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SCOUT: Skull-Corrected Optimization for Ultrasound Transducers.

Authors: Jiang Z, Hua M, Li J, Mau HL, Choi J, Gormley WB, Amich JM, Sha RM

Transcranial focused ultrasound has been studied for non-invasive and localized treatment of many brain diseases. The biggest challenge for focusing ultrasound onto the brain is the skull, which attenuates ultrasound and changes its propagation direction, leading to pressure drop, focus shift, and defocusing. We presented an optimization algorithm which automatically found the optimal location for placing a single-element focused transducer. At this optimal location, the focus shift was in an acceptable range and the ultrasound was tightly focused. The algorithm simulated the beam profiles of placing the transducer at different locations and compared the results. Locations with a normalized peak-negative pressure (PNP) above threshold were first found. Then, the optimal location was identified as the location with the smallest focal volume. The optimal location found in this study had a normalized PNP of 0.966 and a focal volume of 6.8% smaller than without the skull. A Zeta navigation system was used to automatically place the transducer and track the error caused by movement. These results demonstrated that the algorithm could find the optimal transducer location to avoid large focus shift and defocusing. With the Zeta navigation system, our algorithm can help to make transcranial focused ultrasound treatment safer and more successful.

Introduction

Purpose Transcranial ultrasound stimulation
Study Objective Develop an optimization algorithm to automatically determine the optimal placement of a single-element focused transducer for transcranial ultrasound that minimizes skull-induced focus shift and defocusing while maintaining sufficient peak-negative pressure.
MRI or image guidance method Zeta navigation system

Outcomes and Safety

Summary of Outcomes No biological or behavioral effects were reported; the study demonstrated an optimization algorithm that identified an optimal transducer location (normalized peak-negative pressure PNP = 0.966 and focal volume 6.8% smaller than without the skull) and showed that using a Zeta navigation system enabled automatic placement and tracking to avoid large focus shift and defocusing.
Safety-related matter The paper notes skull-induced pressure drop, focus shift, and defocusing as major challenges and reports that their optimization algorithm locates transducer positions that keep focus shift within an acceptable range and minimize focal volume to avoid large focus shift and defocusing. It also states that using a Zeta navigation system to place the transducer and track movement error can help make transcranial focused ultrasound treatment safer and more successful.

Brain Region

Visualization unavailable

Ultrasound Parameters

Ultrasound instrument Single-element focused transducer (no model or manufacturer reported); Zeta navigation system used for placement/tracking (no manufacturer reported); transducer aperture/diameter: None
Focal Characteristics Focal depth: None; Focal length: None; Aperture size: None

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