Pitt Shield

Cavitation monitoring, treatment strategy, and acoustic simulations of focused ultrasound blood-brain barrier disruption in patients with glioblastoma.

Authors: McDannold N, Wen PY, Reardon DA, Fletcher SM, Golby AJ

We report our experience disrupting the blood-brain barrier (BBB) to improve drug delivery in glioblastoma patients receiving temozolomide chemotherapy. The goals of this retrospective analysis were to compare MRI-based measures of BBB disruption and vascular damage to the exposure levels, acoustic emissions data, and acoustic simulations. We also simulated the cavitation detectors. Monthly BBB disruption (BBBD) was performed using a 220 kHz hemispherical phased array focused ultrasound system (Exablate Neuro, InSightec) and Definity microbubbles (Lantheus) over 38 sessions in nine patients. Exposure levels were actively controlled via the cavitation dose obtained by monitoring subharmonic acoustic emissions. The acoustic field and sensitivity profile of the cavitation detection system were simulated. Exposure levels and cavitation metrics were compared to the level of BBBD evident in contrast-enhanced MRI and to hypointense regions in T2*-weighted MRI. Our treatment strategy evolved from using a relatively high cavitation dose goal to a lower goal and longer sonication duration and ultimately resulted in BBBD across the treatment volume with minimal petechiae. Subsonication-level feedback control of the exposure using acoustic emissions also improved consistency. Simulations of the acoustic field suggest that reflections and standing waves appear when the focus is placed near the skull, but their effects can be mitigated with aberration correction. Simulating the cavitation detectors suggest variations in the sensitivity profile across the treatment volume and between patients. A correlation was observed with the cavitation dose, BBBD and petechial hemorrhage in 8/9 patients, but substantial variability was evident. Analysis of the cavitation spectra found that most bursts did not contain wideband emissions, a signature of inertial cavitation, but biggest contribution to the cavitation dose - the metric used to control the procedure - came from bursts with wideband emissions. Using a low subharmonic cavitation dose with a longer duration resulted in BBBD with minimal petechiae. The correlation between cavitation dose and outcomes demonstrates the benefits of feedback control based on acoustic emissions, although more work is needed to reduce variability. Acoustic simulations could improve focusing near the skull and inform our analysis of acoustic emissions. Monitoring additional frequency bands and improving the sensitivity of the cavitation detection could provide signatures of microbubble activity associated with BBB disruption that were undetected here and could improve our ability to achieve BBB disruption without vascular damage.

Introduction

Purpose Drug delivery with BBB opening
Study Objective To compare MRI-based measures of blood–brain barrier disruption and vascular damage with ultrasound exposure levels, acoustic emissions, and acoustic simulations in glioblastoma patients undergoing focused ultrasound-mediated BBB disruption during temozolomide therapy.
Animal model / Human subject Homo sapiens (glioblastoma patients); strain: N/A; age: not reported; sex: not reported; n=9 patients
Disease model glioblastoma
MRI or image guidance method MRI guided
Targeted brain region(s) Hyperintense Regions On Flair Sequences
Cargo name and characteristics Temozolomide (small-molecule alkylating chemotherapy agent)

Outcomes and Safety

Summary of Outcomes Focused ultrasound (220 kHz hemispherical phased array with Definity microbubbles) achieved blood–brain barrier disruption across the treatment volume with minimal petechial hemorrhage; cavitation dose correlated with BBBD and petechiae in 8/9 patients. Successful parameters were a low subharmonic cavitation dose, longer sonication duration, and subharmonic-level (acoustic emissions) feedback control.
Safety-related matter BBB disruption was achieved with minimal petechial hemorrhage; petechial hemorrhage correlated with cavitation dose in 8/9 patients, indicating some vascular damage in a subset but overall minimal. Subharmonic feedback control and lower cavitation dose with longer sonication reduced vascular damage, though variability and risk associated with wideband (inertial) emissions remain.

Brain Region

Ultrasound Parameters

Ultrasound instrument Exablate Neuro (InSightec); transducer aperture/diameter: None
FUS Frequency 220 kHz
FUS Mode pulsed
Pulse duration 5 ms
Duration of a single FUS session 3 minutes
Focal Characteristics Focal depth: None; Focal length: None; Aperture size: None
Treatment frequency multiple sessions

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