Liraglutide: a once-daily GLP-1 analogue for the treatment of type 2 diabetes mellitus. Exp Opin Invest Drug 16:231–237CrossRef Vilsbøll T (2007) Liraglutide: a once-daily GLP-1 analogue for the treatment of type 2 diabetes mellitus. Exp Opin Invest Drug 16:231–237CrossRef
37.
go back to reference Nikolaidis LA, Elahi D, Shen YT, Shannon RP (2005) Active metabolite of GLP-1 mediates myocardial glucose uptake and improved left ventricular performance in conscious dogs with dilated cardiomyopathy. Am J Physiol Heart Circ Physiol 289:H2401–H2408PubMedCrossRef Nikolaidis LA, Elahi D, Shen YT, Shannon RP (2005) Active metabolite of GLP-1 mediates myocardial glucose uptake and improved left ventricular performance in conscious dogs with dilated cardiomyopathy. Am J Physiol Heart Circ Physiol 289:H2401–H2408PubMedCrossRef
38.
go back to reference Sonne DP, Engstrom T, Treiman M (2008) Protective effects of GLP-1 analogues exendin 4 and GLP-1(9–36)amide against ischemia reperfusion in rat heart. Regul Pept 146:243–249PubMedCrossRef Sonne DP, Engstrom T, Treiman M (2008) Protective effects of GLP-1 analogues exendin 4 and GLP-1(9–36)amide against ischemia reperfusion in rat heart. Regul Pept 146:243–249PubMedCrossRef
39.
go back to reference Ban K, Noyan-Ashraf MH, Hoefer J, Bolz SS, Drucker DJ, Husain M (2008) Cardioprotective and vasodilatory actions of glucagon-like peptide-1 are mediated through both glucagon like peptide-1 receptor-dependent and independent pathways. Circulation 117:2340–2350PubMedCrossRef Ban K, Noyan-Ashraf MH, Hoefer J, Bolz SS, Drucker DJ, Husain M (2008) Cardioprotective and vasodilatory actions of glucagon-like peptide-1 are mediated through both glucagon like peptide-1 receptor-dependent and independent pathways. Circulation 117:2340–2350PubMedCrossRef
40.
go back to reference Sokos GG, Nikolaidis LA, Mankad S, Elahi D, Shannon RP (2006) Glucagon-like peptide-1 infusion improves left ventricular ejection fraction and functional status in patients with chronic heart failure. J Card Fail 12:694–699PubMedCrossRef Sokos GG, Nikolaidis LA, Mankad S, Elahi D, Shannon RP (2006) Glucagon-like peptide-1 infusion improves left ventricular ejection fraction and functional status in patients with chronic heart failure. J Card Fail 12:694–699PubMedCrossRef
41.
go back to reference Nikolaidis LA, Mankad S, Sokos GG, Miske G, Shah A, Elahi D et al (2004) Effects of glucagon-like peptide-1 in patients with acute myocardial infarction and left ventricular dysfunction after successful reperfusion. Circulation 109:962–965PubMedCrossRef Nikolaidis LA, Mankad S, Sokos GG, Miske G, Shah A, Elahi D et al (2004) Effects of glucagon-like peptide-1 in patients with acute myocardial infarction and left ventricular dysfunction after successful reperfusion. Circulation 109:962–965PubMedCrossRef
42.
go back to reference Young ME, Guthrie PH, Razeghi P, Leighton B, Abbasi S, Patil S et al (2002) Impaired long-chain fatty acid oxidation and contractile dysfunction in the obese Zucker rat heart. Diabetes 51:2587–2595PubMedCrossRef Young ME, Guthrie PH, Razeghi P, Leighton B, Abbasi S, Patil S et al (2002) Impaired long-chain fatty acid oxidation and contractile dysfunction in the obese Zucker rat heart. Diabetes 51:2587–2595PubMedCrossRef
43.
go back to reference Huisamen B, van Zyl M, Keyser A, Lochner A (2001) The effects of insulin and beta-adrenergic stimulation on glucose transport, glut 4 and PKB activation in the myocardium of lean and obese noninsulin dependent diabetes mellitus rats. Mol Cell Biochem 223:15–25PubMedCrossRef Huisamen B, van Zyl M, Keyser A, Lochner A (2001) The effects of insulin and beta-adrenergic stimulation on glucose transport, glut 4 and PKB activation in the myocardium of lean and obese noninsulin dependent diabetes mellitus rats. Mol Cell Biochem 223:15–25PubMedCrossRef
44.
go back to reference Chatham JC, Seymour AM (2002) Cardiac carbohydrate metabolism in Zucker diabetic fatty rats. Cardiovasc Res 55:104–112PubMedCrossRef Chatham JC, Seymour AM (2002) Cardiac carbohydrate metabolism in Zucker diabetic fatty rats. Cardiovasc Res 55:104–112PubMedCrossRef
45.
go back to reference Wang P, Lloyd SG, Zeng H, Bonen A, Chatham JC (2005) Impact of altered substrate utilization on cardiac function in isolated hearts from Zucker diabetic fatty rats. Am J Physiol Heart Circ Physiol 288:H2102–H2110PubMedCrossRef Wang P, Lloyd SG, Zeng H, Bonen A, Chatham JC (2005) Impact of altered substrate utilization on cardiac function in isolated hearts from Zucker diabetic fatty rats. Am J Physiol Heart Circ Physiol 288:H2102–H2110PubMedCrossRef
46.
47.
go back to reference Struthers AD, Morris AD (2002) Screening for and treating left-ventricular abnormalities in diabetes mellitus: a new way of reducing cardiac deaths. Lancet 359:1430–1432PubMedCrossRef Struthers AD, Morris AD (2002) Screening for and treating left-ventricular abnormalities in diabetes mellitus: a new way of reducing cardiac deaths. Lancet 359:1430–1432PubMedCrossRef
48.
go back to reference Devereux RB, Roman MJ, Paranicas M, O’Grady MJ, Lee ET, Welty TK et al (2000) Impact of diabetes on cardiac structure and function: the Strong Heart Study. Circulation 101:2271–2276PubMed Devereux RB, Roman MJ, Paranicas M, O’Grady MJ, Lee ET, Welty TK et al (2000) Impact of diabetes on cardiac structure and function: the Strong Heart Study. Circulation 101:2271–2276PubMed
49.
go back to reference Vered A, Battler A, Segal P, Liberman D, Yerashami Y, Berezin M et al (1984) Exercise-induced left ventricular dysfunction in young men with asymptomatic diabetes mellitus (diabetic cardiomyopathy). Am J Cardiol 54(6):633–637PubMedCrossRef Vered A, Battler A, Segal P, Liberman D, Yerashami Y, Berezin M et al (1984) Exercise-induced left ventricular dysfunction in young men with asymptomatic diabetes mellitus (diabetic cardiomyopathy). Am J Cardiol 54(6):633–637PubMedCrossRef
50.
go back to reference Carugo S, Giannattasio C, Calchera I, Paleari F, Gorgoglione MG, Grappiolo A, Gamba P, Rovaris G, Failla M, Mancia G (2001) Progression of functional and structural cardiac alterations in young normotensive uncomplicated patients with type 1 diabetes mellitus. J Hypertens 19:1675–1680PubMedCrossRef Carugo S, Giannattasio C, Calchera I, Paleari F, Gorgoglione MG, Grappiolo A, Gamba P, Rovaris G, Failla M, Mancia G (2001) Progression of functional and structural cardiac alterations in young normotensive uncomplicated patients with type 1 diabetes mellitus. J Hypertens 19:1675–1680PubMedCrossRef
51.
go back to reference Schannwell CM, Schneppenheim M, Perings S, Plehn G, Strauer BE (2002) Left ventricular diastolic dysfunction as an early manifestation of diabetic cardiomyopathy. Cardiology 98:33–39PubMedCrossRef Schannwell CM, Schneppenheim M, Perings S, Plehn G, Strauer BE (2002) Left ventricular diastolic dysfunction as an early manifestation of diabetic cardiomyopathy. Cardiology 98:33–39PubMedCrossRef
52.
go back to reference Di Bonito P, Cuomo S, Moio N, Sibilio G, Sabatini D, Quattrin S, Capaldo B (1996) Diastolic dysfunction in patients with non-insulin-dependent diabetes mellitus of short duration. Diabet Med 13:321–324PubMedCrossRef Di Bonito P, Cuomo S, Moio N, Sibilio G, Sabatini D, Quattrin S, Capaldo B (1996) Diastolic dysfunction in patients with non-insulin-dependent diabetes mellitus of short duration. Diabet Med 13:321–324PubMedCrossRef
53.
go back to reference Von Bibra H, Thrainsdottir IS, Hansen A, Dounis V, Malmberg K, Rydén L (2005) Tissue Doppler imaging for the detection and quantitation of myocardial dysfunction in patients with type 2 diabetes mellitus. Diab Vasc Dis Res 2(1):24–30CrossRef Von Bibra H, Thrainsdottir IS, Hansen A, Dounis V, Malmberg K, Rydén L (2005) Tissue Doppler imaging for the detection and quantitation of myocardial dysfunction in patients with type 2 diabetes mellitus. Diab Vasc Dis Res 2(1):24–30CrossRef
54.
go back to reference Stefanidis A, Bousboulas S, Kafatis J, Baroutsi K, Margos P, Komninos K et al (2009) Left ventricular anatomical and functional changes with ageing in type 2 diabetic adults. Eur J Echocardiogr 10(5):647–653PubMedCrossRef Stefanidis A, Bousboulas S, Kafatis J, Baroutsi K, Margos P, Komninos K et al (2009) Left ventricular anatomical and functional changes with ageing in type 2 diabetic adults. Eur J Echocardiogr 10(5):647–653PubMedCrossRef
55.
go back to reference Jarnert C, Landstedt-Hallin L, Malmberg K, Melcher A, Ohrvik J, Persson H et al (2009) A randomized trial of the impact of strict glycaemic control on myocardial diastolic function and perfusion reserve: a report from the DADD (Diabetes mellitus and Diastolic Dysfunction) study. Eur J Heart Fail 11(1):39–47PubMedCrossRef Jarnert C, Landstedt-Hallin L, Malmberg K, Melcher A, Ohrvik J, Persson H et al (2009) A randomized trial of the impact of strict glycaemic control on myocardial diastolic function and perfusion reserve: a report from the DADD (Diabetes mellitus and Diastolic Dysfunction) study. Eur J Heart Fail 11(1):39–47PubMedCrossRef
56.
go back to reference von Bibra H, Hansen A, Dounis V, Bystedt T, Malmberg K, Rydén L (2004) Augmented metabolic control improves myocardial diastolic function and perfusion in patients with non-insulin dependent diabetes. Heart 90(12):1483–1484CrossRef von Bibra H, Hansen A, Dounis V, Bystedt T, Malmberg K, Rydén L (2004) Augmented metabolic control improves myocardial diastolic function and perfusion in patients with non-insulin dependent diabetes. Heart 90(12):1483–1484CrossRef
57.
go back to reference Bose AK, Mocanu MM, Carr RD, Brand CL, Yellon DM (2005) Glucagon like peptide-1 can directly protect the heart against ischemia/reperfusion injury. Diabetes 54:146–151PubMedCrossRef Bose AK, Mocanu MM, Carr RD, Brand CL, Yellon DM (2005) Glucagon like peptide-1 can directly protect the heart against ischemia/reperfusion injury. Diabetes 54:146–151PubMedCrossRef
58.
go back to reference Zhao T, Parikh P, Bhashyam S, Bolokoglu H, Poornima I, Shen YT et al (2006) Direct effects of glucagon-like peptide-1 on myocardial contractility and glucose uptake in normal and post-ischemic isolated rat hearts. J Pharmacol Exp Ther 317:1106–1113PubMedCrossRef Zhao T, Parikh P, Bhashyam S, Bolokoglu H, Poornima I, Shen YT et al (2006) Direct effects of glucagon-like peptide-1 on myocardial contractility and glucose uptake in normal and post-ischemic isolated rat hearts. J Pharmacol Exp Ther 317:1106–1113PubMedCrossRef
59.
go back to reference Debono M, Cachia E (2007) The impact of cardiovascular autonomic neuropathy in diabetes: is it associated with left ventricular dysfunction? Auton Neurosci 132(1–2):1–7PubMedCrossRef Debono M, Cachia E (2007) The impact of cardiovascular autonomic neuropathy in diabetes: is it associated with left ventricular dysfunction? Auton Neurosci 132(1–2):1–7PubMedCrossRef
60.
go back to reference Rathmann W, Ziegler D, Jahnke M, Haastert B, Gries FA (1993) Mortality in diabetic patients with cardiovascular autonomic neuropathy. Diabet Med 10(9):820–824PubMedCrossRef Rathmann W, Ziegler D, Jahnke M, Haastert B, Gries FA (1993) Mortality in diabetic patients with cardiovascular autonomic neuropathy. Diabet Med 10(9):820–824PubMedCrossRef
61.
go back to reference Di Carli MF, Bianco-Batlles D, Landa ME, Kazmers A, Groehn H, Muzik O et al (1999) Effects of autonomic neuropathy on coronary blood flow in patients with diabetes mellitus. Circulation 100(8):813–819PubMed Di Carli MF, Bianco-Batlles D, Landa ME, Kazmers A, Groehn H, Muzik O et al (1999) Effects of autonomic neuropathy on coronary blood flow in patients with diabetes mellitus. Circulation 100(8):813–819PubMed
62.
go back to reference Scognamiglio R, Avogaro A, Casara D, Crepaldi C, Marin M, Palisi M et al (1998) Myocardial dysfunction and adrenergic cardiac innervation in patients with insulin-dependent diabetes mellitus. J Am Coll Cardiol 31:404–412PubMedCrossRef Scognamiglio R, Avogaro A, Casara D, Crepaldi C, Marin M, Palisi M et al (1998) Myocardial dysfunction and adrenergic cardiac innervation in patients with insulin-dependent diabetes mellitus. J Am Coll Cardiol 31:404–412PubMedCrossRef
63.
go back to reference Chottová Dvoráková M, Kuncová J, Pfeil U, McGregor GP, Svíglerová J, Slavíková J et al (1995) Cardiomyopathy in stroptozocin-induced diabetes involves intra-axonal accumulation of calcitonin gene-related peptide and altered expression of its receptor in rats. Neuroscience 134:51–58CrossRef Chottová Dvoráková M, Kuncová J, Pfeil U, McGregor GP, Svíglerová J, Slavíková J et al (1995) Cardiomyopathy in stroptozocin-induced diabetes involves intra-axonal accumulation of calcitonin gene-related peptide and altered expression of its receptor in rats. Neuroscience 134:51–58CrossRef
64.
go back to reference Cai L, Wang Y, Zhou G, Chen T, Song Y, Li X, Kang YJ (2006) Attenuation by metallothionein of early cardiac cell death via suppression of mitochondrial oxidative stress results in a prevention of diabetic cardiomyopathy. J Am Coll Cardiol 48:1688–1697PubMedCrossRef Cai L, Wang Y, Zhou G, Chen T, Song Y, Li X, Kang YJ (2006) Attenuation by metallothionein of early cardiac cell death via suppression of mitochondrial oxidative stress results in a prevention of diabetic cardiomyopathy. J Am Coll Cardiol 48:1688–1697PubMedCrossRef
65.
go back to reference Liang Q, Carlson EC, Donthi RV, Kralik PM, Shen X, Epstein PN (2002) Overexpression of metallothionein reduces diabetic cardiomyopathy. Diabetes 51:174–181PubMedCrossRef Liang Q, Carlson EC, Donthi RV, Kralik PM, Shen X, Epstein PN (2002) Overexpression of metallothionein reduces diabetic cardiomyopathy. Diabetes 51:174–181PubMedCrossRef
66.
go back to reference Matsushima S, Kinugawa S, Ide T, Matsusaka H, Inoue N, Ohta Y et al (2006) Overexpression of glutathione peroxidase attenuates myocardial remodeling and preserves diastolic function in diabetic heart. Am J Physiol Heart Circ Physiol 291:H2237–H2245PubMedCrossRef Matsushima S, Kinugawa S, Ide T, Matsusaka H, Inoue N, Ohta Y et al (2006) Overexpression of glutathione peroxidase attenuates myocardial remodeling and preserves diastolic function in diabetic heart. Am J Physiol Heart Circ Physiol 291:H2237–H2245PubMedCrossRef
67.
go back to reference Shen X, Zheng S, Metreveli NS, Epstein PN (2006) Protection of cardiac mitochondria by overexpression of MnSOD reduces diabetic cardiomyopathy. Diabetes 55:798–805PubMedCrossRef Shen X, Zheng S, Metreveli NS, Epstein PN (2006) Protection of cardiac mitochondria by overexpression of MnSOD reduces diabetic cardiomyopathy. Diabetes 55:798–805PubMedCrossRef
68.
go back to reference Westermann D, Walther T, Savvatis K, Sobirey M, Riad A, Bader M et al (2009) Gene deletion of the kinin receptor B1 attenuates cardiac inflammation and fibrosis during the development of experimental diabetic cardiomyopathy. Diabetes 58(6):1373–1381PubMedCrossRef Westermann D, Walther T, Savvatis K, Sobirey M, Riad A, Bader M et al (2009) Gene deletion of the kinin receptor B1 attenuates cardiac inflammation and fibrosis during the development of experimental diabetic cardiomyopathy. Diabetes 58(6):1373–1381PubMedCrossRef
69.
go back to reference Cesario DA, Brar R, Shivkumar K (2006) Alterations in ion channel physiology in diabetic cardiomyopathy. Endocrinol Metab Clin North Am 35:601–610 ix–xPubMedCrossRef Cesario DA, Brar R, Shivkumar K (2006) Alterations in ion channel physiology in diabetic cardiomyopathy. Endocrinol Metab Clin North Am 35:601–610 ix–xPubMedCrossRef
70.
go back to reference Zhao XY, Hu SJ, Li J, Mou Y, Chen BP, Xia Q (2006) Decreased cardiac sarcoplasmic reticulum Ca2#-ATPase activity contributes to cardiac dysfunction in streptozotocin-induced diabetic rats. J Physiol Biochem 62:1–8PubMedCrossRef Zhao XY, Hu SJ, Li J, Mou Y, Chen BP, Xia Q (2006) Decreased cardiac sarcoplasmic reticulum Ca2#-ATPase activity contributes to cardiac dysfunction in streptozotocin-induced diabetic rats. J Physiol Biochem 62:1–8PubMedCrossRef
71.
go back to reference Lopaschuk GD, Tahiliani AG, Vadlamudi RV, Katz S, McNeill JH (1983) Cardiac sarcoplasmic reticulum function in insulin- or carnitine-treated diabetic rats. Am J Physiol Heart Circ Physiol 245:H969–H976 Lopaschuk GD, Tahiliani AG, Vadlamudi RV, Katz S, McNeill JH (1983) Cardiac sarcoplasmic reticulum function in insulin- or carnitine-treated diabetic rats. Am J Physiol Heart Circ Physiol 245:H969–H976
72.
go back to reference Jweied EE, McKinney RD, Walker LA, Brodsky I, Geha AS, Massad MG et al (2005) Depressed cardiac myofilament function in human diabetes mellitus. Am J Physiol Heart Circ Physiol 289:H2478–H2483PubMedCrossRef Jweied EE, McKinney RD, Walker LA, Brodsky I, Geha AS, Massad MG et al (2005) Depressed cardiac myofilament function in human diabetes mellitus. Am J Physiol Heart Circ Physiol 289:H2478–H2483PubMedCrossRef
73.
go back to reference Khatter JC, Sadri P, Zhang M, Hoeschen RJ (1996) Myocardial angiotensin II (Ang II) receptors in diabetic rats. Ann N York Acad Sci 793:466–472CrossRef Khatter JC, Sadri P, Zhang M, Hoeschen RJ (1996) Myocardial angiotensin II (Ang II) receptors in diabetic rats. Ann N York Acad Sci 793:466–472CrossRef
74.
go back to reference Liu X, Suzuki H, Sethi R, Tappia PS, Takeda N, Dhalla NS (2006) Blockade of the renin-angiotensin system attenuates sarcolemma and sarcoplasmic reticulum remodeling in chronic diabetes. Ann N Y Acad Sci 1084:141–154PubMedCrossRef Liu X, Suzuki H, Sethi R, Tappia PS, Takeda N, Dhalla NS (2006) Blockade of the renin-angiotensin system attenuates sarcolemma and sarcoplasmic reticulum remodeling in chronic diabetes. Ann N Y Acad Sci 1084:141–154PubMedCrossRef
75.
go back to reference Yaras N, Bilginoglu A, Vassort G, Turan B (2007) Restoration of diabetes-induced abnormal local Ca2# release in cardiomyocytes by angiotensin II receptor blockade. Am J Physiol Heart Circ Physiol 292:H912–H920PubMedCrossRef Yaras N, Bilginoglu A, Vassort G, Turan B (2007) Restoration of diabetes-induced abnormal local Ca2# release in cardiomyocytes by angiotensin II receptor blockade. Am J Physiol Heart Circ Physiol 292:H912–H920PubMedCrossRef
76.
go back to reference Fiordaliso F, Cuccovillo I, Bianchi R, Bai A, Doni M, Salio M et al (2006) Cardiovascular oxidative stress is reduced by an ACE inhibitor in a rat model of streptozotocin-induced diabetes. Life Sci 79:121–129PubMedCrossRef Fiordaliso F, Cuccovillo I, Bianchi R, Bai A, Doni M, Salio M et al (2006) Cardiovascular oxidative stress is reduced by an ACE inhibitor in a rat model of streptozotocin-induced diabetes. Life Sci 79:121–129PubMedCrossRef
77.
go back to reference Eaton JW, Qian M (2002) Interactions of copper with glycated proteins: possible involvement in the etiology of diabetic neuropathy. Mol Cell Biochem 234(235):135–142PubMedCrossRef Eaton JW, Qian M (2002) Interactions of copper with glycated proteins: possible involvement in the etiology of diabetic neuropathy. Mol Cell Biochem 234(235):135–142PubMedCrossRef
78.
go back to reference Rota M, LeCapitaine N, Hosoda T, Boni A, De Angelis A, Padin-Iruegas ME et al (2006) Diabetes promotes cardiac stem cell aging and heart failure, which are prevented by deletion of the p66shc gene. Circ Res 99:44–52CrossRef Rota M, LeCapitaine N, Hosoda T, Boni A, De Angelis A, Padin-Iruegas ME et al (2006) Diabetes promotes cardiac stem cell aging and heart failure, which are prevented by deletion of the p66shc gene. Circ Res 99:44–52CrossRef
79.
go back to reference Dhallas NS, Liu X, Panagia V, Takeda N (1998) Subcellular remodeling and heart dysfunction in chronic diabetes. Cardiovasc Res 40(2):239–247CrossRef Dhallas NS, Liu X, Panagia V, Takeda N (1998) Subcellular remodeling and heart dysfunction in chronic diabetes. Cardiovasc Res 40(2):239–247CrossRef
80.
go back to reference Liu JE, Robbins C, Palmieri V, Bella JN, Roman MJ, Fabsitz R et al (2003) Association of albuminuria with systolic and diastolic left ventricular dysfunction in type 2 diabetes: the Strong Heart Study. J Am Coll Cardiol 41(11):2022–2028PubMedCrossRef Liu JE, Robbins C, Palmieri V, Bella JN, Roman MJ, Fabsitz R et al (2003) Association of albuminuria with systolic and diastolic left ventricular dysfunction in type 2 diabetes: the Strong Heart Study. J Am Coll Cardiol 41(11):2022–2028PubMedCrossRef
81.
go back to reference Paulus WJ, Tschöpe C, Sanderson JE, Rusconi C, Flachskampf FA, Rademakers FE et al (2007) How to diagnose diastolic heart failure: a consensus statement on the diagnosis of heart failure with normal left ventricular ejection fraction by the Heart Failure and Echocardiography Associations of the European Society of Cardiology. Eur Heart J 28(20):2539–2550PubMedCrossRef Paulus WJ, Tschöpe C, Sanderson JE, Rusconi C, Flachskampf FA, Rademakers FE et al (2007) How to diagnose diastolic heart failure: a consensus statement on the diagnosis of heart failure with normal left ventricular ejection fraction by the Heart Failure and Echocardiography Associations of the European Society of Cardiology. Eur Heart J 28(20):2539–2550PubMedCrossRef
82.
go back to reference Yusuf S, Pfeffer MA, Swedberg K, Granger CB, Held P, McMurray JJ et al (2003) Effects of candesartan in patients with chronic heart failure and preserved left-ventricular ejection fraction: the CHARM-preserved trial. Lancet 362(9386):777–778PubMedCrossRef Yusuf S, Pfeffer MA, Swedberg K, Granger CB, Held P, McMurray JJ et al (2003) Effects of candesartan in patients with chronic heart failure and preserved left-ventricular ejection fraction: the CHARM-preserved trial. Lancet 362(9386):777–778PubMedCrossRef
83.
go back to reference Tribouilloy C, Rusinaru D, Mahjoub H, Tartière JM, Kesri-Tartière L, Godard S et al (2008) Prognostic impact of diabetes mellitus in patients with heart failure and preserved ejection fraction: a prospective 5-year study. Heart 94(11):1450–1455PubMedCrossRef Tribouilloy C, Rusinaru D, Mahjoub H, Tartière JM, Kesri-Tartière L, Godard S et al (2008) Prognostic impact of diabetes mellitus in patients with heart failure and preserved ejection fraction: a prospective 5-year study. Heart 94(11):1450–1455PubMedCrossRef
84.
go back to reference Melenovsky V, Borlaug BA, Rosen B, Hay I, Ferruci L, Morell CH et al (2007) Cardiovascular features of heart failure with preserved ejection fraction versus non failing hypertensive left ventricular hypertrophy in the urban Baltimore community: the role of atrial remodeling/dysfunction. J Am Coll Cardiol 49(2):198–207PubMedCrossRef Melenovsky V, Borlaug BA, Rosen B, Hay I, Ferruci L, Morell CH et al (2007) Cardiovascular features of heart failure with preserved ejection fraction versus non failing hypertensive left ventricular hypertrophy in the urban Baltimore community: the role of atrial remodeling/dysfunction. J Am Coll Cardiol 49(2):198–207PubMedCrossRef
Metadata
Title
The diabetic cardiomyopathy
Authors
Roberto Tarquini
Chiara Lazzeri
Laura Pala
Carlo Maria Rotella
Gian Franco Gensini
Publication date
01-09-2011
Publisher
Springer Milan
Published in
Acta Diabetologica / Issue 3/2011
Print ISSN: 0940-5429
Electronic ISSN: 1432-5233
DOI
https://doi.org/10.1007/s00592-010-0180-x

Other articles of this Issue 3/2011

Acta Diabetologica 3/2011 Go to the issue
Obesity Clinical Trial Summary

At a glance: The STEP trials

A round-up of the STEP phase 3 clinical trials evaluating semaglutide for weight loss in people with overweight or obesity.

Developed by: Springer Medicine

Highlights from the ACC 2024 Congress

Year in Review: Pediatric cardiology

Watch Dr. Anne Marie Valente present the last year's highlights in pediatric and congenital heart disease in the official ACC.24 Year in Review session.

Year in Review: Pulmonary vascular disease

The last year's highlights in pulmonary vascular disease are presented by Dr. Jane Leopold in this official video from ACC.24.

Year in Review: Valvular heart disease

Watch Prof. William Zoghbi present the last year's highlights in valvular heart disease from the official ACC.24 Year in Review session.

Year in Review: Heart failure and cardiomyopathies

Watch this official video from ACC.24. Dr. Biykem Bozkurt discuss last year's major advances in heart failure and cardiomyopathies.