PurposeTo implement a flexible framework, named HydrOptiFrame, for the design and optimization of time-efficient water-excitation (WE) RF pulses using B-spline interpolation, and to characterize their lipid suppression performance. MethodsAn evolutionary optimization algorithm was used to design WE RF pulses. The algorithm minimizes a composite loss function that quantifies the fat-water contrast using Bloch equation simulations. In a first study, B-spline interpolated optimized (BSIO) pulses designed with HydrOptiFrame with durations of 1 and 0.76 ms were generated for 3 T and characterized in healthy volunteers' knees. The femoral bone marrow SNR was compared to that obtained with to 1-1 WE and lipid insensitive binomial off resonant excitation (LIBRE) pulses. In a second study, in the heart at 1.5 T, the water-fat contrast ratio and coronary artery vessel length obtained with a 2.56 ms BSIO pulse was compared to 1-1 WE and LIBRE pulses in free-running cardiovascular MR. ResultsThe 1 ms BSIO pulse resulted in higher fat suppression and lower contrast ratio (CR) in the bone marrow than the state-of-the-art pulses (4.1 +/- 0.2 vs. 4.7 +/- 0.4 and 4.4 +/- 0.3 for the BSIO, the 1-1 WE and LIBRE respectively, p < 0.05 vs. both) at 3 T. At 1.5 T, the BSIO pulse resulted in a higher blood-epicardial fat CR (3.8 +/- 1.3 vs. 1.6 +/- 0.6 and 2.4 +/- 1.1 for the BSIO, 1-1 WE and LIBRE, respectively, p < 0.05 vs. both) and longer traceable left coronary artery vessel length (8.7 +/- 1.4 cm vs. 7.0 +/- 1.0 cm [p = 0.04] and 7.5 +/- 1.2 cm [p = 0.09]). ConclusionThe HydrOptiFrame framework offers a new opportunity to design WE RF pulses that are robust to B0 inhomogeneity at multiple magnetic field strengths and for variable RF pulse durations.
Salomé Sophie Célestine Baup, Lijing Xin, Katarzyna Pierzchala, Daniel Wenz, Mark Stephan Widmaier, Ying Xiao, Zhiwei Huang, Antonia Kaiser
Jean-Philippe Thiran, Erick Jorge Canales Rodriguez, Thomas Yu