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Oxygen free radicals and excitation-contraction coupling
1UCLA School of Medicine, Department of Medicine (Cardiology), Los Angeles, CA 90095-1679, USA. jgoldhaber@mednet.ucla.edu
Abstract:
Oxygen free radicals (OFR) contribute to contractile failure, rigor, and calcium (Ca2+) overload in ischemic/reperfused myocardium. Using both multicellular and isolated single-cell preparations, our laboratory has identified two fundamental mechanisms contributing to the deleterious effects of OFR: (i) impaired myocardial metabolism, and (ii) altered myocardial calcium handling. Impaired metabolism leads to activation of metabolically sensitive K+ currents, which shorten the action potential, thereby decreasing the duration of systole. Ultimately, high-energy phosphate depletion secondary to metabolic failure results in rigor. Altered myocardial Ca2+ handling is evidenced by a decrease in Ca2+ entry via L-type Ca2+ channels [another cause of decreased action potential duration (APD)], a reduction in sarcoplasmic reticulum (SR) Ca2+ content, slowed Ca2+ uptake in diastole, and increased sodium-calcium exchange (NaCaX) activity. The increase in NaCaX activity may contribute to the early increase in developed tension frequently observed in multicellular preparations exposed to free radicals, as well as the SR depletion occurring early on in voltage-clamped isolated cell preparations. Increased NaCaX activity is likely to be a critical factor underlying the late Ca2+ overload that occurs in the setting of increased intracellular Na+, and which leads to irreversible injury. The extent to which free radical-mediated metabolic inhibition participates in the dysfunction of the L-type Ca2+ channel is uncertain. The altered activity of the SR Ca2+ pump and NaCaX are more likely caused by direct actions of OFR on these proteins.
Insights
Oxygen free radicals (OFR) impair heart muscle metabolism and calcium handling, leading to contractile failure and cell injury. Understanding these mechanisms is key to treating cardiac damage from ischemia and reperfusion.
Area of Science:
- Cardiology
- Biochemistry
- Cell Physiology
Background:
- Oxygen free radicals (OFR) are implicated in myocardial dysfunction after ischemia/reperfusion.
- OFR contribute to contractile failure, rigor, and calcium overload in heart muscle.
Purpose of the Study:
- To elucidate the fundamental mechanisms by which OFR induce cardiac injury.
- To investigate the roles of impaired metabolism and altered calcium handling in OFR-induced damage.
Main Methods:
- Experiments utilized both multicellular and isolated single-cell cardiac preparations.
- Investigated effects of OFR on myocardial metabolism, ion channel activity, and calcium handling.
Main Results:
- OFR impair myocardial metabolism, activating K+ currents, shortening action potentials, and leading to energy depletion and rigor.
- OFR alter calcium handling by reducing L-type Ca2+ channel entry, decreasing SR Ca2+ content, slowing diastolic uptake, and increasing NaCaX activity.
- Increased NaCaX activity contributes to early tension increases, SR depletion, and late, irreversible calcium overload.
Conclusions:
- OFR induce cardiac dysfunction through two primary pathways: impaired metabolism and altered calcium handling.
- Direct OFR action on SR Ca2+ pump and NaCaX proteins likely underlies altered calcium handling.
- Understanding these OFR-induced changes is crucial for developing therapeutic strategies against cardiac injury.