Transcranial passive acoustic mapping with hemispherical sparse arrays using CT-based skull-specific aberration corrections: a simulation study.
Authors: Jones RM, O'Reilly MA, Hynynen K
The feasibility of transcranial passive acoustic mapping with hemispherical sparse arrays (30 cm diameter, 16 to 1372 elements, 2.48 mm receiver diameter) using CT-based aberration corrections was investigated via numerical simulations. A multi-layered ray acoustic transcranial ultrasound propagation model based on CT-derived skull morphology was developed. By incorporating skull-specific aberration corrections into a conventional passive beamforming algorithm (Norton and Won 2000 IEEE Trans. Geosci. Remote Sens. 38 1337-43), simulated acoustic source fields representing the emissions from acoustically-stimulated microbubbles were spatially mapped through three digitized human skulls, with the transskull reconstructions closely matching the water-path control images. Image quality was quantified based on main lobe beamwidths, peak sidelobe ratio, and image signal-to-noise ratio. The effects on the resulting image quality of the source's emission frequency and location within the skull cavity, the array sparsity and element configuration, the receiver element sensitivity, and the specific skull morphology were all investigated. The system's resolution capabilities were also estimated for various degrees of array sparsity. Passive imaging of acoustic sources through an intact skull was shown possible with sparse hemispherical imaging arrays. This technique may be useful for the monitoring and control of transcranial focused ultrasound (FUS) treatments, particularly non-thermal, cavitation-mediated applications such as FUS-induced blood-brain barrier disruption or sonothrombolysis, for which no real-time monitoring techniques currently exist.
Introduction
Purpose
Transcranial ultrasound stimulation
Study Objective
To investigate the feasibility of CT-based aberration-corrected transcranial passive acoustic mapping using hemispherical sparse arrays through numerical simulations.
Animal model / Human subject
skull specimen
MRI or image guidance method
CT-based (CT-derived skull morphology and CT-based aberration corrections)
Outcomes and Safety
Summary of Outcomes
Transcranial passive acoustic mapping of microbubble emissions through intact human skulls was feasible using CT-based aberration corrections with sparse hemispherical arrays, and this approach succeeded across the tested emission frequencies, source locations within the skull cavity, array sparsities/configurations (16–1372 elements), and receiver sensitivities.
Safety-related matter
No safety concerns or adverse effects are mentioned in the provided text.
Brain Region
Ultrasound Parameters
Ultrasound instrument
Hemispherical sparse array (30 cm diameter; 16–1372 elements; 2.48 mm receiver element diameter)
FUS Frequency
500 kHz and 1 MHz
FUS Pressure
0.35 MPa
Focal Characteristics
Focal depth: None; Focal length: None; Aperture size: 30 cm (array diameter); element aperture: 2.48 mm (receiver diameter)
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