Design, characterization and evaluation of a laser-guided focused ultrasound system for preclinical investigations.
Authors: Anastasiadis P, Mohammadabadi A, Fishman MJ, Smith JA, Nguyen BA, Hersh DS, Frenkel V
The clinical applications of transcranial focused ultrasound continue to expand and include ablation as well as drug delivery applications in the brain, where treatments are typically guided by MRI. Although MRI-guided focused ultrasound systems are also preferred for many preclinical investigations, they are expensive to purchase and operate, and require the presence of a nearby imaging center. For many basic mechanistic studies, however, MRI is not required. The purpose of this study was to design, construct, characterize and evaluate a portable, custom, laser-guided focused ultrasound system for noninvasive, transcranial treatments in small rodents. The system comprised an off-the-shelf focused ultrasound transducer and amplifier, with a custom cone fabricated for direct coupling of the transducer to the head region. A laser-guidance apparatus was constructed with a 3D stage for accurate positioning to 1 mm. Pressure field simulations were performed to demonstrate the effects of the coupling cone and the sealing membrane, as well as for determining the location of the focus and acoustic transmission across rat skulls over a range of sizes. Hydrophone measurements and exposures in hydrogels were used to assess the accuracy of the simulations. In vivo treatments were performed in rodents for opening the blood-brain barrier and to assess the performance and accuracy of the system. The effects of varying the acoustic pressure, microbubble dose and animal size were evaluated in terms of efficacy and safety of the treatments. The simulation results were validated by the hydrophone measurements and exposures in the hydrogels. The in vivo treatments demonstrated the ability of the system to open the blood-brain barrier. A higher acoustic pressure was required in larger-sized animals, as predicted by the simulations and transmission measurements. In a particular sized animal, the degree of blood-brain barrier opening, and the safety of the treatments were directly associated with the microbubble dose. The focused ultrasound system that was developed was found to be a cost-effective alternative to MRI-guided systems as an investigational device that is capable of accurately providing noninvasive, transcranial treatments in rodents.
Introduction
Purpose
Drug delivery with BBB opening
Study Objective
To design, build, characterize, and evaluate a portable laser-guided focused ultrasound system for noninvasive transcranial treatments in small rodents.
Animal model / Human subject
Rat (Rattus norvegicus), Sprague-Dawley, age not specified (weights 67.4-630 g reported), female
Disease model
Healthy
MRI or image guidance method
Laser-guidance apparatus (650 nm dot laser) for (x,y) targeting, with animals positioned in a stereotactic frame and treatments planned/targeted using stereotactic coordinates.
Outcomes and Safety
Summary of Outcomes
Transcranial focused ultrasound with systemic microbubbles produced reversible blood–brain barrier (BBB) opening in rats, with larger animals requiring higher acoustic pressure and microbubble dose controlling both the magnitude of opening and tissue damage. Successful parameter findings: pressure thresholds — ~0.2 MPa in smaller rats and ~0.3 MPa in larger rats; microbubble doses — 100 µL (large opening with microhemorrhage), 50 µL (moderate opening with some damage), 5 µL (smaller opening with no histologic damage); device configuration — cone with inflated membrane gave the highest, most consistent focal pressure (focus ≈14.1 mm from cone exit).
Safety-related matter
Higher microbubble (MB) doses produced adverse effects including microhemorrhages, structural tissue damage and T2* hypointensities (noted at 50 µL and more pronounced at 100 µL), with histology showing red blood cell extravasation and increased edema at higher doses; by contrast, no damage was observed at the lowest MB dose (5 µL). The authors therefore report that the system can safely and effectively open the BBB in small animals when appropriate (low) MB dosing is used and conclude the device is safe and effective for treating small animals.
Brain Region
Ultrasound Parameters
Ultrasound instrument
Spherical, single-element focused ultrasound (FUS) transducer (Sonic Concepts, Bothell, WA, USA); center frequency 500 kHz; curvature radius 63.2 mm; aperture (diameter) 82 mm; focal width (−6 dB) 2.36 mm; focal length (−6 dB) 13.50 mm.
FUS Frequency
Center frequency 500 kHz (bandwidth 400–600 kHz); pulse repetition frequency range 1 kHz to 0.1 Hz
FUS Mode
continuous
Pulse duration
0.00001 s to 1 s
Focal Characteristics
Focal depth: None; Focal length: 13.50 mm; Aperture size: 82 mm
Treatment frequency
Multiple
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