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A novel mechanism of regulation of cardiac contractility by mitochondrial functional state.
- Source :
-
FASEB journal : official publication of the Federation of American Societies for Experimental Biology [FASEB J] 2004 Aug; Vol. 18 (11), pp. 1219-27. - Publication Year :
- 2004
-
Abstract
- It is generally considered that mitochondria regulate cardiac cell contractility by providing ATP for cellular ATPases and by participating in Ca2+ homeostasis. However, other possible mechanisms by which mitochondria can influence contractility have been largely overlooked. Here, we demonstrate that inhibition of the mitochondrial electron transport chain strongly increases Ca2+-dependent and independent isometric force development in rat ventricular fibers with selectively permeabilized sarcolemma. This effect is unrelated to the ATP-generating activity of mitochondria or Ca2+ homeostasis. Furthermore, various conditions that increase K+ accumulation in the mitochondrial matrix (activation of ATP- or Ca2+-dependent K+ channels as well as inhibition of the K+ efflux pathway via the K+/H+ exchanger) induce a similar mechanical response. Modulators of mitochondrial function that augment isometric force also cause swelling of mitochondria in the vicinity of myofibrils in situ, as shown by confocal microscopy. Osmotic compression of intracellular structures abolishes the effect of mitochondria-induced force modulation, suggesting a mechanical basis for the interaction between the organelles. These findings suggest a novel mechanism for cellular regulation of myofibrillar function, whereby increases in mitochondrial volume can impose mechanical constraints inside the cell, leading to an increase in force developed by myofibrils.
- Subjects :
- Adenosine Triphosphate metabolism
Animals
Benzimidazoles pharmacology
Bongkrekic Acid pharmacology
Calcium Signaling drug effects
Carbonyl Cyanide p-Trifluoromethoxyphenylhydrazone pharmacology
Clonazepam pharmacology
Creatine Kinase deficiency
Creatine Kinase genetics
Creatine Kinase, MM Form
Creatine Kinase, Mitochondrial Form
Electron Transport drug effects
Energy Metabolism drug effects
Ion Transport drug effects
Isoenzymes deficiency
Isoenzymes genetics
Male
Mice
Mice, Inbred C57BL
Mice, Knockout
Mitochondria, Heart drug effects
Mitochondria, Heart ultrastructure
Myocardial Contraction drug effects
Nigericin pharmacology
Oligomycins pharmacology
Pinacidil pharmacology
Potassium metabolism
Potassium-Hydrogen Antiporters metabolism
Quinine pharmacology
Rats
Ruthenium Red pharmacology
Sarcomeres drug effects
Sarcomeres ultrastructure
Sarcoplasmic Reticulum enzymology
Sodium Azide pharmacology
Sodium-Calcium Exchanger antagonists & inhibitors
Stress, Mechanical
Tetraethylammonium pharmacology
Thapsigargin pharmacology
Thiazepines pharmacology
Valinomycin pharmacology
Cell Compartmentation
Clonazepam analogs & derivatives
Mitochondria, Heart physiology
Myocardial Contraction physiology
Myofibrils physiology
Subjects
Details
- Language :
- English
- ISSN :
- 1530-6860
- Volume :
- 18
- Issue :
- 11
- Database :
- MEDLINE
- Journal :
- FASEB journal : official publication of the Federation of American Societies for Experimental Biology
- Publication Type :
- Academic Journal
- Accession number :
- 15284222
- Full Text :
- https://doi.org/10.1096/fj.04-1508com