Related Experiment Video
Updated: Mar 2, 2026

Model of Ischemic Heart Disease and Video-Based Comparison of Cardiomyocyte Contraction Using hiPSC-Derived Cardiomyocytes
Published on: May 5, 2020
Modeling oxygen requirements in ischemic cardiomyocytes
Anthony D McDougal1, C Forbes Dewey2
1Departments of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139.
Insights
This study models cardiomyocyte metabolism to predict energy levels during heart attacks. Even low oxygen levels can sustain heart cells, suggesting collateral circulation is vital during ischemia/reperfusion injury.
Area of Science:
- Cardiovascular Biology
- Metabolic Modeling
- Computational Biology
Background:
- Heart disease is a leading global cause of death.
- Ischemia/reperfusion injury significantly damages the heart.
- Predicting cardiomyocyte metabolic state during ischemia is challenging.
Purpose of the Study:
- To explore cardiomyocyte energetic sustainability during hypoxia.
- To model cellular metabolism and predict ATP levels.
- To understand metabolic responses to ischemia and reperfusion.
Main Methods:
- Modeled cardiomyocyte glycolytic metabolism using coupled ordinary differential equations.
- Simulated reduced oxygen levels and ATP consumption rates.
- Tracked intracellular biochemical species over time.
Main Results:
- Identified a transition point between sustainable and unsustainable ATP concentrations.
- Demonstrated that low oxygen concentrations can support essential cellular functions.
- Found a near-linear relationship between oxygen levels and ATP consumption rate for sustainability.
- Calculated a critical extracellular O2 concentration of ~0.007 mm for non-beating cardiomyocytes.
Conclusions:
- The model predicts cardiomyocyte condition during ischemia.
- Low oxygen levels can sustain basic energy needs, highlighting collateral circulation's importance.
- The model offers a framework for testing interventions against reperfusion injury.
Abstract:
Heart disease remains the leading cause of death globally. Although reperfusion following myocardial ischemia can prevent death by restoring nutrient flow, ischemia/reperfusion injury can cause significant heart damage. The mechanisms that drive ischemia/reperfusion injury are not well understood; currently, few methods can predict the state of the cardiac muscle cell and its metabolic conditions during ischemia. Here, we explored the energetic sustainability of cardiomyocytes, using a model for cellular metabolism to predict the levels of ATP following hypoxia. We modeled glycolytic metabolism with a system of coupled ordinary differential equations describing the individual metabolic reactions within the cardiomyocyte over time. Reduced oxygen levels and ATP consumption rates were simulated to characterize metabolite responses to ischemia. By tracking biochemical species within the cell, our model enables prediction of the cell's condition up to the moment of reperfusion. The simulations revealed a distinct transition between energetically sustainable and unsustainable ATP concentrations for various energetic demands. Our model illustrates how even low oxygen concentrations allow the cell to perform essential functions. We found that the oxygen level required for a sustainable level of ATP increases roughly linearly with the ATP consumption rate. An extracellular O2 concentration of ∼0.007 mm could supply basic energy needs in non-beating cardiomyocytes, suggesting that increased collateral circulation may provide an important source of oxygen to sustain the cardiomyocyte during extended ischemia. Our model provides a time-dependent framework for studying various intervention strategies to change the outcome of reperfusion.
More Related Videos
08:22In vitro Assessment of Myocardial Protection following Hypothermia-Preconditioning in a Human Cardiac Myocytes Model
Published on: October 27, 2020
11:26Analyzing Oxygen Consumption Rate in Primary Cultured Mouse Neonatal Cardiomyocytes Using an Extracellular Flux Analyzer
Published on: February 13, 2019