Related Experiment Video
Updated: Jul 5, 2026

Mouse Electroacupuncture Fixation Device Fabrication for Electroacupuncture Pretreatment in Diabetic Cardiomyopathy Mouse Model
Published on: April 18, 2025
Elevated catalase and heme oxygenase-1 may contribute to improved postischaemic cardiac function in long-term type 1
Wei-Li Shen1, Mei-Fang Zhong, Wen-Long Ding
1Department of Pharmacology, Shanghai Jiao Tong University School of Medicine, Shanghai, China.
Insights
Long-term Type 1 diabetes in rats improved heart tolerance to ischemia and reperfusion injury. This enhanced cardiovascular antioxidant capacity and mitochondrial growth, offering protection against oxidative damage.
Area of Science:
- Cardiovascular Science
- Metabolic Disorders
- Oxidative Stress Research
Background:
- Increased oxidative stress is linked to diabetes complications.
- The cardiovascular antioxidant state and heart response to ischemia in long-term Type 1 diabetes are not well understood.
Purpose of the Study:
- To investigate heart tolerance to ischemia-reperfusion in long-term hyperglycemic rats.
- To assess endogenous antioxidants in the cardiovascular system of these rats.
Main Methods:
- Isolated hearts from rats with 6-month streptozocin-induced diabetes underwent global ischemia and reperfusion.
- Evaluated cardiac function, ECG, myocardial and aortic antioxidants, mitochondrial morphology, and aortic vessel function.
Main Results:
- Diabetic rat hearts showed improved post-ischemic recovery (coronary flow, left ventricular pressure) and fewer arrhythmias.
- Elevated catalase and heme oxygenase-1 levels were observed in diabetic rat myocardium and aorta.
- Enhanced aortic vasodilation and increased myocardial mitochondria size/number were noted in diabetic rats.
Conclusions:
- Long-term Type 1 diabetes in rats confers resistance to ischemia-reperfusion injury.
- Hyperglycemia may boost cardiovascular antioxidant capacity and mitochondrial biogenesis, protecting the heart.
Abstract:
1. Although increased oxidative stress has been shown repeatedly to be implicated in diabetes, the cardiovascular anti-oxidant state and heart response to ischaemia in long-term Type 1 diabetes remain largely unknown. The present study was designed to observe heart tolerance to ischaemia-reperfusion and endogenous anti-oxidants in the cardiovascular system in long-term hyperglycaemic rats. 2. Hearts from Sprague-Dawley rats surviving up to 6 months with streptozocin-induced severe hyperglycaemia (blood glucose > 20 mmol/L) were isolated and subjected to global ischaemia and reperfusion. Cardiac function, electrocardiogram and anti-oxidants in the myocardium and aorta were examined. In addition, the morphology of the myocardial mitochondria and the in vitro function of aortic vessels were assessed. 3. Hearts from diabetic rats demonstrated lower baseline heart function but had higher postischaemic coronary flow and left ventricular developed pressure compared with their respective controls (P < 0.05). In addition, hearts from diabetic animals had fewer arrhythmias (P < 0.01) and lower left ventricular end-diastolic pressure during reperfusion (P < 0.05). Higher catalase and heme oxygenase-1 content was found in the aorta and myocardium from diabetic rats (P < 0.01). In aortas from diabetic animals, acetylcholine-induced vasodilatation was enhanced and was approximately 15% after inhibition of nitric oxide synthase, compared with 0% in controls. The 15% relaxation was abrogated by heme oxygenase blockade. Mitochondria from the myocardium of diabetic rats showed significant increases in both size and number (P < 0.05). 4. Hearts of long-term Type 1 diabetic rats demonstrated improved recovery of postischaemic cardiac function and reduced reperfusion arrhythmia. Hyperglycaemia may enhance cardiovascular anti-oxidant capacity and mitochondrial neogenesis, which renders the heart resistant to ischaemia and oxidative injury.
Related Concept Videos
Type II Diabetes II: Pathophysiology
Type I Diabetes II: Pathophysiology
Coronary Artery Disease I: Introduction
Blood Studies for Cardiovascular System I: Cardiac Biomarkers
The essential diagnostic tools for detecting myocardial necrosis and monitoring individuals suspected of having acute coronary syndrome (ACS) include:
Troponins
Troponins, particularly cardiac troponins I and T, are the most precise and sensitive markers of myocardial injury. They are detectable within 4-6 hours of myocardial injury and remain...
Type I Diabetes I: Introduction

