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Updated: Jun 3, 2026

A Flow Cytometry-based Assay for Measuring Mitochondrial Membrane Potential in Cardiac Myocytes After Hypoxia/Reoxygenation
Published on: July 13, 2018
Targeting the mitochondrial permeability transition: cardiac ischemia-reperfusion versus carcinogenesis
Sabzali Javadov1, J Craig Hunter, Giselle Barreto-Torres
1Department of Physiology, School of Medicine, University of Puerto Rico, San Juan, PR 00936-5067, USA. sabzali.javadov@upr.edu
Abstract:
Cardiovascular diseases and cancer continue to be major causes of death worldwide, and despite intensive research only modest progress has been reached in reducing the morbidity and mortality of these awful diseases. Mitochondria are broadly accepted as the key organelles that play a crucial role in cell life and death. They provide cells with ATP produced via oxidative phosphorylation under physiological conditions, and initiate cell death through both apoptosis and necrosis in response to severe stress. Oxidative stress accompanied by calcium overload and ATP depletion induces the mitochondrial permeability transition (mPT) with formation of pathological, non-specific mPT pores (mPTP) in the mitochondrial inner membrane. Opening of the mPTP with a high conductance results in matrix swelling ultimately inducing rupture of the mitochondrial outer membrane and releasing pro-apoptotic proteins into the cytoplasm. The ATP level is the determining factor in deciding whether cells die through apoptosis or necrosis. Cardiac cells undergoing ischemia followed by reperfusion (IR) possess exactly the same conditions mentioned above to induce mPTP opening. Due to its critical role in cell death, inhibition of mPTP opening has been accepted as a major therapeutic approach to protect the heart against IR. In contrast to cardiac IR, cancer cells exhibit less sensitivity to pore opening which can be in part explained by increased expression of mPTP compounds/modulators and metabolic remodeling. Since the main goal of chemotherapy is to provoke apoptosis, mPT induction may represent an attractive approach for the development of new cancer therapeutics to induce mitochondria-mediated cell death and prevent cell differentiation in carcinogenesis. This review focuses on the role of the mPTP in cardiac IR and cancer, and pharmacological agents to prevent or initiate mPT-mediated cell death, respectively in these diseases.
Insights
Mitochondrial permeability transition pores (mPTP) are key in cell death for heart attack and cancer. Inhibiting mPTP protects the heart, while inducing it may treat cancer.
Area of Science:
- Mitochondrial biology
- Cell death pathways
- Cardiovascular diseases
- Oncology
Background:
- Cardiovascular diseases and cancer are leading global causes of mortality.
- Mitochondria regulate cell life and death, producing ATP and initiating apoptosis/necrosis.
- Mitochondrial permeability transition (mPT) and pore (mPTP) opening are critical in cell stress responses.
Purpose of the Study:
- To review the role of the mitochondrial permeability transition pore (mPTP) in cardiac ischemia-reperfusion (IR) injury and cancer.
- To discuss pharmacological agents targeting mPTP for therapeutic interventions in these diseases.
Main Methods:
- Literature review focusing on the mechanisms of mPTP opening in cardiac IR and cancer.
- Analysis of the differential sensitivity of cardiac and cancer cells to mPTP opening.
- Examination of therapeutic strategies involving modulation of mPTP.
Main Results:
- Inhibition of mPTP opening is a therapeutic strategy for protecting cardiac cells against IR injury.
- Cancer cells show reduced sensitivity to mPTP opening due to altered expression of mPTP components and metabolic reprogramming.
- Inducing mPT represents a potential therapeutic approach for cancer by promoting mitochondria-mediated cell death.
Conclusions:
- The mPTP plays a dual role in cell death, offering protective strategies in cardiac IR and potential therapeutic targets in cancer.
- Targeting mPTP modulation presents a promising avenue for developing novel treatments for cardiovascular diseases and cancer.
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