Pitt Shield

Multifocal skull-compensated transcranial focused ultrasound system for neuromodulation applications based on acoustic holography.

Authors: Kook G, Jo Y, Oh C, Liang X, Kim J, Lee SM, Kim S, Choi JW, Lee HJ

Transcranial focused ultrasound stimulation is a promising therapeutic modality for human brain disorders because of its noninvasiveness, long penetration depth, and versatile spatial control capability through beamforming and beam steering. However, the skull presents a major hurdle for successful applications of ultrasound stimulation. Specifically, skull-induced focal aberration limits the capability for accurate and versatile targeting of brain subregions. In addition, there lacks a fully functional preclinical neuromodulation system suitable to conduct behavioral studies. Here, we report a miniature ultrasound system for neuromodulation applications that is capable of highly accurate multiregion targeting based on acoustic holography. Our work includes the design and implementation of an acoustic lens for targeting brain regions with compensation for skull aberration through time-reversal recording and a phase conjugation mirror. Moreover, we utilize MEMS and 3D-printing technology to implement a 0.75-g lightweight neuromodulation system and present in vivo characterization of the packaged system in freely moving mice. This preclinical system is capable of accurately targeting the desired individual or multitude of brain regions, which will enable versatile and explorative behavior studies using ultrasound neuromodulation to facilitate widespread clinical adoption.

Introduction

Purpose Transcranial ultrasound stimulation
Study Objective To develop and demonstrate an ultralight miniature transcranial focused ultrasound neuromodulation system that compensates for skull-induced aberration to enable accurate multiregion targeting in freely moving mice.
Animal model / Human subject Mouse (Mus musculus); strain not specified; age not specified; sex not specified.
Disease model Healthy
MRI or image guidance method Acoustic holography using an acoustic lens with skull-aberration compensation via time-reversal recording and a phase-conjugation mirror

Outcomes and Safety

Summary of Outcomes The integrated 0.75 g CMUT + 3D‑printed skull‑compensated acoustic lens achieved accurate transcranial focusing (including multifocal generation and ~1 mm steering) and produced sufficient acoustic pressure for neuromodulation, while attachment of the device produced no significant changes in freely moving mice open‑field locomotion. Successful parameters: focusing through a skull phantom at 5 MHz with a commercial PUT; CMUT operation with a center ~2 MHz (≈1.5 MHz bandwidth), DC biases ~37–42 V and AC drive up to 10 Vpp yielding peak pressure ≈87.7 kPa; and multifocal/steering configurations with ~1 mm separation.
Safety-related matter The authors report that attaching the 0.75 g packaged device to mouse skulls produced no significant changes in freely moving mouse behavior, and no adverse effects or safety issues (e.g., tissue damage) were reported in the study.

Brain Region

Visualization unavailable

Ultrasound Parameters

Focal Characteristics Focal depth: None; Focal length: None; Aperture size: None

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