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Ultrasound combined with glial cell line-derived neurotrophic factor-loaded microbubbles for the targeted treatment of drug addiction.

Authors: Wang F, Wu H, Hu A, Dong L, Lin X, Li M, Wang Y, Li W, Chang L, Chang Y, Liu H, Shi Y, Li N

Drug addiction is a serious problem globally, recently exacerbated by the COVID-19 pandemic. Glial cell-derived neurotrophic factor (GDNF) is considered a potentially effective strategy for the treatment of addiction. Previous animal experiments have proven that GDNF has a good therapeutic effect on drug addiction, but its clinical application is limited due to its poor blood-brain barrier (BBB) permeability. Low-frequency focused ultrasound, combined with microbubbles, is a non-invasive and reversible technique for locally-targeted BBB opening. In the present study, magnetic resonance imaging-guided low-frequency focused ultrasound, combined with GDNF microbubbles, was used to target BBB opening in the ventral tegmental area (VTA) region. The effects of GDNF on morphine-induced conditioned place preference (CPP) and acute withdrawal symptoms in rats after a partially opened BBB were evaluated by behavioral observation. Western blot was used to detect changes in tyrosine hydroxylase (TH) expression levels in the VTA region after different treatments, and high performance liquid chromatography was used to detect the changes in monoamine neurotransmitter content. The results showed that ultrasound combined with GDNF microbubbles targeted and opened the BBB in the VTA region, and significantly increased GDNF content, destroyed morphine-induced CPP, and reduced the withdrawal symptoms of morphine addiction in rats. Furthermore, the up-regulation of TH expression and the increase of norepinephrine and dopamine content induced by morphine were significantly reversed, and the increase of 5-hydroxytryptamine content was partially reversed. Therefore, ultrasound combined with GDNF microbubbles to target and open the BBB can effectively increase the content of central GDNF, thus playing a therapeutic role in morphine addiction. Our study provides a new approach to locally open the BBB and target delivery of neurotrophic factors, such as GDNF, to treat brain diseases like addiction.

Introduction

Purpose Drug delivery with BBB opening
Study Objective To test whether MRI-guided low-frequency focused ultrasound combined with GDNF-loaded microbubbles can open the BBB in the ventral tegmental area to deliver GDNF and reduce morphine-induced addiction behaviors in rats.
Animal model / Human subject Rat (Sprague-Dawley; strain not specified; age not specified; sex male
Disease model Morphine addiction (opioid addiction model in rats)
MRI or image guidance method Magnetic resonance imaging-guided (MRI-guided) low-frequency focused ultrasound targeting the ventral tegmental area (VTA)
Targeted brain region(s) Ventral tegmental area
Cargo name and characteristics GDNF (glial cell-derived neurotrophic factor) — a recombinant neurotrophic protein (growth factor) delivered to increase central GDNF levels and modulate dopaminergic systems (affects TH expression and monoamine neurotransmitters).
Route of administration intravenous

Outcomes and Safety

Summary of Outcomes MRI-guided low-frequency focused ultrasound combined with GDNF-loaded microbubbles opened the BBB in the VTA and enabled targeted GDNF delivery. Treatment abolished morphine-induced conditioned place preference, reduced withdrawal symptoms, and reversed morphine-induced increases in tyrosine hydroxylase, norepinephrine, and dopamine, with partial normalization of serotonin levels.
Duration of biological effect 24 h
Safety-related matter The authors state that MRI-guided low-frequency focused ultrasound combined with GDNF-loaded microbubbles is a non-invasive, reversible method that can avoid brain tissue damage caused by intracranial microinjection; no adverse effects or safety concerns were reported in the study.

Brain Region

Ultrasound Parameters

Ultrasound instrument MRI-guided focused ultrasound
FUS Frequency 1 MHz
FUS Pressure 0.8 Mpa
FUS Mode pulsed
Duration of a single FUS session 1 minute
Focal Characteristics Focal depth: None; Focal length: None; Aperture size: None
Treatment frequency multiple sessions

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