The impact of standing wave effects on transcranial focused ultrasound disruption of the blood-brain barrier in a rat model.
Authors: O'Reilly MA, Huang Y, Hynynen K
Microbubble-mediated disruption of the blood-brain barrier (BBB) for targeted drug delivery using focused ultrasound shows great potential as a therapy for a wide range of brain disorders. This technique is currently at the pre-clinical stage and important work is being conducted in animal models. Measurements of standing waves in ex vivo rat skulls were conducted using an optical hydrophone and a geometry dependence was identified. Standing waves could not be eliminated through the use of swept frequencies, which have been suggested to eliminate standing waves. Definitive standing wave patterns were detected in over 25% of animals used in a single study. Standing waves were successfully eliminated using a wideband composite sharply focused transducer and a reduced duty cycle. The modified pulse parameters were used in vivo to disrupt the BBB in a rat indicating that, unlike some other bioeffects, BBB disruption is not dependent on standing wave conditions. Due to the high variability of standing waves and the inability to correctly estimate in situ pressures given standing wave conditions, attempts to minimize standing waves should be made in all future work in this field to ensure that results are clinically translatable.
Introduction
Purpose
Drug delivery with BBB opening
Study Objective
To investigate the presence and impact of standing waves during microbubble-mediated focused ultrasound blood–brain barrier disruption in rats and to develop pulse and transducer methods to eliminate them.
Animal model / Human subject
Rat (Rattus norvegicus); strain: not specified; age: not specified; sex: not specified
Disease model
Healthy
Outcomes and Safety
Summary of Outcomes
Microbubble-mediated focused ultrasound successfully disrupted the blood–brain barrier in vivo in rats and this effect did not depend on the presence of standing waves; standing waves were common ex vivo and could not be eliminated with swept-frequency excitation. Standing waves were successfully eliminated using a wideband composite sharply-focused transducer and a reduced duty cycle (modified pulse parameters), whereas swept frequencies were ineffective.
Safety-related matter
No adverse effects were reported. The authors warn that standing waves cause high variability and make accurate in situ pressure estimation difficult, so minimizing standing waves is recommended to ensure clinical translatability and safety.
Brain Region
Ultrasound Parameters
Ultrasound instrument
Wideband composite transducer
FUS Frequency
1.503 MHz
FUS Pressure
0.58 Mpa; 0.71 Mpa
FUS Mode
pulsed
Pulse duration
10 ms
Duration of a single FUS session
2 min
Focal Characteristics
Focal depth: None; Focal length: 80 mm; Aperture size: 100 mm
Treatment frequency
Multiple
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