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The Effects of Oxygen on Ultrasound-Induced Blood-Brain Barrier Disruption in Mice.

Authors: McDannold N, Zhang Y, Vykhodtseva N

Numerous researchers are investigating the use of microbubble-enhanced ultrasound to disrupt the blood-brain barrier (BBB) and deliver drugs to the brain. This study investigated the impact of using oxygen as a carrier gas for anesthesia on microbubble activity and BBB disruption. Targets in mice were sonicated in combination with administration of Optison microbubbles (100 μL/kg) under isoflurane anesthesia with either oxygen or medical air. A 690-kHz focused ultrasound transducer applied 10-ms bursts at peak pressure amplitudes of 0.46-0.54 MPa (n = 2) or 0.34-0.36 MPa (n = 5). After sonication of two locations in one hemisphere, the carrier gas for the anesthesia was changed and the sonications were repeated in the contralateral hemisphere. The BBB disruption, measured via contrast-enhanced magnetic resonance imaging, was significantly greater (p < 0.001) with medical air than with oxygen. Harmonic emissions were also greater with air (p < 0.001), while the decay rate of the harmonic emissions was 1.5 times faster with oxygen. A good correlation (R<sup>2</sup>, 0.46) was observed between the harmonic emissions strength and magnetic resonance imaging signal enhancement. At 0.46-0.54 MPa, both the occurrence and strength of wideband emissions were greater with medical air. However, at lower peak pressure amplitudes of 0.34-0.36 MPa, the strength and probability for wideband emissions were higher with oxygen. Little or no effects were observed in histology at 0.34-0.36 MPa. These findings show that use of oxygen as a carrier gas can result in a substantial diminution of BBB disruption. These results should be taken into account when comparing studies from different researchers and in translating this method to humans.

Introduction

Purpose Drug delivery with BBB opening
Study Objective To determine how using oxygen versus medical air as the anesthesia carrier gas affects microbubble activity and blood-brain barrier disruption during focused ultrasound in mice.
Animal model / Human subject Mouse (mice); strain: None; age: None; sex: None
Disease model Healthy

Outcomes and Safety

Summary of Outcomes Using oxygen as the carrier gas substantially reduced microbubble-mediated BBB disruption and harmonic emissions versus medical air (harmonic strength correlated with MRI enhancement, R2=0.46). Effective FUS conditions were 690 kHz, 10 ms bursts with Optison (100 μl/kg) at peak pressures of 0.46–0.54 MPa (produced significant BBB opening with medical air); lower pressures (0.34–0.36 MPa) produced little/no histologic damage and weaker BBB disruption, with altered wideband emission behavior (higher wideband probability/strength with oxygen at low pressure).
Safety-related matter Histology showed little or no effects at the lower peak pressure amplitudes (0.34–0.36 MPa), indicating no adverse tissue effects at that setting; however, at higher pressures (0.46–0.54 MPa) wideband emissions—more frequent and stronger with medical air—were increased, suggesting greater potential for tissue-damaging events.

Brain Region

Visualization unavailable

Ultrasound Parameters

FUS Frequency 690 kHz
FUS Pressure 0.46-0.54 MPa; 0.34-0.36 MPa
FUS Mode pulsed
Pulse duration 10 ms
Focal Characteristics Focal depth: None; Focal length: None; Aperture size: None
Treatment frequency multiple sessions

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