Angiotensin-converting enzyme inhibition and food restriction in diabetic mice do not correct the increased sensitivity for ischemia-reperfusion injury (original) (raw)

Myocardial susceptibility to ischemic-reperfusion injury in a prediabetic model of dietary-induced obesity

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High carbohydrate and high fat diets protect the heart against ischaemia/reperfusion injury

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Insulin resistance, abnormal energy metabolism and increased ischemic damage in the chronically infarcted rat heart.

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Size of myocardial infarction induced by ischaemia/reperfusion is unaltered in rats with metabolic syndrome

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Onset of diabetes in Zucker diabetic fatty (ZDF) rats leads to improved recovery of function after ischemia in the isolated perfused heart

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Improved cardiac metabolism and activation of the RISK pathway contributes to improved post-ischemic recovery in calorie restricted mice

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Susceptibility to myocardial ischemia reperfusion injury at early stage of type 1 diabetes in rats

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Stimulation of glucose oxidation protects against acute myocardial infarction and reperfusion injury

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Hypercholesterolemia antagonized heart adaptation and functional remodeling of the mitochondria observed in acute diabetes mellitus subjected to ischemia/reperfusion injury

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Severe Calorie Restriction Reduces Cardiometabolic Risk Factors and Protects Rat Hearts from Ischemia/Reperfusion Injury

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Indispensable role of endothelial nitric oxide synthase in caloric restriction-induced cardioprotection against ischemia-reperfusion injury

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Glucose and fatty acid metabolism in infarcted heart from streptozotocin-induced diabetic rats after 2 weeks of tissue remodeling

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Myocardial structure, function and ischaemic tolerance in a rodent model of obesity with insulin resistance

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Effects of Coronary Ischemia-Reperfusion in a Rat Model of Early Overnutrition. Role of Angiotensin Receptors

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Angiotensin II inhibition increases cellular glucose transport during reperfusion but not ischemia in pig hearts

Erik Grove

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Diabetes mellitus and the metabolic syndrome do not abolish, but might reduce, the cardioprotective effect of ischemic postconditioning

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N-Acetylcysteine and Allopurinol Synergistically Enhance Cardiac Adiponectin Content and Reduce Myocardial Reperfusion Injury in Diabetic Rats

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Reducing Caloric Intake Prevents Ischemic Injury and Myocardial Dysfunction and Affects Anesthetic Cardioprotection in Type 2 Diabetic Rats

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The protective role of glucose on ischemic-reperfused hearts: Effect of dietary fats

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High cholesterol diet effects on ischemia– reperfusion injury of the heart

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Mannose-binding lectin plays a critical role in myocardial ischaemia and reperfusion injury in a mouse model of diabetes

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Free fatty acids, but not ketone bodies, protect diabetic rat hearts during low-flow ischemia

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Glucose and insulin improve cardiac efficiency and postischemic functional recovery in perfused hearts from type 2 diabetic (db/db) mice

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Angiotensin II receptor blockage prevents diabetes-induced oxidative damage in rat heart

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Effects of Chronic Food Restriction and Exercise Training on the Recovery of Cardiac Function Following Ischemia

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The Diabetic Heart: Too Sweet for Its Own Good?

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Effect of Chronic CPT-1 Inhibition on Myocardial Ischemia-Reperfusion Injury (I/R) in a Model of Diet-Induced Obesity

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Impact of High Glucose/High Insulin and Dichloroacetate Treatment on Carbohydrate Oxidation and Functional Recovery After Low-Flow Ischemia and Reperfusion in the Isolated Perfused Rat Heart

John Chatham

2000

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Switching back to normal diet following high-fat diet feeding reduces cardiac vulnerability to ischaemia and reperfusion injury

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Caloric Restriction Stimulates Revascularization in Response to Ischemia via Adiponectin-mediated Activation of Endothelial Nitric-oxide Synthase

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