Noninvasive Targeted Transcranial Neuromodulation via Focused Ultrasound Gated Drug Release from Nanoemulsions.
Authors: Airan RD, Meyer RA, Ellens NP, Rhodes KR, Farahani K, Pomper MG, Kadam SD, Green JJ
Targeted, noninvasive neuromodulation of the brain of an otherwise awake subject could revolutionize both basic and clinical neuroscience. Toward this goal, we have developed nanoparticles that allow noninvasive uncaging of a neuromodulatory drug, in this case the small molecule anesthetic propofol, upon the application of focused ultrasound. These nanoparticles are composed of biodegradable and biocompatible constituents and are activated using sonication parameters that are readily achievable by current clinical transcranial focused ultrasound systems. These particles are potent enough that their activation can silence seizures in an acute rat seizure model. Notably, there is no evidence of brain parenchymal damage or blood-brain barrier opening with their use. Further development of these particles promises noninvasive, focal, and image-guided clinical neuromodulation along a variety of pharmacological axes.
Introduction
Purpose
Drug delivery WITHOUT BBB opening
Study Objective
Develop biodegradable, biocompatible nanoparticles that enable noninvasive, focused ultrasound-triggered uncaging of propofol for targeted, image-guided neuromodulation.
Animal model / Human subject
Rat (Rattus norvegicus); strain None; age None; sex None
Disease model
Seizures (acute rat seizure model)
MRI or image guidance method
Image-guided (modality None)
Cargo name and characteristics
Propofol — a small-molecule anesthetic loaded into biodegradable, biocompatible nanoparticles for focused-ultrasound-triggered uncaging/controlled release
Outcomes and Safety
Summary of Outcomes
Nanoparticle-mediated ultrasound uncaging of propofol produced focal neuromodulation that silenced seizures in an acute rat model without evidence of brain parenchymal damage or blood–brain barrier opening, using sonication parameters described as readily achievable by current clinical transcranial focused ultrasound systems.
Safety-related matter
The authors state the nanoparticles are biodegradable and biocompatible and are activated with clinically achievable sonication parameters; importantly, they report no evidence of brain parenchymal damage or blood–brain barrier opening with their use.
Brain Region
Ultrasound Parameters
Focal Characteristics
Focal depth: None; Focal length: None; Aperture size: None
Treatment frequency
single session
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