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Myocardial Infarction and Functional Outcome Assessment in Pigs
Published on: April 25, 2014
The many faces of myocardial ischaemia and angina
Bernard I Levy1, Gerd Heusch2, Paolo G Camici3
1Inserm U970 and Vessels and Blood Institute, 8 Rue Guy Patin, Paris, France.
Insights
Microvascular angina affects patients with normal coronary arteries, showing impaired blood flow regulation. Understanding these mechanisms is key for diagnosing and treating chest pain when epicardial coronary artery disease is absent.
Area of Science:
- Cardiology
- Physiology
Background:
- Obstructive epicardial coronary artery disease is a primary cause of angina.
- Some patients experience angina and ischemia despite normal or non-obstructive coronary arteries.
Purpose of the Study:
- To review the determinants and control of coronary blood flow and myocardial perfusion.
- To analyze mechanisms of transient myocardial ischemia, including microvascular angina.
Main Methods:
- Literature review of coronary blood flow regulation.
- Analysis of mechanisms causing myocardial ischemia in the absence of obstructive coronary artery disease.
Main Results:
- Microvascular angina involves impaired coronary microcirculation, sensitive to vasoconstrictors.
- Mechanisms include coronary spasm, microvascular dysfunction, impaired vasodilation, and altered pain perception.
- Tachycardia can exacerbate ischemia by reducing diastolic time and altering flow distribution.
Conclusions:
- Microvascular dysfunction is a significant cause of angina in patients without obstructive coronary artery disease.
- Understanding these mechanisms is crucial for accurate diagnosis and management of anginal symptoms.
Abstract:
Obstructive disease of the epicardial coronary arteries is the main cause of angina. However, a number of patients with anginal symptoms have normal coronaries or non-obstructive coronary artery disease (CAD) despite electrocardiographic evidence of ischaemia during stress testing. In addition to limited microvascular vasodilator capacity, the coronary microcirculation of these patients is particularly sensitive to vasoconstrictor stimuli, in a condition known as microvascular angina. This review briefly summarizes the determinants and control of coronary blood flow (CBF) and myocardial perfusion. It subsequently analyses the mechanisms responsible for transient myocardial ischaemia: obstructive CAD, coronary spasm and coronary microvascular dysfunction in the absence of epicardial coronary lesions, and variable combinations of structural anomalies, impaired endothelium-dependent and/or -independent vasodilation, and enhanced perception of pain. Lastly, we exemplify mechanism of angina during tachycardia. Distal to a coronary stenosis, coronary dilator reserve is already recruited and can be nearly exhausted at rest distal to a severe stenosis. Increased heart rate reduces the duration of diastole and thus CBF when metabolic vasodilation is no longer able to increase CBF. The increase in myocardial oxygen consumption and resulting metabolic vasodilation in adjacent myocardium without stenotic coronary arteries further acts to divert blood flow away from the post-stenotic coronary vascular bed through collaterals.
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