Background Oxygenation-sensitive (OS) MR, using breathing maneuver-induced stress and blood oxygen level-dependent contrast, is a well-tolerated, non-invasive approach for assessing myocardial oxygenation. This study evaluated two real-time MR sequences and a semi-automated analysis workflow to enable continuous, motion-robust assessment of myocardial oxygenation dynamics, aiming to overcome limitations of ECG-triggered acquisitions and reduce manual evaluation requirements. Methods Signal intensity dynamics of ten young healthy female volunteers were analyzed from images acquired on a 3T scanner using an ECG-triggered bSSFP sequence, a real-time (RT) bSSFP sequence, and an RT FLASH sequence. Images were obtained in a mid-ventricular slice while participants performed a breathing maneuver consisting of normal breathing, paced hyperventilation, and a prolonged breath-hold. A semi-automated processing pipeline was implemented to generate motion-resolved oxygenation maps using retrospective cardiac phase binning, deformable image registration, and automated segmentation. Results The real-time sequences captured end-systolic global myocardial signal intensity change (Δ SI , relative to reference frames at breath-hold start) with dynamics comparable to those of the ECG-triggered bSSFP sequence. As expected in healthy volunteers, Δ SI decreased during hyperventilation and recovered during the prolonged breath-hold. At 20-30s, oxygenation responses at end-systole were 3.95%3.36, 7.50 for ECG-triggered bSSFP, 5.47%3.31, 9.08 for RT bSSFP, and 3.24%1.99, 4.80 for RT FLASH. RT FLASH showed fewer artifacts but lower contrast and smaller Δ SI than the bSSFP sequences, with inter-sequence differences appearing modest in mixed-effects analysis. Conclusions This exploratory study demonstrates the feasibility of combining real-time MR sequences with a semi-automated processing pipeline for continuous assessment of T 2∕ T 2*-related myocardial oxygenation dynamics. Potential confounders, including through-plane motion and physiological drift, warrant further investigation.
Vogt et al. (Mon,) studied this question.
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