Pitt Shield

Using a novel rapid alternating steering angles pulse sequence to evaluate the impact of theranostic ultrasound-mediated ultra-short pulse length on blood-brain barrier opening volume and closure, cavitation mapping, drug delivery feasibility, and safety.

Authors: Batts AJ, Ji R, Noel RL, Kline-Schoder AR, Bae S, Kwon N, Konofagou EE

<b>Background:</b> Focused ultrasound (FUS)-mediated blood-brain barrier (BBB) opening is a noninvasive, safe and reversible technique for targeted drug delivery to the brain. Most preclinical systems developed to perform and monitor BBB opening are comprised of a separate geometrically focused transducer and passive cavitation detector (PCD) or imaging array. This study builds upon previous work from our group developing a single imaging phased array configuration for simultaneous BBB opening and monitoring called theranostic ultrasound (ThUS), leveraging ultra-short pulse lengths (USPLs) and a novel rapid alternating steering angles (RASTA) pulse sequence design for simultaneous bilateral sonications with target-specific USPL. The RASTA sequence was further employed to evaluate the impact of USPL on BBB opening volume, power cavitation imaging (PCI) pixel intensity, BBB closing timeline, drug delivery efficiency, and safety. <b>Methods:</b> A P4-1 phased array transducer driven by a Verasonics Vantage ultrasound system was operated using a custom script to run the RASTA sequence which consisted of interleaved steered, focused transmits and passive imaging. Contrast-enhanced magnetic resonance imaging (MRI) confirmed initial opening volume and closure of the BBB by longitudinal imaging through 72 hours post-BBB opening. For drug delivery experiments, mice were systemically administered a 70 kDa fluorescent dextran or adeno-associated virus serotype 9 (AAV9) for fluorescence microscopy or enzyme-linked immunosorbent assay (ELISA) to evaluate ThUS-mediated molecular therapeutic delivery. Additional brain sections were also H&E-stained to evaluate histological damage, and IBA1- and GFAP-stained to elucidate the effects of ThUS-mediated BBB opening on stimulation of key cell types involved in the neuro-immune response, microglia and astrocytes. <b>Results:</b> The ThUS RASTA sequence induced distinct BBB openings simultaneously in the same mouse where volume, PCI pixel intensity, level of dextran delivery, and AAV reporter transgene expression were correlated with brain hemisphere-specific USPL, consistent with statistically significant differences between 1.5, 5, and 10-cycle USPL groups. BBB closure after ThUS required 2-48 hours depending on USPL. The potential for acute damage and neuro-immune activation increased with USPL, but such observable damage was nearly reversed 96 hours post-ThUS. <b>Conclusion:</b> ThUS is a versatile single-array technique which exhibits the potential for investigating a variety of non-invasive therapeutic delivery applications in the brain.

Introduction

Purpose Drug delivery with BBB opening
Study Objective To develop and evaluate a single-array theranostic ultrasound (ThUS) RASTA sequence using ultra-short pulse lengths to simultaneously open and monitor the blood–brain barrier and determine how pulse length affects opening volume, cavitation imaging, therapeutic delivery, closure timeline, and safety.
Animal model / Human subject Mouse (Mus musculus); strain: None; age: None; sex: None
Disease model Healthy
MRI or image guidance method Ultrasound image guidance using a P4-1 phased array with interleaved steered, focused transmits and passive cavitation imaging (theranostic ultrasound RASTA sequence); MRI was used post‑hoc to confirm BBB opening
Cargo name and characteristics 70 kDa fluorescent dextran (macromolecular fluorescent tracer) and adeno-associated virus serotype 9 (AAV9, viral gene therapy vector)

Outcomes and Safety

Summary of Outcomes ThUS RASTA produced USPL-dependent BBB opening and molecular delivery: 10-cycle (6.67 μs) pulses yielded the largest BBB opening, highest PCI signal, greatest 70 kDa dextran and AAV9 (GFP) delivery; 5-cycle (3.33 μs) produced intermediate effects; 1.5-cycle (1.0 μs) produced the smallest, fastest-closing openings (closed by ~7 h) with least acute histological damage. Longer USPLs increased reversible microhemorrhage and microglial/astrocytic activation (largely resolved by 96 h).
Duration of biological effect 96 hours
Safety-related matter Higher USPLs (5–10 cycles) increased incidence of acute, reversible histological damage (erythrocyte extravasations/microhemorrhages) and neuro-immune activation (microglial aggregation), whereas 1.5‑cycle pulses caused only minor extravasation; these effects were almost entirely reversed by 96 hours post‑ThUS, and no permanent adverse effects were reported.

Brain Region

Visualization unavailable

Ultrasound Parameters

Ultrasound instrument P4-1 phased array transducer; Verasonics Vantage ultrasound system (manufacturer: Verasonics); transducer aperture/diameter: None
FUS Mode pulsed
Focal Characteristics Focal depth: None; Focal length: None; Aperture size: None
Treatment frequency single

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