Please use this identifier to cite or link to this item:http://hdl.handle.net/20.500.12105/5535
Title
Defective sarcoplasmic reticulum-mitochondria calcium exchange in aged mouse myocardium
Author(s)
Fernandez-Sanz, C. | Ruiz-Meana, Marisol | Miro-Casas, E. | Nunez, Estefania CNIC | Castellano, J. | Loureiro, Marta CNIC | Barba, Ignasi | Poncelas, M. | Rodriguez-Sinovas, A. | Vazquez, Jesus CNIC | Garcia-Dorado, David
Date issued
2014
Citation
Cell Death Dis. 2014; 5:e1573
Language
Inglés
Abstract
Mitochondrial alterations are critically involved in increased vulnerability to disease during aging. We investigated the contribution of mitochondria-sarcoplasmic reticulum (SR) communication in cardiomyocyte functional alterations during aging. Heart function (echocardiography) and ATP/phosphocreatine (NMR spectroscopy) were preserved in hearts from old mice (420 months) with respect to young mice (5-6 months). Mitochondrial membrane potential and resting O-2 consumption were similar in mitochondria from young and old hearts. However, maximal ADP-stimulated O-2 consumption was specifically reduced in interfibrillar mitochondria from aged hearts. Second generation proteomics disclosed an increased mitochondrial protein oxidation in advanced age. Because energy production and oxidative status are regulated by mitochondrial Ca2+, we investigated the effect of age on mitochondrial Ca2+ uptake. Although no age-dependent differences were found in Ca2+ uptake kinetics in isolated mitochondria, mitochondrial Ca2+ uptake secondary to SR Ca2+ release was significantly reduced in cardiomyocytes from old hearts, and this effect was associated with decreased NAD(P)H regeneration and increased mitochondrial ROS upon increased contractile activity. Immunofluorescence and proximity ligation assay identified the defective communication between mitochondrial voltage-dependent anion channel and SR ryanodine receptor (RyR) in cardiomyocytes from aged hearts associated with altered Ca2+ handling. Age-dependent alterations in SR Ca2+ transfer to mitochondria and in Ca2+ handling could be reproduced in cardiomyoctes from young hearts after interorganelle disruption with colchicine, at concentrations that had no effect in aged cardiomyocytes or isolated mitochondria. Thus, defective SR-mitochondria communication underlies inefficient interorganelle Ca2+ exchange that contributes to energy demand/supply mistmach and oxidative stress in the aged heart.
Subject
TRAP MASS-SPECTROMETRY | QUANTITATIVE PROTEOMICS | ENDOPLASMIC-RETICULUM | RYANODINE RECEPTORS | CARDIAC MYOCYTES | OXIDATIVE STRESS | HEART-FAILURE | INTERFIBRILLAR MITOCHONDRIA | PERMEABILITY TRANSITION | REDOX MODIFICATION
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