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Updated: Jun 19, 2026

Determination of Cardiac Output in a Porcine Model for Ex Vivo Pulmonary Perfusion
Published on: June 28, 2024
Prediction of extravascular burden of carbon monoxide (CO) in the human heart
Kinnera Erupaka1, Eugene N Bruce, Margaret C Bruce
1Center for Biomedical Engineering, University of Kentucky, Lexington, KY 40506-0070, USA. kinnerarey@uky.edu
Insights
Carbon monoxide (CO) poisoning can harm the heart. This study modeled CO's effect on the myocardium, finding cardiac tissue is more vulnerable to hypoxia than skeletal muscle during CO exposure and treatment.
Area of Science:
- Physiology
- Toxicology
- Computational Biology
Background:
- Carbon monoxide (CO) poisoning causes significant myocardial abnormalities.
- Understanding CO's impact on cardiac tissue is crucial for patient treatment.
- Previous models did not specifically address cardiac CO uptake and distribution.
Purpose of the Study:
- To enhance a whole-body CO model by incorporating a cardiac compartment.
- To predict myocardial carboxymyoglobin (MbCO) and oxygen tensions (P(c)O2) under various CO exposure scenarios.
- To assess the risk of myocardial injury from CO-induced hypoxia.
Main Methods:
- Developed a computational model with cardiac subcompartments (vascular and tissue).
- Simulated CO exposure at rest and during exercise at different concentrations and durations.
- Validated model predictions against experimental data under varying oxygen conditions.
Main Results:
- Cardiac tissue exhibited higher MbCO and lower P(c)O2 compared to skeletal muscle during CO exposure and therapy.
- Exercise exacerbated the decrease in myocardial P(c)O2.
- Model predictions aligned with experimental data in normoxia, hypoxia, and hyperoxia.
Conclusions:
- The myocardium is at a higher risk of hypoxic injury than skeletal muscle during CO exposure and washout, particularly at rest and moderate exercise.
- The enhanced model can predict CO uptake and distribution in human myocardium.
- This model serves as a tool to estimate myocardial injury potential and guide therapeutic interventions.
Abstract:
Clinically significant myocardial abnormalities (e.g., arrhythmias, S-T elevation) occur in patients with mild-to-severe carbon monoxide (CO) poisoning. We enhanced our previous whole body model [Bruce, E. N., M. C. Bruce, and K. Erupaka. Prediction of the rate of uptake of carbon monoxide from blood by extravascular tissues. Respir. Physiol. Neurobiol. 161(2):142-159, 2008] by adding a cardiac compartment (containing three vascular and two tissue subcompartments differing in capillary density) to predict myocardial carboxymyoglobin (MbCO) and oxygen tensions (P(c)O2) for several CO exposure regimens at rest and during exercise. Model predictions were validated with experimental data in normoxia, hypoxia, and hyperoxia. We simulated exposure at rest to 6462 ppm CO (10 min) and to 265 ppm CO (480 min), and during three levels of exercise at 20% HbCO. We compared responses of carboxyhemoglobin (HbCO), MbCO and P(c)O2 to estimate the potential for myocardial injury due to CO hypoxia. Simulation results predict that during CO exposures and subsequent therapies, cardiac tissue has higher MbCO levels and lower P(c)O2's than skeletal muscle. CO exposure during exercise further decreases P(c)O2 from resting levels. We conclude that in rest and moderate exercise, the myocardium is at greater risk for hypoxic injury than skeletal muscle during the course of CO exposure and washout. Because the model can predict CO uptake and distribution in human myocardium, it could be a tool to estimate the potential for hypoxic myocardial injury and facilitate therapeutic intervention.
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