Respiration induced B1+ changes and their impact on universal and tailored 3D kT-point parallel transmission pulses for 7T cardiac imaging

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Abstract

Purpose: Human heart imaging at ultra-high fields is highly challenging because of respiratory motion-induced artefacts and spatially heterogeneous (Formula presented.) profiles. This work demonstrates that respiration resolved 3D (Formula presented.) -maps can be used with a dedicated tailored and universal parallel transmission (pTx) pulse design to compensate respiration related (Formula presented.) changes in subjects performing shallow and deep breathing (SB/DB). Methods: Three-dimensional (3D) (Formula presented.) -maps of the thorax were acquired in 31 subjects under SB and in 15 subjects under SB and DB. Different universal and tailored non-selective pTx pulses were designed from non-respiration resolved (NRR) and respiration resolved (RR) reconstructions of the SB/DB (Formula presented.) -maps. The performance of all pulses was tested with RR-SB/DB (Formula presented.) -maps. Respiration-robust tailored and universal pulses were applied in vivo in 5 subjects at 7T in 3D gradient-echo free-breathing scans. Results: All optimized pTx pulses performed well for SB. For DB, however, only the universal and the tailored respiration-robust pulses achieved homogeneous flip angles (FAs) in all subjects and across all respiration states, whereas the tailored respiration-specific pulses resulted in a higher FA variation. The respiration-robust universal pulse resulted in an average coefficient of variation in the FA maps of 12.6% compared to 8.2% achieved by tailored respiration-robust pulses. In vivo measurements at 7T demonstrate the benefits of using respiration-robust pulses for DB. Conclusion: Universal and tailored respiration-robust pTx pulses based on RR (Formula presented.) -maps are highly preferred to achieve 3D heart FA homogenization at 7T when subjects perform DB, whereas universal and tailored pulses based on NRR (Formula presented.) -maps are sufficient when subjects perform SB.

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Aigner, C. S., Dietrich, S., & Schmitter, S. (2022). Respiration induced B1+ changes and their impact on universal and tailored 3D kT-point parallel transmission pulses for 7T cardiac imaging. Magnetic Resonance in Medicine, 87(6), 2862–2871. https://doi.org/10.1002/mrm.29183

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