Pitt Shield

A preliminary study of Parkinson's gene therapy via sono-magnetic sensing gene vector for conquering extra/intracellular barriers in mice.

Authors: Wu CY, Huang RY, Liao EC, Lin YC, Ho YJ, Chang CW, Chan HL, Huang YZ, Hsieh TH, Fan CH, Yeh CK

Non-virus genetic treatment for Parkinson's disease (PD) via plasmid glial cell-line derived neurotrophic factor (pGDNF) has shown potential for repairing damaged dopaminergic neurons. However, development of this gene therapy is largely hampered by the insufficient transfection efficiency as a result of the cell membrane, lysosome, and cytoskeleton meshwork. In this study, we propose the use of polyethylenimine (PEI)-superparamagnetic iron oxide-plasmid DNA (pDNA)-loaded microbubbles (PSp-MBs) in conjunction with focused ultrasound (FUS) and two-step magnetic navigation to provide cavitation, proton sponge effect and magnetic effects to increase the efficiency of gene delivery. The gene transfection rate in the proposed system was 2.2-fold higher than that of the commercial agent (TransIT®-LT1). The transfection rate could be boosted ∼11%, ∼10%, and 6% by cavitation-magnetic hybrid enhanced cell membrane permeabilization, proton sponge effect, and magnetic-assisted cytoskeleton-reorganization, respectively. In vivo data suggested that effective gene delivery with this system results in a 3.2-fold increase in recovery of dopaminergic neurons and a 3.9-fold improvement in the motor behavior when compared to untreated genetic PD mice. We proposed that this novel FUS-magnetic hybrid gene delivery platform could be integrated with a variety of therapeutic genes for treating neurodegenerative diseases in the future.

Introduction

Purpose Drug delivery WITHOUT BBB opening
Study Objective To evaluate a sono-magnetic sensing gene vector for delivering Parkinson's gene therapy and overcoming extra- and intracellular barriers in mice.
Animal model / Human subject Mice; strain: not specified; age: not specified; sex: not specified
Disease model Parkinson's disease
Cargo name and characteristics Gene therapy vector (genetic cargo for Parkinson's; unspecified therapeutic gene delivered via a gene vector / viral gene delivery system)

Outcomes and Safety

Summary of Outcomes The study reports that a sono-magnetic sensing gene vector can overcome extra- and intracellular barriers to enable Parkinson's gene therapy delivery in mice; no specific focused ultrasound parameters or parameter comparisons are reported in the provided text.
Safety-related matter No safety issues or adverse effects are mentioned in the provided text.

Brain Region

Visualization unavailable

Ultrasound Parameters

Focal Characteristics Focal depth: None; Focal length: None; Aperture size: None

We are open to feedback. If you see a mistake or have a suggestion, please contact us.

← Back to Search