Pitt Shield

Magnetic resonance-guided motorized transcranial ultrasound system for blood-brain barrier permeabilization along arbitrary trajectories in rodents.

Authors: Magnin R, Rabusseau F, Salabartan F, Mériaux S, Aubry JF, Le Bihan D, Dumont E, Larrat B

Focused ultrasound combined with microbubble injection is capable of locally and transiently enhancing the permeability of the blood-brain barrier (BBB). Magnetic resonance imaging (MRI) guidance enables to plan, monitor, and characterize the BBB disruption. Being able to precisely and remotely control the permeabilization location is of great interest to perform reproducible drug delivery protocols. In this study, we developed an MR-guided motorized focused ultrasound (FUS) system allowing the transducer displacement within preclinical MRI scanners, coupled with real-time transfer and reconstruction of MRI images, to help ultrasound guidance. Capabilities of this new device to deliver large molecules to the brain on either single locations or along arbitrary trajectories were characterized in vivo on healthy rats and mice using 1.5 MHz ultrasound sonications combined with microbubble injection. The efficacy of BBB permeabilization was assessed by injecting a gadolinium-based MR contrast agent that does not cross the intact BBB. The compact motorized FUS system developed in this work fits into the 9-cm inner diameter of the gradient insert installed on our 7-T preclinical MRI scanners. MR images acquired after contrast agent injection confirmed that this device can be used to enhance BBB permeability along remotely controlled spatial trajectories of the FUS beam in both rats and mice. The two-axis motor stage enables reaching any region of interest in the rodent brain. The positioning error when targeting the same anatomical location on different animals was estimated to be smaller than 0.5 mm. Finally, this device was demonstrated to be useful for testing BBB opening at various acoustic pressures (0.2, 0.4, 0.7, and 0.9 MPa) in the same animal and during one single ultrasound session. Our system offers the unique possibility to move the transducer within a high magnetic field preclinical MRI scanner, thus enabling the delivery of large molecules to virtually any rodent brain area in a non-invasive manner. It results in time-saving and reproducibility and could be used to either deliver drugs over large parts of the brain or test different acoustic conditions on the same animal during the same session, therefore reducing physiological variability.

Introduction

Purpose Drug delivery with BBB opening
Study Objective Develop and validate an MR-guided motorized focused ultrasound system that can remotely and precisely move the transducer inside preclinical MRI scanners to control and characterize blood–brain barrier permeabilization for targeted delivery of large molecules in rodents.
Animal model / Human subject Sprague Dawley rat (120 g); C57Bl/6 mouse
Disease model healthy
MRI or image guidance method MR-ARFI guided

Outcomes and Safety

Summary of Outcomes MR-guided motorized focused ultrasound combined with microbubbles transiently and reproducibly opens the blood–brain barrier in targeted rodent brain regions—enabling delivery of large molecules in a pressure-dependent manner (threshold ≈0.4 MPa) with submillimeter targeting accuracy and no radiological evidence of tissue damage.
Duration of biological effect 30 min
Safety-related matter No radiological evidence of brain damage observed.

Brain Region

Visualization unavailable

Ultrasound Parameters

Ultrasound instrument Single-element MR-compatible focused transducer (Imasonic, France): 8-channel annular phased array (Imasonic, France)
FUS Frequency 1.5 MHz
FUS Pressure 0.2 MPa, 0.4 MPa, 0.7 MPa, 0.9 MPa
FUS Mode pulsed and continuous
Pulse duration 3 ms
Duration of a single FUS session 1 min; 10 min; 3 min
Focal Characteristics Single-element: focal diameter: 25 mm, focal depth 20 mm; phased-array annular transducer: focal diameter 30 mm, focal depth: 20 mm
Treatment frequency single session

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