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Published on: September 16, 2017
Magnetic resonance stress tagging in ischemic heart disease
Ingo Paetsch1, Daniela Föll, Adam Kaluza
1German Heart Institute Berlin, Augustenburger Platz 1, 13353 Berlin, Germany.
Insights
Quantitative myocardial tagging during low-dose dobutamine stress can identify coronary artery disease (CAD). This method, using the diastolic parameter "time to peak untwist," may reduce the need for high-dose stress testing in CAD diagnosis.
Area of Science:
- Cardiovascular Imaging
- Medical Diagnostics
- Biomedical Engineering
Background:
- High-dose dobutamine magnetic resonance stress testing is superior to dobutamine stress echocardiography for diagnosing coronary artery disease (CAD).
- Quantitative myocardial tagging provides detailed assessment of cardiac function.
Purpose of the Study:
- To assess the feasibility of quantitative myocardial tagging during low- and high-dose dobutamine stress.
- To evaluate the ability of global systolic and diastolic parameters to identify significant CAD.
Main Methods:
- Twenty-five patients with suspected CAD underwent high-dose dobutamine/atropine stress MRI.
- Quantitative myocardial tagging was performed during low- and high-dose dobutamine stress.
- Invasive coronary angiography served as the reference standard.
Main Results:
- Systolic and diastolic parameters changed significantly during low-dose stress in patients without CAD, but not in those with CAD.
- The diastolic parameter "time to peak untwist" during low-dose stress identified patients with and without CAD.
- No global systolic or diastolic parameters at high-dose stress could identify significant CAD.
Conclusions:
- Quantitative myocardial tagging is feasible during dobutamine stress MRI.
- The diastolic parameter "time to peak untwist" during low-dose stress is a promising indicator for identifying significant CAD.
- Quantitative myocardial tagging may reduce the necessity for high-dose dobutamine stress in CAD assessment.
Abstract:
High-dose dobutamine magnetic resonance stress testing has been shown to be superior to dobutamine stress echocardiography for diagnosis of coronary artery disease (CAD). We determined the feasibility of quantitative myocardial tagging during low- and high-dose dobutamine stress and tested the ability of global systolic and diastolic quantitative parameters to identify patients with significant CAD. Twenty-five patients suspected of having significant CAD were examined with a standard high-dose dobutamine/atropine stress magnetic resonance protocol (1.5-T scanner, Philips). All patients underwent invasive coronary angiography as the standard of reference for the presence (n = 13) or absence (n = 12) of significant CAD. During low-dose dobutamine stress, systolic (circumferential shortening, systolic rotation, and systolic rotation velocity) and diastolic (velocity of circumferential lengthening and diastolic rotation velocity) parameters changed significantly in patients without CAD (all P < 0.05 vs. rest) but not in patients with CAD. Identification of patients without and with CAD during low-dose stress was possible using the diastolic parameter of "time to peak untwist." At high-dose stress, none of the global systolic or diastolic parameters showed the potential to identify the presence of significant CAD. With myocardial tagging, a quantitative analysis of systolic and diastolic function was feasible during low- and high-dose dobutamine stress. In our study, the diastolic parameter of time to peak untwist as assessed during low-dose dobutamine stress was the most promising global parameter for identification of patients with significant CAD. Thus quantitative myocardial tagging may become a tool that reduces the need for high-dose dobutamine stress.
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Exercise stress testing, commonly known as a treadmill test, is a noninvasive procedure used to evaluate cardiovascular function and diagnose heart conditions.
Definition
An exercise stress test measures the heart's response to exertion using a treadmill or stationary bicycle. Chest electrodes record the heart's electrical activity through an ECG, and blood pressure is monitored regularly.
Purposes
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