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Assessment of Myofilament Ca2+ Sensitivity Underlying Cardiac Excitation-contraction Coupling
Published on: August 1, 2016
Mitochondrial matrix metalloproteinase activation decreases myocyte contractility in hyperhomocysteinemia
Karni S Moshal1, Srinivas M Tipparaju, Thomas P Vacek
1Department of Physiology and Biophysics, Potentia Pharmaceuticals, Louisville, KY, USA.
Abstract:
Cardiomyocyte N-methyl-d-aspartate receptor-1 (NMDA-R1) activation induces mitochondrial dysfunction. Matrix metalloproteinase protease (MMP) induction is a negative regulator of mitochondrial function. Elevated levels of homocysteine [hyperhomocysteinemia (HHCY)] activate latent MMPs and causes myocardial contractile abnormalities. HHCY is associated with mitochondrial dysfunction. We tested the hypothesis that HHCY activates myocyte mitochondrial MMP (mtMMP), induces mitochondrial permeability transition (MPT), and causes contractile dysfunction by agonizing NMDA-R1. The C57BL/6J mice were administered homocystinemia (1.8 g/l) in drinking water to induce HHCY. NMDA-R1 expression was detected by Western blot and confocal microscopy. Localization of MMP-9 in the mitochondria was determined using confocal microscopy. Ultrastructural analysis of the isolated myocyte was determined by electron microscopy. Mitochondrial permeability was measured by a decrease in light absorbance at 540 nm using the spectrophotometer. The effect of MK-801 (NMDA-R1 inhibitor), GM-6001 (MMP inhibitor), and cyclosporine A (MPT inhibitor) on myocyte contractility and calcium transients was evaluated using the IonOptix video edge track detection system and fura 2-AM. Our results demonstrate that HHCY activated the mtMMP-9 and caused MPT by agonizing NMDA-R1. A significant decrease in percent cell shortening, maximal rate of contraction (-dL/dt), and maximal rate of relaxation (+dL/dt) was observed in HHCY. The decay of calcium transient amplitude was faster in the wild type compared with HHCY. Furthermore, the HHCY-induced decrease in percent cell shortening, -dL/dt, and +dL/dt was attenuated in the mice treated with MK-801, GM-6001, and cyclosporin A. We conclude that HHCY activates mtMMP-9 and induces MPT, leading to myocyte mechanical dysfunction by agonizing NMDA-R1.
Insights
Hyperhomocysteinemia (HHCY) activates cardiomyocyte N-methyl-d-aspartate receptor-1 (NMDA-R1), leading to mitochondrial dysfunction and impaired heart contractility. Inhibiting NMDA-R1, MMPs, or MPT restored cardiac function in HHCY mice.
Area of Science:
- Cardiovascular Biology
- Mitochondrial Medicine
- Neurocardiology
Background:
- N-methyl-d-aspartate receptor-1 (NMDA-R1) activation in cardiomyocytes contributes to mitochondrial dysfunction.
- Matrix metalloproteinase (MMP) induction negatively impacts mitochondrial function.
- Hyperhomocysteinemia (HHCY) is linked to myocardial contractile abnormalities and mitochondrial dysfunction.
Purpose of the Study:
- To investigate if HHCY activates myocyte mitochondrial MMP (mtMMP), induces mitochondrial permeability transition (MPT), and causes contractile dysfunction via NMDA-R1 agonism.
- To elucidate the role of NMDA-R1 in HHCY-induced cardiac pathology.
Main Methods:
- Induced HHCY in C57BL/6J mice using homocysteinemia in drinking water.
- Assessed NMDA-R1 expression, mtMMP-9 localization, and myocyte ultrastructure using Western blot, confocal microscopy, and electron microscopy.
- Measured mitochondrial permeability, myocyte contractility, and calcium transients using spectrophotometry, IonOptix system, and fura 2-AM.
- Evaluated the effects of NMDA-R1 inhibitor (MK-801), MMP inhibitor (GM-6001), and MPT inhibitor (cyclosporine A).
Main Results:
- HHCY activated mtMMP-9 and induced MPT by agonizing NMDA-R1.
- HHCY significantly decreased percent cell shortening, maximal contraction rate (-dL/dt), and maximal relaxation rate (+dL/dt).
- Calcium transient decay was faster in HHCY mice; treatment with inhibitors attenuated HHCY-induced contractile dysfunction.
Conclusions:
- HHCY activates mtMMP-9 and induces MPT, leading to myocyte mechanical dysfunction.
- NMDA-R1 agonism is a key mechanism in HHCY-induced cardiac dysfunction.
- Targeting NMDA-R1, MMPs, or MPT pathways may offer therapeutic strategies for HHCY-related heart conditions.
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