Pitt Shield

Virtual Brain Projection for Evaluating Trans-skull Beam Behavior of Transcranial Ultrasound Devices.

Authors: Brinker ST, Preiswerk F, McDannold NJ, Parker KL, Mariano TY

Focused ultrasound single-element piezoelectric transducers constitute a promising method to deliver ultrasound to the brain in low-intensity applications, but are subject to defocusing and high attenuation because of transmission through the skull. Here, a novel virtual brain projection method is used to superimpose a magnetic resonance image of the brain in ex vivo human skulls to provide targets during trans-skull focused ultrasound single-element piezoelectric transducer pressure field mapping. Positions of the transducer, skull and hydrophone are tracked in real time using a stereoscopic navigation camera and 3-D Slicer software. Virtual targets of the left dorsolateral prefrontal cortex, left hippocampus and cerebellar vermis were chosen to illustrate the method's flexibility in evaluating focal-zone beam distortion and attenuation. The regions are of interest as non-invasive brain stimulation targets in the treatment of neuropsychiatric disorders via repeated ultrasound exposure. The technical approach can facilitate the assessment of transcranial ultrasound device operator positioning reliability, intracranial beam behavior and computational model validation.

Introduction

Purpose Transcranial ultrasound stimulation
Study Objective To develop and demonstrate a virtual brain projection method that overlays MRI brains inside ex-vivo human skulls to enable tracked transcranial focused ultrasound single-element transducer pressure field mapping and assessment of focal-zone beam distortion and attenuation.
Animal model / Human subject Homo sapiens (ex-vivo human skulls); strain: N/A; age: not reported; sex: not reported
MRI or image guidance method MRI-based virtual brain projection overlaid within ex-vivo skulls, with real-time optical tracking using a stereoscopic navigation camera and 3D-Slicer software
Targeted brain region(s) Dorsolateral Prefrontal Cortex (Dlpfc), Hippocampus (Hpc), Cerebellar Vermis (Cbm-Ver)

Outcomes and Safety

Summary of Outcomes No biological or behavioral effects were reported; the study developed and demonstrated a virtual brain projection method for trans-skull FUS single-element piezoelectric transducer pressure-field mapping to evaluate focal-zone beam distortion and attenuation at targets (left DLPFC, left hippocampus, cerebellar vermis). No comparisons of multiple focused ultrasound parameters or specific successful FUS parameter sets were reported.
Safety-related matter The provided text does not mention any safety concerns or adverse effects; no adverse effects were reported.

Brain Region

Ultrasound Parameters

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

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