Domoic acid impairment of cardiac energetics
Alexandra Vranyac-Tramoundanas1, Joanne C Harrison, Andrew N Clarkson
1Department of Pharmacology and Toxicology, University of Otago Faculty of Medicine, Dunedin, New Zealand.
Abstract:
Excitatory mediated neuronal injury has been shown to involve a complex cascade of events. However, the associated cardiac damage reported in humans and marine animals following exposure to excitotoxins has not been well characterized. We hypothesized that the excitotoxin domoic acid can traverse cardiac cell membranes and elicit a deleterious effect on cardiac mitochondrial energetics. Domoic acid (0.05-0.25 microM; 10 min) treatment of isolated rat cardiac mitochondria produced a marked decrease of both mitochondrial flavin adenine dinucleotide (FAD)- and nicotinamide adenine linked respiratory control indices (p < 0.001). Enzymatic assays of the mitochondrial electron transport chain (complexes I-V) and the mitochondrial matrix marker enzyme citrate synthase, showed marked concentration-dependent impairment in activity and integrity following exposure to domoic acid (p < 0.01). Similar mitochondrial effects were seen following exposure to the glutamic acid analog, kainic acid (0.5-2 microM). Domoic acid (0.05-10 microM; 40 min) was shown by competitive enzyme-linked immunosorbent assay to traverse the cellular membrane of H9c2 rat cardiac myoblasts. Exposure of intact H9c2 cells to domoic acid (10 microM; 24 h) impaired complex II-III activity but did not compromise cellular viability as assessed using cell quantification or lactate dehydrogenase leakage assays. Assessment of reactive oxygen species (superoxide and hydrogen peroxide) production in both isolated cardiac mitochondria and H9c2 cardiomyocytes failed to show any significant differences following exposure to domoic acid (0.05-5 microM). This is the first study to demonstrate a direct effect of domoic acid on cardiac mitochondrial energetics. However, the absence of substantial damage to intact cardiomyocytes raises questions regarding direct toxicological effects on cardiac energetics or viability under conditions of natural domoic acid exposure.
Insights
Domoic acid directly harms cardiac mitochondria, impairing energy production. However, it did not significantly damage intact heart cells, suggesting complex toxicological effects in cardiac tissue.
Area of Science:
- Toxicology
- Neuroscience
- Cardiology
Background:
- Excitotoxicity can cause neuronal injury.
- Cardiac damage from excitotoxins is not well understood.
- Domoic acid is a known excitotoxin.
Purpose of the Study:
- Investigate domoic acid's effect on cardiac mitochondria.
- Determine if domoic acid affects cardiac cell energetics and viability.
- Examine domoic acid's ability to cross cardiac cell membranes.
Main Methods:
- Isolated rat cardiac mitochondria and H9c2 rat cardiac myoblasts were used.
- Mitochondrial respiration, electron transport chain activity, and enzyme function were assessed.
- Competitive enzyme-linked immunosorbent assay (ELISA) was used to detect domoic acid.
- Cellular viability and reactive oxygen species production were measured.
Main Results:
- Domoic acid significantly decreased mitochondrial respiratory control indices.
- Electron transport chain complex activities were impaired by domoic acid in a dose-dependent manner.
- Domoic acid permeated H9c2 cell membranes and impaired complex II-III activity.
- No significant increase in reactive oxygen species or decrease in cell viability was observed.
Conclusions:
- Domoic acid directly impacts cardiac mitochondrial energetics.
- The toxin crosses cardiac cell membranes but does not cause significant cell death.
- Further research is needed to clarify the direct toxicological impact on cardiac energetics and viability in vivo.
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