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Practical Targeting Errors During Optically Tracked Transcranial Focused Ultrasound Using MR-ARFI and Array- Based Steering.

Authors: Phipps MA, Manuel TJ, Sigona MK, Luo H, Yang PF, Newton A, Chen LM, Grissom W, Caskey CF

Transcranial focused ultrasound (tFUS) is being explored for neuroscience research and clinical applications due to its ability to affect precise brain regions noninvasively. The ability to target specific brain regions and localize the beam during these procedures is important for these applications to avoid damage and minimize off-target effects. Here, we present a method to combine optical tracking with magnetic resonance (MR) acoustic radiation force imaging to achieve targeting and localizing of the tFUS beam. This combined method provides steering coordinates to target brain regions within a clinically practical time frame. Using an optically tracked hydrophone and bias correction with MR imaging we transformed the FUS focus coordinates into the MR space for targeting and error correction. We validated this method in vivo in 18 macaque FUS studies. Across these in vivo studies a single localization scan allowed for the average targeting error to be reduced from 4.8 mm to 1.4 mm and for multiple brain regions to be targeted with one transducer position. By reducing targeting error and providing the means to target multiple brain regions within a single session with high accuracy this method will allow further study of the effects of tFUS neuromodulation with more advanced approaches such as simultaneous dual or multi-site brain stimulation.

Introduction

Purpose Transcranial ultrasound stimulation
Study Objective To develop and validate a method combining optical tracking with MR acoustic radiation force imaging to accurately target and localize transcranial focused ultrasound (tFUS) in vivo.
Animal model / Human subject Macaque (species/strain not specified), age not reported, sex not reported
Disease model Healthy
MRI or image guidance method Optical tracking (optically tracked hydrophone) combined with MR acoustic radiation force imaging (MR-ARFI) and MR image-based bias correction

Outcomes and Safety

Summary of Outcomes Combining optical tracking with MR acoustic radiation force imaging reduced average in vivo macaque tFUS targeting error from 4.8 mm to 1.4 mm and enabled targeting multiple brain regions from a single transducer position. The paper did not report testing or comparing different focused ultrasound stimulation parameters.
Safety-related matter No adverse effects were reported. The paper focuses on targeting accuracy and localization of tFUS in macaque studies and does not discuss safety outcomes.

Brain Region

Visualization unavailable

Ultrasound Parameters

Focal Characteristics focal depth: None; focal length: None; aperture size: None
Treatment frequency single

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