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Carbonic anhydrase activation is associated with worsened pathological remodeling in human ischemic diabetic
Daniele Torella1, Georgina M Ellison, Michele Torella
1Molecular and Cellular Cardiology, Department of Medical and Surgical Sciences, Magna Graecia University, Catanzaro, Italy.
Insights
Diabetic heart disease involves elevated carbonic anhydrases (CAs) in the heart. Targeting CA-I and CA-II may offer new treatments for diabetic cardiomyopathy.
Area of Science:
- Cardiovascular Research
- Endocrinology
- Molecular Biology
Background:
- Diabetes mellitus (DM) negatively impacts heart tissue through various mechanisms.
- The role of carbonic anhydrases (CAs) in diabetic cardiomyopathy remains largely unexplored, despite their known involvement in diabetic microangiopathy.
Purpose of the Study:
- To investigate the role and expression of carbonic anhydrases (CAs) in the myocardium of patients with type 2 diabetes (DM-T2) and diabetic cardiomyopathy.
- To elucidate the specific functions of CA-I and CA-II in the diabetic heart.
Main Methods:
- Analysis of left ventricular myocardial samples from DM-T2 patients and non-diabetic (NDM) individuals undergoing coronary revascularization.
- In vitro studies using high glucose conditions to assess the effects of CA-I and CA-II on endothelial cells and cardiomyocytes.
- Measurement of capillary density, myocyte hypertrophy, and apoptosis.
Main Results:
- Myocardial CA-I and CA-II levels were significantly higher in DM-T2 patients compared to NDM patients.
- Elevated CA-I was linked to reduced capillary density and endothelial cell apoptosis, while CA-II was associated with cardiomyocyte hypertrophy and apoptosis, mediated by sodium-hydrogen exchanger-1.
- MicroRNA-23b, a repressor of CA-II, was downregulated in DM-T2 hearts.
Conclusions:
- Carbonic anhydrase activation is significantly increased in human diabetic ischemic cardiomyopathy.
- These findings suggest that CA-I and CA-II play critical roles in the pathogenesis of diabetic heart disease.
- Targeting CA-I and CA-II presents a potential therapeutic strategy for diabetic heart failure.
Background:
Diabetes mellitus (DM) has multifactorial detrimental effects on myocardial tissue. Recently, carbonic anhydrases (CAs) have been shown to play a major role in diabetic microangiopathy but their role in the diabetic cardiomyopathy is still unknown.
Methods And Results:
We obtained left ventricular samples from patients with DM type 2 (DM-T2) and nondiabetic (NDM) patients with postinfarct heart failure who were undergoing surgical coronary revascularization. Myocardial levels of CA-I and CA-II were 6- and 11-fold higher, respectively, in DM-T2 versus NDM patients. Elevated CA-I expression was mainly localized in the cardiac interstitium and endothelial cells. CA-I induced by high glucose levels hampers endothelial cell permeability and determines endothelial cell apoptosis in vitro. Accordingly, capillary density was significantly lower in the DM-T2 myocardial samples (mean±SE=2152±146 versus 4545±211/mm(2)). On the other hand, CA-II was mainly upregulated in cardiomyocytes. The latter was associated with sodium-hydrogen exchanger-1 hyperphosphorylation, exaggerated myocyte hypertrophy (cross-sectional area 565±34 versus 412±27 μm(2)), and apoptotic death (830±54 versus 470±34 per 10(6) myocytes) in DM-T2 versus NDM patients. CA-II is activated by high glucose levels and directly induces cardiomyocyte hypertrophy and death in vitro, which are prevented by sodium-hydrogen exchanger-1 inhibition. CA-II was shown to be a direct target for repression by microRNA-23b, which was downregulated in myocardial samples from DM-T2 patients. MicroRNA-23b is regulated by p38 mitogen-activated protein kinase, and it modulates high-glucose CA-II-dependent effects on cardiomyocyte survival in vitro.
Conclusions:
Myocardial CA activation is significantly elevated in human diabetic ischemic cardiomyopathy. These data may open new avenues for targeted treatment of diabetic heart failure.
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