Regulation of Intracellular and Mitochondrial Sodium in Health and Disease
Open Access
- 13 February 2009
- journal article
- review article
- Published by Wolters Kluwer Health in Circulation Research
- Vol. 104 (3), 292-303
- https://doi.org/10.1161/circresaha.108.189050
Abstract
The transmembrane sodium gradient is essential for both excitability of the cardiac cell and the regulation of the cytoplasmic concentrations of Ca and protons. In addition, movements of Na across the mitochondrial membrane affect matrix protons and calcium. In the first part of the review, we discuss the most important pathways responsible for sarcolemmal and mitochondrial sodium movements. The bulk of the review considers the changes of intracellular Na concentration ([Na+]i) that occur in disease, specifically, ischemia, reperfusion, and heart failure. We review evidence implicating the increase of intracellular sodium to either increased influx of sodium (via either sodium channels or sodium/hydrogen exchange) or, alternatively, to decreased efflux on the Na/K pump. Although much has been learned about sodium regulation in the heart, there are still many unanswered questions, particularly concerning mitochondrial Na regulation.Keywords
This publication has 135 references indexed in Scilit:
- Why did the NHE inhibitor clinical trials fail?Journal of Molecular and Cellular Cardiology, 2009
- Chronic inhibition of the Na+/H+‐ exchanger causes regression of hypertrophy, heart failure, and ionic and electrophysiological remodellingBritish Journal of Pharmacology, 2008
- Analysis of cardiac mitochondrial Na+–Ca2+ exchanger kinetics with a biophysical model of mitochondrial Ca2+ handing suggests a 3: 1 stoichiometryThe Journal of Physiology, 2008
- Cytoplasmic Na+‐dependent modulation of mitochondrial Ca2+ via electrogenic mitochondrial Na+–Ca2+ exchangeThe Journal of Physiology, 2008
- The cardiac persistent sodium current: an appealing therapeutic target?British Journal of Pharmacology, 2008
- Mechanism of action of the new anti-ischemia drug ranolazineClinical Research in Cardiology, 2007
- Excitation-contraction coupling and mitochondrial energeticsBasic Research in Cardiology, 2007
- Structural and functional analysis of the Na+/H+ exchangerBiochemical Journal, 2007
- Elevated Cytosolic Na + Decreases Mitochondrial Ca 2+ Uptake During Excitation-Contraction Coupling and Impairs Energetic Adaptation in Cardiac MyocytesCirculation Research, 2006
- The mitochondrial calcium uniporter is a highly selective ion channelNature, 2004