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Published on: May 12, 2019
Myocardial cytochrome oxidase activity is decreased following carbon monoxide exposure
Kelechi N Iheagwara1, Stephen R Thom, Clifford S Deutschman
1Department of Anesthesiology and Critical Care Medicine, The Children's Hospital of Philadelphia, PA, USA.
Abstract:
Carbon monoxide (CO) inhalation often leads to cardiac dysfunction, dysrhythmias, ischemia, infarction, and death. However, the underlying mechanism of CO toxicity is poorly understood. We hypothesize that inhaled CO interrupts myocardial oxidative phosphorylation by decreasing the activity of myocardial cytochrome oxidase (CcOX), the terminal oxidase of the electron transport chain. Male C57Bl6 mice were exposed to either 1000 ppm (0.1%) CO or air for 3 h. Cardiac ventricles were harvested and mitochondria were isolated. CcOX kinetics and heme aa(3) content were measured. V(max), K(m), and turnover number were determined. Levels of CcOX subunit I message and protein were evaluated. Carboxyhemoglobin (COHb) levels were measured and tissue hypoxia was assessed with immunohistochemistry for pimonidazole hydrochloride. CO significantly decreased myocardial CcOX activity and V(max) without altering K(m). Heme aa(3) content and CcOX I protein levels significantly decreased following CO exposure while enzyme turnover number and CcOX I mRNA levels remained unchanged. CO exposure increased COHb levels without evidence of tissue hypoxia as compared to sham and hypoxic controls. Decreased CcOX activity following CO inhalation was likely due to decreased heme aa(3) and CcOX subunit I content. Importantly, myocardial CcOX impairment could underlie CO induced cardiac dysfunction.
Insights
Carbon monoxide (CO) inhalation impairs heart function by reducing myocardial cytochrome oxidase (CcOX) activity. This occurs due to decreased CcOX protein and heme content, impacting cardiac oxidative phosphorylation.
Area of Science:
- Biochemistry
- Cardiovascular Physiology
- Toxicology
Background:
- Carbon monoxide (CO) inhalation is a common cause of cardiac dysfunction, but its mechanisms remain unclear.
- CO toxicity can lead to severe cardiac events including ischemia, infarction, and death.
Purpose of the Study:
- To investigate the hypothesis that CO impairs myocardial oxidative phosphorylation by inhibiting cytochrome oxidase (CcOX) activity.
- To elucidate the molecular mechanisms underlying CO-induced cardiac dysfunction.
Main Methods:
- Exposure of C57Bl6 mice to 1000 ppm CO or air for 3 hours.
- Isolation of cardiac mitochondria for measurement of CcOX kinetics, Vmax, Km, turnover number, and heme aa(3) content.
- Assessment of CcOX subunit I mRNA and protein levels, carboxyhemoglobin (COHb), and tissue hypoxia.
Main Results:
- CO exposure significantly decreased myocardial CcOX activity and Vmax, with reduced heme aa(3) content and CcOX I protein levels.
- CO inhalation increased COHb levels but did not induce significant tissue hypoxia.
- Enzyme turnover number and CcOX I mRNA levels remained unchanged, suggesting post-transcriptional regulation.
Conclusions:
- Inhaled CO impairs cardiac function by decreasing myocardial CcOX activity, primarily through reduced heme aa(3) and CcOX I protein content.
- This impairment of myocardial CcOX activity is a key mechanism underlying CO-induced cardiac dysfunction.
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