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Cavitation-enhanced nonthermal ablation in deep brain targets: feasibility in a large animal model.

Authors: Arvanitis CD, Vykhodtseva N, Jolesz F, Livingstone M, McDannold N

OBJECT Transcranial MRI-guided focused ultrasound (TcMRgFUS) is an emerging noninvasive alternative to surgery and radiosurgery that is undergoing testing for tumor ablation and functional neurosurgery. The method is currently limited to central brain targets due to skull heating and other factors. An alternative ablative approach combines very low intensity ultrasound bursts and an intravenously administered microbubble agent to locally destroy the vasculature. The objective of this work was to investigate whether it is feasible to use this approach at deep brain targets near the skull base in nonhuman primates. METHODS In 4 rhesus macaques, targets near the skull base were ablated using a clinical TcMRgFUS system operating at 220 kHz. Low-duty-cycle ultrasound exposures (sonications) were applied for 5 minutes in conjunction with the ultrasound contrast agent Definity, which was administered as a bolus injection or continuous infusion. The acoustic power level was set to be near the inertial cavitation threshold, which was measured using passive monitoring of the acoustic emissions. The resulting tissue effects were investigated with MRI and with histological analysis performed 3 hours to 1 week after sonication. RESULTS Thirteen targets were sonicated in regions next to the optic tract in the 4 animals. Inertial cavitation, indicated by broadband acoustic emissions, occurred at acoustic pressure amplitudes ranging from 340 to 540 kPa. MRI analysis suggested that the lesions had a central region containing red blood cell extravasations that was surrounded by edema. Blood-brain barrier disruption was observed on contrast-enhanced MRI in the lesions and in a surrounding region corresponding to the prefocal area of the FUS system. In histology, lesions consisting of tissue undergoing ischemic necrosis were found in all regions that were sonicated above the inertial cavitation threshold. Tissue damage in prefocal areas was found in several cases, suggesting that in those cases the sonication exceeded the inertial cavitation threshold in the beam path. CONCLUSIONS It is feasible to use a clinical TcMRgFUS system to ablate skull base targets in nonhuman primates at time-averaged acoustic power levels at least 2 orders of magnitude below what is needed for thermal ablation with this device. The results point to the risks associated with the method if the exposure levels are not carefully controlled to avoid inertial cavitation in the acoustic beam path. If methods can be developed to provide this control, this nonthermal approach could greatly expand the use of TcMRgFUS for precisely targeted ablation to locations across the entire brain.

Introduction

Purpose mechanical ablation
Study Objective To investigate whether low-duty-cycle, microbubble-mediated transcranial MR-guided focused ultrasound can feasibly ablate deep skull-base brain targets in nonhuman primates.
Animal model / Human subject Rhesus macaque (Macaca mulatta); strain: not reported; age: not reported; sex: not reported; n=4
Disease model Healthy
MRI or image guidance method MRI-guided (Transcranial MRI-guided focused ultrasound, TcMRgFUS)
Targeted brain region(s) optic tract

Outcomes and Safety

Summary of Outcomes Focused ultrasound with intravenous microbubbles (Definity) produced local vascular destruction, blood–brain barrier disruption, and ischemic necrosis at skull‑base targets when using low‑duty‑cycle 220 kHz sonications for 5 minutes at pressures near the inertial cavitation threshold (340–540 kPa); both bolus and continuous Definity infusion were effective and required time‑averaged acoustic powers ≈100× lower than thermal ablation. Prefocal tissue damage was observed when cavitation occurred in the beam path, indicating the need to control exposure to avoid off‑target effects.
Duration of biological effect 3 hours to 1 week
Safety-related matter Adverse effects included red blood cell extravasation, surrounding edema, blood–brain barrier disruption, and ischemic necrosis in all regions sonicated above the inertial cavitation threshold, with additional tissue damage in prefocal areas when the beam path exceeded the threshold. The authors warn of significant risks if exposure levels are not carefully controlled to avoid inertial cavitation.

Brain Region

Ultrasound Parameters

Ultrasound instrument clinical TcMRgFUS system (220 kHz); manufacturer: None; transducer aperture/diameter: None
FUS Frequency 220 kHz
FUS Pressure 0.34-0.54 MPa
FUS Mode pulsed
Duration of a single FUS session 5 minutes
Focal Characteristics Focal depth: None; Focal length: None; Aperture size: None
Treatment frequency Multiple

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