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Updated: Jun 27, 2026

Modeling and Evaluation of Murine Diabetic Cardiomyopathy Model
Published on: November 29, 2024
Effects of cyclooxygenase-2 gene inactivation on cardiac autonomic and left ventricular function in experimental
Aaron P Kellogg1, Kimber Converso, Tim Wiggin
1University of Michigan, Department of Internal Medicine, Ann Arbor, MI, USA.
Abstract:
Glucose-mediated oxidative stress and the upregulation of cyclooxygenase (COX)-2 pathway activity have been implicated in the pathogenesis of several vascular complications of diabetes including diabetic neuropathy. However, in nondiabetic subjects, the cardiovascular safety of selective COX-2 inhibition is controversial. The aim of this study was to explore the links between hyperglycemia, oxidative stress, activation of the COX-2 pathway, cardiac sympathetic integrity, and the development of left ventricular (LV) dysfunction in experimental diabetes. R wave-to-R wave interval (R-R interval) and parameters of LV function measured by echocardiography using 1% isoflurane, LV sympathetic nerve fiber density, LV collagen content, and markers of myocardial oxidative stress, inflammation, and PG content were assessed after 6 mo in control and diabetic COX-2-deficient (COX-2(-/-)) and littermate, wild-type (COX-2(+/+)) mice. There were no differences in blood glucose, LV echocardiographic measures, collagen content, sympathetic nerve fiber density, and markers of oxidative stress and inflammation between nondiabetic (ND) COX-2(+/+) and COX-2(-/-) mice at baseline and thereafter. After 6 mo, diabetic COX-2(+/+) mice developed significant deteriorations in the R-R interval and signs of LV dysfunction. These were associated with a loss of LV sympathetic nerve fiber density, increased LV collagen content, and a significant increase in myocardial oxidative stress and inflammation compared with those of ND mice. Diabetic COX-2(-/-) mice were protected against all these biochemical, structural, and functional deficits. These data suggest that in experimental diabetes, selective COX-2 inactivation confers protection against sympathetic denervation and LV dysfunction by reducing intramyocardial oxidative stress, inflammation, and myocardial fibrosis.
Insights
Selective inhibition of cyclooxygenase-2 (COX-2) protects against diabetic cardiac complications. Diabetic mice lacking COX-2 showed reduced oxidative stress, inflammation, and fibrosis, preserving cardiac function and sympathetic integrity.
Area of Science:
- Cardiovascular Research
- Diabetology
- Molecular Biology
Background:
- Glucose-mediated oxidative stress and cyclooxygenase-2 (COX-2) pathway activation contribute to diabetic vascular complications.
- Cardiovascular safety of selective COX-2 inhibition is debated in non-diabetic individuals.
Purpose of the Study:
- Investigate the relationship between hyperglycemia, oxidative stress, COX-2 activation, cardiac sympathetic integrity, and left ventricular (LV) dysfunction in experimental diabetes.
- Determine the protective effects of COX-2 deficiency on cardiac function and pathology in diabetic mice.
Main Methods:
- Assessed R-R interval, LV function (echocardiography), LV sympathetic nerve fiber density, LV collagen content, and myocardial markers of oxidative stress, inflammation, and prostaglandins (PG) in control and diabetic COX-2-deficient (COX-2(-/-)) and wild-type (COX-2(+/+)) mice after 6 months.
- Utilized 1% isoflurane for echocardiography measurements.
Main Results:
- Diabetic COX-2(+/+) mice exhibited deteriorated R-R intervals and LV dysfunction, accompanied by reduced LV sympathetic nerve density, increased LV collagen, and elevated myocardial oxidative stress and inflammation.
- Diabetic COX-2(-/-) mice were protected from these detrimental biochemical, structural, and functional changes.
- No significant differences were observed in baseline parameters between non-diabetic COX-2(+/+) and COX-2(-/-) mice.
Conclusions:
- Selective COX-2 inactivation protects against sympathetic denervation and LV dysfunction in experimental diabetes.
- COX-2 deficiency mitigates intramyocardial oxidative stress, inflammation, and fibrosis in diabetic conditions.
- Targeting the COX-2 pathway may offer a therapeutic strategy for diabetic cardiovascular complications.
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