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Modeling and Evaluation of Murine Diabetic Cardiomyopathy Model
Published on: November 29, 2024
Diabetic cardiomyopathy is associated with defective myocellular copper regulation and both defects are rectified by
Shaoping Zhang, Hong Liu, Greeshma V Amarsingh
1The School of Biological Sciences, Faculty of Science, University of Auckland, Auckland, New Zealand. g.cooper@auckland.ac.nz.
Insights
Diabetic cardiomyopathy (DCM) involves impaired copper metabolism. Treatment with triethylenetetramine (TETA) restored myocardial copper levels and cardiac function in diabetic rats, suggesting TETA as a potential therapy for DCM.
Area of Science:
- Biochemistry
- Cardiology
- Metabolomics
Background:
- Heart disease is a leading cause of death in diabetic patients.
- Defective copper metabolism is implicated in the pathogenesis of diabetic cardiomyopathy (DCM).
Purpose of the Study:
- To investigate myocardial copper status and key copper-proteins in DCM.
- To determine the effects of triethylenetetramine (TETA) on copper regulation in DCM.
Main Methods:
- Streptozotocin (STZ)-induced diabetes in Wistar rats with or without TETA treatment.
- Assessment of cardiac function using isolated-perfused working hearts.
- Measurement of myocardial copper content using PIXE/RBS.
- Analysis of copper-binding and transport proteins via RT-qPCR, western blotting, and immunofluorescence microscopy.
Main Results:
- Diabetes significantly reduced left-ventricular (LV) copper levels and cardiac function.
- TETA treatment normalized LV copper levels and cardiac function in diabetic rats.
- TETA modulated the expression and localization of copper transporters (CTR1, CTR2) and copper chaperones (CCS, SOD1), improving antioxidant defenses.
Conclusions:
- Myocardial copper deficiency and impaired copper transport are key defects in diabetic LV impairment.
- TETA effectively restores copper regulation, offering a potential therapeutic strategy for DCM.
Background:
Heart disease is the leading cause of death in diabetic patients, and defective copper metabolism may play important roles in the pathogenesis of diabetic cardiomyopathy (DCM). The present study sought to determine how myocardial copper status and key copper-proteins might become impaired by diabetes, and how they respond to treatment with the Cu (II)-selective chelator triethylenetetramine (TETA) in DCM.
Methods:
Experiments were performed in Wistar rats with streptozotocin (STZ)-induced diabetes with or without TETA treatment. Cardiac function was analyzed in isolated-perfused working hearts, and myocardial total copper content measured by particle-induced x-ray emission spectroscopy (PIXE) coupled with Rutherford backscattering spectrometry (RBS). Quantitative expression (mRNA and protein) and/or activity of key proteins that mediate LV-tissue-copper binding and transport, were analyzed by combined RT-qPCR, western blotting, immunofluorescence microscopy, and enzyme activity assays. Statistical analysis was performed using Student's t-tests or ANOVA and p-values of < 0.05 have been considered significant.
Results:
Left-ventricular (LV) copper levels and function were severely depressed in rats following 16-weeks' diabetes, but both were unexpectedly normalized 8-weeks after treatment with TETA was instituted. Localized myocardial copper deficiency was accompanied by decreased expression and increased polymerization of the copper-responsive transition-metal-binding metallothionein proteins (MT1/MT2), consistent with impaired anti-oxidant defences and elevated susceptibility to pro-oxidant stress. Levels of the high-affinity copper transporter-1 (CTR1) were depressed in diabetes, consistent with impaired membrane copper uptake, and were not modified by TETA which, contrastingly, renormalized myocardial copper and increased levels and cell-membrane localization of the low-affinity copper transporter-2 (CTR2). Diabetes also lowered indexes of intracellular (IC) copper delivery via the copper chaperone for superoxide dismutase (CCS) to its target cuproenzyme, superoxide dismutase-1 (SOD1): this pathway was rectified by TETA treatment, which normalized SOD1 activity with consequent bolstering of anti-oxidant defenses. Furthermore, diabetes depressed levels of additional intracellular copper-transporting proteins, including antioxidant-protein-1 (ATOX1) and copper-transporting-ATPase-2 (ATP7B), whereas TETA elevated copper-transporting-ATPase-1 (ATP7A).
Conclusions:
Myocardial copper deficiency and defective cellular copper transport/trafficking are revealed as key molecular defects underlying LV impairment in diabetes, and TETA-mediated restoration of copper regulation provides a potential new class of therapeutic molecules for DCM.
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