Pitt Shield

An Affordable and Easy-to-Use Focused Ultrasound Device for Noninvasive and High Precision Drug Delivery to the Mouse Brain.

Authors: Hu Z, Chen S, Yang Y, Gong Y, Chen H

Focused ultrasound (FUS) combined with microbubble-mediated blood-brain barrier (BBB) opening (FUS-BBBO) is not only a promising technique for clinical applications but also a powerful tool for preclinical research. However, existing FUS devices for preclinical research are expensive, bulky, and lack the precision needed for small animal research, which limits the broad adoption of this promising technique by the research community. Our objective was to design and fabricate an affordable, easy-to-use, high-precision FUS device for small animal research. We designed and fabricated in-house mini-FUS transducers (∼$80 each in material cost) with three frequencies (1.5, 3.0, and 6.0 MHz) and integrated them with a stereotactic frame for precise mouse brain targeting using established stereotactic procedures. The BBB opening volume by FUS at different acoustic pressures (0.20-0.57 MPa) was quantified using T1-weighted contrast-enhanced magnetic resonance imaging of gadolinium leakage and fluorescence imaging of Evans blue extravasation. The targeting accuracy of the device as measured by the offset between the desired target location and the centroid of BBBO was 0.63 ± 0.19 mm. The spatial precision of the device in targeting individual brain structures was improved by the use of higher frequency FUS transducers. The BBB opening volume had high linear correlations with the cavitation index (defined by the ratio between acoustic pressure and frequency) and mechanical index (defined by the ratio between acoustic pressure and the square root of frequency). The correlation coefficient of the cavitation index was slightly higher than that of the mechanical index. This study demonstrated that spatially accurate and precise BBB opening was achievable using an affordable and easy-to-use FUS device. The BBB opening volume was tunable by modulating the cavitation index. This device is expected to decrease the barriers to the adoption of the FUS-BBBO technique by the broad research community.

Introduction

Purpose Drug delivery with BBB opening
Study Objective To design and fabricate an affordable, easy-to-use, high-precision focused ultrasound device for small animal research.
Animal model / Human subject Mouse (Mus musculus); C57BL/6 age: 8 weeks; sex: female
Disease model Healthy
MRI or image guidance method Stereotactic frame using established stereotactic procedures (targeting guided by stereotaxy); MRI (T1-weighted contrast-enhanced with gadolinium) was used to quantify BBB opening, not for real-time targeting.
Targeted brain region(s) Thalamus
Target coordinates AP: -1.94 mm, ML: 1.50 mm, DV: -3.30 mm
Cargo name and characteristics Gadolinium-based MRI contrast agent (small-molecule chelate) and Evans blue dye (albumin-binding small-molecule tracer)
Route of administration Intravenous

Outcomes and Safety

Summary of Outcomes The stereotactic mini-FUS device achieved spatially accurate BBB opening in mice )targeting error 0.63 +-0.19 mm). BBB opening volume was tunable and correlated strongly with cavitation index, while higher ultrasound frequencies produced more spatially confined BBBO
Safety-related matter Microhemorrhage observed only at 1.5 MHz and 0.57 Mpa. No tissue damage detected at lower cavitation index or mechanical index values, and the author identified CI < 0.38 or MI < 0.46 as safe operating ranges.

Brain Region

Ultrasound Parameters

Ultrasound instrument Single-element PZT focused ultrasound transducer mounted on stereotactic frame
FUS Frequency 1.5 MHz, 3.0 MHz, 6.0 MHz
FUS Pressure 0.20 Mpa, 0.40 Mpa, 0.57 MPa
FUS Mode pulsed
Pulse duration 6.6 ms
Duration of a single FUS session 2 minutes
Focal Characteristics Focal depth: None; focal length: 10 mm; Aparture size: 13 mm
Treatment frequency single session

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