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Published on: October 18, 2018
Anti-anginal and anti-ischemic effects of late sodium current inhibition
1Division of Cardiovascular Medicine, Brigham and Women's Hospital, 75 Francis Street, Boston, MA 02115, USA.
Insights
Ranolazine, a novel anti-ischemic drug, effectively treats angina by inhibiting the late sodium current (late I(Na)). This mechanism improves cardiac function and reduces ischemia without affecting heart rate or blood pressure.
Area of Science:
- Cardiology
- Pharmacology
Background:
- Coronary artery disease (CAD) management aims to control angina and reduce ischemic events.
- Conventional anti-anginal drugs modify myocardial oxygen supply/demand via heart rate, contractility, or loading conditions.
- Inhibition of the late inward sodium current (late I(Na)) presents a novel therapeutic target for ischemia.
Purpose of the Study:
- To review the rationale for targeting late I(Na) in treating cardiac dysfunction during ischemia.
- To discuss clinical evidence supporting ranolazine's anti-anginal and anti-ischemic effects.
Main Methods:
- Review of pharmacological mechanisms of late I(Na) blockade.
- Analysis of clinical trial data for ranolazine in stable CAD and acute coronary syndrome.
Main Results:
- Late I(Na) inhibition mitigates sodium/calcium overload post-ischemia, improving relaxation and contractility.
- Ranolazine demonstrated anti-anginal and anti-ischemic benefits in stable CAD without altering hemodynamics.
- In acute coronary syndrome, ranolazine reduced recurrent ischemia but not mortality or myocardial infarction.
Conclusions:
- Inhibition of late I(Na) offers a promising strategy for managing ischemic heart disease.
- Ranolazine provides therapeutic benefits in CAD by improving cardiac function during ischemia.
Abstract:
The effective treatment of coronary artery disease targets two distinct goals, controlling symptomatic angina and decreasing the adverse events associated with ischemia. Traditional anti-anginal and anti-ischemic drugs function by altering the determinants of myocardial oxygen supply or demand, usually by altering loading conditions, changing the heart rate, or impacting contractility. Blockade of the late inward sodium current, late I(Na), offers another target for the treatment of ischemia. Blockade of late I(Na) reduces the sodium and calcium overload that follows ischemia. This improves myocardial relaxation and reduces left ventricular diastolic stiffness, in turn enhancing myocardial contractility and perfusion. Ranolazine, a late I(Na) inhibitor, has been shown to provide both anti-anginal and anti-ischemic benefits without significant alterations in the heart rate and blood pressure in patients with stable coronary artery disease. When evaluated in patients with acute coronary syndrome, ranolazine has been shown to decrease recurrent ischemia, but not significantly reduce the risk of death or myocardial infarction. This review will address the rationale that inhibition of the late sodium current is beneficial in reducing cardiac dysfunction during ischemia, and discuss the clinical studies supporting the use of ranolazine for its anti-anginal and anti-ischemic effects.
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