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Measurement of Myocardial Lactate Production for Diagnosis of Coronary Microvascular Spasm
Published on: September 17, 2021
Coronary artery spasm--clinical features, diagnosis, pathogenesis, and treatment
Hirofumi Yasue1, Hitoshi Nakagawa, Teruhiko Itoh
1Division of Cardiovascular Medicine, Kumamoto Kinoh Hospital, Kumamoto Aging Research Institute, 6-8-1, Yamamuro, Kumamoto 860-8518, Japan. yasue@juryo.or.jp <yasue@juryo.or.jp>
Insights
Coronary artery spasm, a cause of ischemic heart disease, involves endothelial dysfunction and inflammation. Targeting the RhoA/ROCK pathway may offer new treatments beyond calcium-channel blockers.
Area of Science:
- Cardiology
- Vascular Biology
- Pathophysiology
Background:
- Coronary artery spasm is a key factor in ischemic heart disease, affecting angina, myocardial infarction, and sudden death.
- Prevalence varies globally, influenced by genetics and environment, with episodes often occurring nocturnally.
- Attacks correlate with ECG changes and can lead to lethal arrhythmias, often resistant to standard treatments like calcium-channel blockers (CCBs).
Purpose of the Study:
- To explore the underlying mechanisms of coronary spasm.
- To identify risk factors and potential therapeutic targets.
- To understand the role of endothelial dysfunction and inflammation.
Main Methods:
- Review of existing literature on coronary spasm pathogenesis.
- Analysis of factors contributing to coronary artery hyper-contraction.
- Investigation of the endothelial nitric oxide (NO) and RhoA/ROCK pathways.
Main Results:
- Coronary spasm involves endothelial dysfunction, reduced nitric oxide (NO) activity, and increased oxidative stress.
- Elevated markers of inflammation, thrombogenesis, and hsCRP are observed.
- The RhoA/ROCK pathway is implicated in increased calcium sensitivity, linked to reduced NO activity.
Conclusions:
- Coronary spasm is associated with endothelial dysfunction and chronic inflammation.
- Genetic factors, smoking, and inflammation are significant risk factors.
- RhoA/ROCK pathway blockers present a potential therapeutic strategy alongside CCBs.
Abstract:
Coronary (artery) spasm plays an important role in the pathogenesis of ischemic heart disease, including stable angina, unstable angina, myocardial infarction, and sudden death. The prevalence of coronary spasm differs among populations, is higher in Japan and Korea than in the Western countries probably due to genetic as well as environmental factors. Coronary spasm occurs most often from midnight to early morning and is usually not induced by exercise in the daytime. The attacks of coronary spasm are associated with either ST segment elevation or depression, or negative U wave on ECG. Patients with multi-vessel coronary spasm may suffer from lethal arrhythmia, including advanced AV block, ventricular tachycardia or fibrillation, or even sudden death, and they are often resistant to conventional medical therapy including Ca-channel blockers (CCBs). Endothelial nitric oxide (NO) activity is reduced and markers of oxidative stress are elevated in patients with coronary spasm. Thrombogenesis is enhanced and plasma levels of hsCRP and P-selection are elevated in patients with coronary spasm. Thus, patients with coronary spasm have endothelial dysfunction and are suffering from a low-grade chronic inflammation. Polymorphisms of endothelial NO synthase, smoking, and low-grade inflammation are the most important risk factors for coronary spasm. Coronary spasm is a hyper-contraction of coronary smooth muscle triggered by an increase of intracellular Ca2+ in the presence of an increased Ca2+ sensitivity. It has been shown that RhoA/ROCK pathway is involved in Ca2+ sensitivity and that the reduced endothelial NO activity results in increased Ca2+ sensitivity through enhanced RhoA/ROCK pathway. Accordingly, it is possible that in addition to CCBs, RhoA/ROCK pathway blockers may prove to be useful for the treatment of coronary spasm.
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