Differential evolution method to find optimal location of a single-element transducer for transcranial focused ultrasound therapy.
Authors: Park TY, Kim HJ, Park SH, Chang WS, Kim H, Yoon K
Focused ultrasound (FUS) has been receiving growing attention as a noninvasive brain stimulation tool because of its superior spatial specificity and depth penetrability. However, the large mismatch of acoustic properties between the skull and water can disrupt and shift the acoustic focus in the brain. In this paper, we present a numerical method to find the optimal location of a single-element FUS transducer, which creates focus on the target region. The score function, representing the superposition of acoustic waves according to the relative phase difference and transmissibility, was defined based on time-reversal invariance of acoustic waves and depending on the spatial location of the transducer. The optimal location of the transducer was then determined using a differential evolution algorithm. To assess the proposed method, we conducted a forward simulation and compared the resulting focal location to the desired target point. We also performed experimental validation by measuring the acoustic pressure field through an ex vivo human skull in a water tank. The numerical results indicated that the score function had a positive proportional relationship with the acoustic pressure at the target. Moreover, for the optimized transducer location, both the numerical and experimental results showed that the normalized acoustic pressure at the target was higher than 0.9. In this study, we developed an optimization method to place a single-element transducer that effectively transmits acoustic energy to the targeted region in the brain. Our numerical and experimental results demonstrate that the proposed method can provide an optimal transducer location for safe and efficient FUS treatment.
Introduction
Purpose
Other
Study Objective
To develop and apply a differential evolution algorithm to determine the optimal location of a single-element transducer for transcranial focused ultrasound therapy.
Animal model / Human subject
Not reported in the provided text.
Disease model
Not specified
MRI or image guidance method
Image-guided navigation system with an optical camera (Polaris, Vicra, NDI, Waterloo, ON, Canada)
Targeted brain region(s)
Not Specified
Cargo name and characteristics
None — the paper focuses on optimization of a single-element transducer for transcranial focused ultrasound therapy; no AAV, protein, small molecule, nanoparticle, or other therapeutic agent is reported.
Route of administration
Not specified in the provided text
Outcomes and Safety
Summary of Outcomes
No biological or behavioral effects were reported; the study developed a differential evolution algorithm to determine the optimal placement of a single-element transducer for transcranial focused ultrasound therapy.
Duration of biological effect
not reported
Safety-related matter
No safety-related matters or adverse effects are mentioned in the provided text.
Brain Region
Ultrasound Parameters
Ultrasound instrument
single-element FUS transducer (GPS250-D80-FL110, Ultran Group)
FUS Frequency
250 KHz
FUS Intensity
Not specified in provided text
FUS Pressure
Not reported
FUS Mode
pulsed
Pulse duration
100 us
Duration of a single FUS session
Not specified in the provided text.
Focal Characteristics
Diameter: 95 mm, Radius of Curvature: 99 mm, Focal length: 85 mm
Treatment frequency
single session
We are open to feedback. If you see a mistake or have a suggestion, please contact us.
← Back to Search