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Updated: Jun 8, 2026

Cardiac Magnetic Resonance Imaging at 7 Tesla
Published on: January 6, 2019
BOLD cardiovascular magnetic resonance at 3.0 tesla in myocardial ischemia
Robert Manka1, Ingo Paetsch, Bernhard Schnackenburg
1Department of Internal Medicine/Cardiology, German Heart Institute, Berlin, Germany. cjahnke@ukaachen.de
Insights
Blood oxygen level dependent (BOLD) cardiovascular magnetic resonance (CMR) can detect myocardial ischemia. This technique using BOLD CMR at 3Tesla successfully identified ischemic segments in patients with coronary artery disease.
Area of Science:
- Cardiovascular Magnetic Resonance Imaging
- Myocardial Perfusion Imaging
- Ischemic Heart Disease
Background:
- Coronary artery disease (CAD) diagnosis relies on invasive methods.
- Non-invasive detection of stress-induced myocardial ischemia is crucial.
- Blood oxygen level dependent (BOLD) cardiovascular magnetic resonance (CMR) offers a potential non-invasive approach.
Purpose of the Study:
- To evaluate the capability of BOLD CMR to detect stress-induced myocardial ischemia.
- To assess BOLD CMR's effectiveness in patients with significant coronary artery disease (CAD).
Main Methods:
- Forty-six patients with suspected or known CAD underwent 3Tesla CMR.
- BOLD CMR was performed at rest and during adenosine stress.
- Quantitative coronary angiography served as the reference standard.
Main Results:
- BOLD CMR at rest showed significantly lower T2* values in ischemic segments.
- T2* values increased significantly in normal segments during adenosine stress.
- Significant CAD was identified in 23 out of 46 patients.
Conclusions:
- Rest and stress BOLD CMR at 3Tesla is feasible for differentiating myocardial segments.
- BOLD CMR during vasodilator stress effectively identifies patients with significant CAD.
Background:
The purpose of this study was to determine the ability of blood oxygen level dependent (BOLD) cardiovascular magnetic resonance (CMR) to detect stress-inducible myocardial ischemic reactions in the presence of angiographically significant coronary artery disease (CAD).
Methods:
Forty-six patients (34 men; age 65 ± 9 years,) with suspected or known coronary artery disease underwent CMR at 3Tesla prior to clinically indicated invasive coronary angiography. BOLD CMR was performed in 3 short axis slices of the heart at rest and during adenosine stress (140 μg/kg/min) followed by late gadolinium enhancement (LGE) imaging. In all 16 standard myocardial segments, T2* values were derived at rest and under adenosine stress. Quantitative coronary angiography served as the standard of reference and defined normal myocardial segments (i.e. all 16 segments in patients without any CAD), ischemic segments (i.e. supplied by a coronary artery with ≥50% luminal narrowing) and non-ischemic segments (i.e. supplied by a non-significantly stenosed coronary artery in patients with significant CAD).
Results:
Coronary angiography demonstrated significant CAD in 23 patients. BOLD CMR at rest revealed significantly lower T2* values for ischemic segments (26.7 ± 11.6 ms) compared to normal (31.9 ± 11.9 ms; p < 0.0001) and non-ischemic segments (31.2 ± 12.2 ms; p = 0.0003). Under adenosine stress T2* values increased significantly in normal segments only (37.2 ± 14.7 ms; p < 0.0001).
Conclusions:
Rest and stress BOLD CMR at 3Tesla proved feasible and differentiated between ischemic, non-ischemic, and normal myocardial segments in a clinical patient population. BOLD CMR during vasodilator stress identified patients with significant CAD.
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