Saikat Sengupta, M Anthony Phipps, Li Min Chen, Charles F Caskey, William A Grissom
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引用次数: 0
Abstract
Purpose: To improve single-shot spiral MR-Acoustic Radiation Force Imaging (MR-ARFI)'s robustness to dynamic phase errors and evaluate it in non-human primates (NHPs) with a low-f-number transducer.
Methods: A single-shot spiral MR-ARFI pulse sequence with 2 mm in-plane resolution and alternating displacement phase contrast was implemented to visualize the focus generated by a 128-element ultrasound transducer in the NHP brain. A model-based displacement map calculation was implemented to remove dynamic phase errors. MR-ARFI scans were acquired at pressure levels above and below FDA mechanical index (MI) limits, and reconstructed displacement maps were compared to maps generated by a 3D EPI MR-ARFI scan and a spiral MR-ARFI scan with blocked ultrasound triggering.
Results: The proposed sequence and processing detected focal tissue displacements of 160 nm at a transcranial mechanical index of 0.96, which the 3D EPI could not detect, and with 9.7 -improved precision. The model-based reconstruction suppressed background phase errors and maximized precision. Alternating contrast yielded displacement maps with 4.9 -improved precision compared to blocked contrast.
Conclusion: Single-shot spiral MR-ARFI can provide robust focus visualization in MR-guided ultrasound in the brain at MI levels well below the FDA limit.
期刊介绍:
Magnetic Resonance in Medicine (Magn Reson Med) is an international journal devoted to the publication of original investigations concerned with all aspects of the development and use of nuclear magnetic resonance and electron paramagnetic resonance techniques for medical applications. Reports of original investigations in the areas of mathematics, computing, engineering, physics, biophysics, chemistry, biochemistry, and physiology directly relevant to magnetic resonance will be accepted, as well as methodology-oriented clinical studies.