Cargando…

Carbonic Anhydrase Activation Is Associated With Worsened Pathological Remodeling in Human Ischemic Diabetic Cardiomyopathy

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 v...

Descripción completa

Detalles Bibliográficos
Autores principales: Torella, Daniele, Ellison, Georgina M., Torella, Michele, Vicinanza, Carla, Aquila, Iolanda, Iaconetti, Claudio, Scalise, Mariangela, Marino, Fabiola, Henning, Beverley J., Lewis, Fiona C., Gareri, Clarice, Lascar, Nadia, Cuda, Giovanni, Salvatore, Teresa, Nappi, Gianantonio, Indolfi, Ciro, Torella, Roberto, Cozzolino, Domenico, Sasso, Ferdinando Carlo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4187518/
https://www.ncbi.nlm.nih.gov/pubmed/24670789
http://dx.doi.org/10.1161/JAHA.113.000434
_version_ 1782338188011896832
author Torella, Daniele
Ellison, Georgina M.
Torella, Michele
Vicinanza, Carla
Aquila, Iolanda
Iaconetti, Claudio
Scalise, Mariangela
Marino, Fabiola
Henning, Beverley J.
Lewis, Fiona C.
Gareri, Clarice
Lascar, Nadia
Cuda, Giovanni
Salvatore, Teresa
Nappi, Gianantonio
Indolfi, Ciro
Torella, Roberto
Cozzolino, Domenico
Sasso, Ferdinando Carlo
author_facet Torella, Daniele
Ellison, Georgina M.
Torella, Michele
Vicinanza, Carla
Aquila, Iolanda
Iaconetti, Claudio
Scalise, Mariangela
Marino, Fabiola
Henning, Beverley J.
Lewis, Fiona C.
Gareri, Clarice
Lascar, Nadia
Cuda, Giovanni
Salvatore, Teresa
Nappi, Gianantonio
Indolfi, Ciro
Torella, Roberto
Cozzolino, Domenico
Sasso, Ferdinando Carlo
author_sort Torella, Daniele
collection PubMed
description 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.
format Online
Article
Text
id pubmed-4187518
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher Blackwell Publishing Ltd
record_format MEDLINE/PubMed
spelling pubmed-41875182014-11-03 Carbonic Anhydrase Activation Is Associated With Worsened Pathological Remodeling in Human Ischemic Diabetic Cardiomyopathy Torella, Daniele Ellison, Georgina M. Torella, Michele Vicinanza, Carla Aquila, Iolanda Iaconetti, Claudio Scalise, Mariangela Marino, Fabiola Henning, Beverley J. Lewis, Fiona C. Gareri, Clarice Lascar, Nadia Cuda, Giovanni Salvatore, Teresa Nappi, Gianantonio Indolfi, Ciro Torella, Roberto Cozzolino, Domenico Sasso, Ferdinando Carlo J Am Heart Assoc Original Research 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. Blackwell Publishing Ltd 2014-04-25 /pmc/articles/PMC4187518/ /pubmed/24670789 http://dx.doi.org/10.1161/JAHA.113.000434 Text en © 2014 The Authors. Published on behalf of the American Heart Association, Inc., by Wiley Blackwell. This is an open access article under the terms of the Creative Commons Attribution‐NonCommercial (http://creativecommons.org/licenses/by-nc/3.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Original Research
Torella, Daniele
Ellison, Georgina M.
Torella, Michele
Vicinanza, Carla
Aquila, Iolanda
Iaconetti, Claudio
Scalise, Mariangela
Marino, Fabiola
Henning, Beverley J.
Lewis, Fiona C.
Gareri, Clarice
Lascar, Nadia
Cuda, Giovanni
Salvatore, Teresa
Nappi, Gianantonio
Indolfi, Ciro
Torella, Roberto
Cozzolino, Domenico
Sasso, Ferdinando Carlo
Carbonic Anhydrase Activation Is Associated With Worsened Pathological Remodeling in Human Ischemic Diabetic Cardiomyopathy
title Carbonic Anhydrase Activation Is Associated With Worsened Pathological Remodeling in Human Ischemic Diabetic Cardiomyopathy
title_full Carbonic Anhydrase Activation Is Associated With Worsened Pathological Remodeling in Human Ischemic Diabetic Cardiomyopathy
title_fullStr Carbonic Anhydrase Activation Is Associated With Worsened Pathological Remodeling in Human Ischemic Diabetic Cardiomyopathy
title_full_unstemmed Carbonic Anhydrase Activation Is Associated With Worsened Pathological Remodeling in Human Ischemic Diabetic Cardiomyopathy
title_short Carbonic Anhydrase Activation Is Associated With Worsened Pathological Remodeling in Human Ischemic Diabetic Cardiomyopathy
title_sort carbonic anhydrase activation is associated with worsened pathological remodeling in human ischemic diabetic cardiomyopathy
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4187518/
https://www.ncbi.nlm.nih.gov/pubmed/24670789
http://dx.doi.org/10.1161/JAHA.113.000434
work_keys_str_mv AT torelladaniele carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT ellisongeorginam carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT torellamichele carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT vicinanzacarla carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT aquilaiolanda carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT iaconetticlaudio carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT scalisemariangela carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT marinofabiola carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT henningbeverleyj carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT lewisfionac carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT garericlarice carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT lascarnadia carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT cudagiovanni carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT salvatoreteresa carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT nappigianantonio carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT indolficiro carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT torellaroberto carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT cozzolinodomenico carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy
AT sassoferdinandocarlo carbonicanhydraseactivationisassociatedwithworsenedpathologicalremodelinginhumanischemicdiabeticcardiomyopathy