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Identifying Coronary Artery Calcification on Non-gated Computed Tomography Scans
Published on: August 28, 2018
The chance finding at multislice computed tomography coronary angiography of myocardial bridging
Insights
Myocardial bridging, where coronary arteries tunnel through heart muscle, can impair blood flow and cause ischemia. Multislice computed tomography coronary angiography is a useful noninvasive tool for assessing this condition.
Area of Science:
- Cardiology
- Radiology
- Anatomy
Background:
- Myocardial bridging occurs when a coronary artery segment runs within the heart muscle, compressing during systole.
- The exact pathophysiology and clinical significance of myocardial bridging remain incompletely understood.
- Intramural segments may be protected from atherosclerosis, while proximal segments face increased risk due to hemodynamic changes.
Observation:
- Systolic compression of the tunneled artery can lead to delayed relaxation into diastole.
- This dynamic compression impairs coronary flow reserve and can cause myocardial ischemia.
- Myocardial bridging can be an incidental finding or associated with significant cardiac pathology.
Findings:
- The case highlights the identification of two myocardial bridges via multislice computed tomography coronary angiography (MSCTCA).
- MSCTCA demonstrated its utility as a noninvasive method for assessing myocardial bridging.
- The study underscores the potential for myocardial bridging to cause angina, infarction, arrhythmias, and sudden cardiac death, though often benign.
Implications:
- Beta-blockers are considered a primary management strategy, while stenting remains controversial.
- Accurate diagnosis and understanding of myocardial bridging are crucial for appropriate patient management.
- MSCTCA offers a valuable noninvasive approach for diagnosing and evaluating myocardial bridging.
Abstract:
Myocardial bridging is present when a segment of a major epicardial coronary artery, the 'tunnelled artery', runs intramurally through the myocardium. With each systole, the coronary artery is compressed. The pathophysiology of myocardial bridging is incompletely understood. With each systole, the coronary artery is compressed. Moreover, intravascular ultrasound analysis revealed a delayed relaxation after systolic compression, which may extend significantly into diastole. This explains both the impaired coronary flow reserve and ischemia. Evidence indicates that the intima beneath the bridge is protected from atherosclerosis, and the proximal segment is more susceptible to the development of atherosclerotic lesions because of haemodynamic disturbances. Myocardial bridging is sometimes associated with overt pathology, as well as it can just be an incidental finding without any significance. Myocardial bridging may cause angina pectoris, myocardial infarction, life threatening arrhythmias and even sudden cardiac death but most of them are harmless. Furthermore depressed left ventricular function, myocardial stunning, early death after cardiac transplantation has been also reported. Although the exact management is not well known, beta blockers seem to be the first choice. Stenting is controversial and one must think "twice" before stenting the bridged coronary artery. We report a case of chance finding at multislice computed tomography coronary angiography of two myocardial bridging. Also this case focuses attention on myocardial bridging and it confirms that multislice computed tomography coronary angiography technology represents a useful, noninvasive imaging method of its assessment.
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