Novel Focused Ultrasound Gene Therapy Approach Noninvasively Restores Dopaminergic Neuron Function in a Rat Parkinson's Disease Model.
Authors: Mead BP, Kim N, Miller GW, Hodges D, Mastorakos P, Klibanov AL, Mandell JW, Hirsh J, Suk JS, Hanes J, Price RJ
Therapies capable of decelerating, or perhaps even halting, neurodegeneration in Parkinson's disease (PD) remain elusive. Clinical trials of PD gene therapy testing the delivery of neurotrophic factors, such as the glial cell-line derived neurotrophic factor (GDNF), have been largely ineffective due to poor vector distribution throughout the diseased regions in the brain. In addition, current delivery strategies involve invasive procedures that obviate the inclusion of early stage patients who are most likely to benefit from GDNF-based gene therapy. Here, we introduce a two-pronged treatment strategy, composed of MR image-guided focused ultrasound (FUS) and brain-penetrating nanoparticles (BPN), that provides widespread but targeted GDNF transgene expression in the brain following systemic administration. MR image-guided FUS allows circulating gene vectors to partition into the brain tissue by noninvasive and transient opening of the blood-brain barrier (BBB) within the areas where FUS is applied. Once beyond the BBB, BPN provide widespread and uniform GDNF expression throughout the targeted brain tissue. After only a single treatment, our strategy led to therapeutically relevant levels of GDNF protein content in the FUS-targeted regions in the striatum of the 6-OHDA-induced rat model of PD, which lasted at least up to 10 weeks. Importantly, our strategy restored both dopamine levels and dopaminergic neuron density and reversed behavioral indicators of PD-associated motor dysfunction with no evidence of local or systemic toxicity. Our combinatorial approach overcomes limitations of current delivery strategies, thereby potentially providing a novel means to treat PD.
Introduction
Purpose
Drug delivery with BBB opening
Study Objective
To develop and evaluate a noninvasive MR-guided focused ultrasound combined with brain-penetrating nanoparticles for systemic delivery of GDNF gene therapy to achieve widespread, targeted neurotrophic expression and therapeutic benefit in a rat model of Parkinson’s disease.
Animal model / Human subject
Rat (6-OHDA-induced Parkinson's disease model), strain: not specified, age: not specified, sex: female
Disease model
Parkinson's disease (6-OHDA-induced rat model)
MRI or image guidance method
MR image-guided focused ultrasound (FUS)
Targeted brain region(s)
Striatum
Target coordinates
AP: 0.5, ML: 2.1, DV: -5; AP: -0.5, ML: 3.8, DV: -5 mm
Cargo name and characteristics
GDNF transgene (gene therapy payload) delivered systemically via brain-penetrating nanoparticles (BPN); results in sustained GDNF protein expression in FUS-targeted brain regions
Route of administration
systemic (intravenous)
Outcomes and Safety
Summary of Outcomes
A single MR image-guided focused ultrasound (FUS) + brain-penetrating nanoparticle (BPN) systemic treatment produced sustained, therapeutically relevant GDNF expression in FUS-targeted striatum for at least 10 weeks, restored dopamine levels and dopaminergic neuron density, and reversed PD-associated motor deficits with no local or systemic toxicity. The excerpt does not report testing multiple FUS parameter sets or specify which FUS parameters were used or found successful.
Duration of biological effect
12 weeks
Safety-related matter
They report no evidence of local or systemic toxicity following the single treatment, indicating no observed adverse effects.
Brain Region
Ultrasound Parameters
Ultrasound instrument
1.15 MHz single element focused transducer (FUS Instruments, Toronto, Canada)
FUS Frequency
1.15 MHz
FUS Pressure
0.6 MPa
FUS Mode
pulsed
Pulse duration
10 ms
Duration of a single FUS session
2 minutes
Focal Characteristics
focal depth: 5 mm; focal length: None; aperture size: None
Treatment frequency
single
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