Ultrasound-triggered oxygen-loaded nanodroplets enhance and monitor cerebral damage from sonodynamic therapy.
Authors: Lea-Banks H, Wu SK, Lee H, Hynynen K
In sonodynamic therapy, cellular toxicity from sonosensitizer drugs, such as 5-aminolevulinic acid hydrochloride (5-ALA), may be triggered with focused ultrasound through the production of reactive oxygen species (ROS). Here we show that by increasing local oxygen during treatment, using oxygen-loaded perfluorocarbon nanodroplets (250 +/- 8 nm), we can increase the damage induced by 5-ALA, and monitor the severity by recording acoustic emissions in the brain. To achieve this, we sonicated the right striatum of 16 healthy rats after an intravenous dose of 5-ALA (200 mg/kg), followed by saline, nanodroplets, or oxygen-loaded nanodroplets. We assessed haemorrhage, edema and cell apoptosis immediately following, 24 hr, and 48 hr after focused ultrasound treatment. The localized volume of damaged tissue was significantly enhanced by the presence of oxygen-loaded nanodroplets, compared to ultrasound with unloaded nanodroplets (3-fold increase), and ultrasound alone (40-fold increase). Sonicating 1 hr following 5-ALA injection was found to be more potent than 2 hr following 5-ALA injection (2-fold increase), and the severity of tissue damage corresponded to the acoustic emissions from droplet vaporization. Enhancing the local damage from 5-ALA with monitored cavitation activity and additional oxygen could have significant implications in the treatment of atherosclerosis and non-invasive ablative surgeries.
Introduction
Purpose
Sonodynamic therapy
Study Objective
To determine whether oxygen-loaded perfluorocarbon nanodroplets increase 5-ALA-mediated sonodynamic damage in the rat brain and whether acoustic emissions can monitor treatment severity.
Animal model / Human subject
Rats (species: Rattus norvegicus); strain: not specified; age: not specified; sex: not specified
Disease model
Healthy
Targeted brain region(s)
Striatum
Cargo name and characteristics
5-aminolevulinic acid hydrochloride (5-ALA) — small-molecule sonosensitizer, IV dose 200 mg/kg; Oxygen-loaded perfluorocarbon nanodroplets — oxygen-carrying perfluorocarbon nanoparticles (nanodroplets), ~250 ± 8 nm diameter (also compared with unloaded nanodroplets and saline).
Route of administration
intravenous
Outcomes and Safety
Summary of Outcomes
Oxygen-loaded perfluorocarbon nanodroplets combined with 5‑ALA and transcranial focused ultrasound produced markedly increased localized brain tissue damage (haemorrhage, edema, and apoptosis) versus FUS alone or unloaded droplets, and the damage magnitude correlated strongly with ultraharmonic cavitation emissions. Successful parameters included oxygen-loaded DFB nanodroplets (~250 ± 8 nm), FUS at a fixed transmit pressure of 2.0 MPa, sonication 1 hour (more effective than 2 hours) after 5‑ALA (200 mg/kg), and real-time monitoring of ultraharmonic emissions to predict damage.
Duration of biological effect
48 hr
Safety-related matter
Treatment with oxygen-loaded nanodroplets combined with 5-ALA and focused ultrasound produced significant local adverse effects—marked increases in haemorrhage, edema and apoptotic cell death (e.g., ~3-fold vs unloaded nanodroplets and ~40-fold vs FUS alone); FUS alone caused no detectable haemorrhage or edema.
Brain Region
Ultrasound Parameters
Focal Characteristics
Focal depth: None; Focal length: None; Aperture size: None
Treatment frequency
Single
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