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bioRxiv · 10.1101/2024.11.12.623276

SNR-Efficient Whole-Brain Pseudo-Continuous Arterial Spin Labeling Perfusion Imaging at 7 Tesla

Abstract

PurposeTo optimize pseudo-continuous arterial spin labeling (PCASL) parameters to maximize SNR efficiency for RF power constrained whole brain perfusion imaging at 7 T. MethodsWe used Bloch simulations of pulsatile laminar flow to optimize the PCASL parameters for maximum SNR efficiency, balancing labeling efficiency and total RF power. The optimization included adjusting the inter-RF pulse spacing (TRPCASL), mean B1+ (B1 ave), slice-selective gradient amplitude (Gmax), and mean gradient amplitude (Gave). In vivo data were acquired from four volunteers at 7 T to validate the optimized parameters. Dynamic B0-shimming and flip angle adjustments were utilized to avoid needing to make the PCASL parameters robust to B0/B1+ variations. ResultsThe optimized PCASL parameters achieved a significant (3.1x) reduction in RF power while maintaining high labeling efficiency. This allowed for longer label durations and minimized deadtime, and resulted in a 126% improvement in SNR efficiency in vivo compared to a previously proposed protocol. Additionally, the static tissue response was improved, reducing the required distance between labeling plane and imaging volume. ConclusionThese optimized PCASL parameters provide a robust and efficient approach for whole brain perfusion imaging at 7 T, with significant improvements in SNR efficiency and reduced SAR burden.

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Woods, J. G., Ji, Y., Li, H., Hess, A. T., Okell, T. W.. 2024-11-14. SNR-Efficient Whole-Brain Pseudo-Continuous Arterial Spin Labeling Perfusion Imaging at 7 Tesla. https://doi.org/10.1101/2024.11.12.623276

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