Cavitation-modulated inflammatory response following focused ultrasound blood-brain barrier opening.
Authors: Ji R, Karakatsani ME, Burgess M, Smith M, Murillo MF, Konofagou EE
Focused ultrasound (FUS) in combination with systemically injected microbubbles can be used to non-invasively open the blood-brain barrier (BBB) in targeted regions for a variety of therapeutic applications. Over the past two decades, preclinical research into the safety and efficacy of FUS-induced BBB opening has proven this technique to be transient and efficacious, propelling FUS-induced BBB opening into several clinical trials in recent years. However, as clinical trials further progress, the neuroinflammatory response to FUS-induced BBB opening needs to be better understood. In this study, we provide further insight into the relationship of microbubble cavitation and the resulting innate immune response to FUS-induced BBB opening. By keeping ultrasound parameters fixed (i.e. frequency, pressure, pulse length, etc.), three groups of mice were sonicated using a real-time cavitation controller until a target cavitation dose was reached (1 x 10<sup>7</sup> V<sup>2</sup>•s, 5 x 10<sup>7</sup> V<sup>2</sup>•s, 1 x 10<sup>8</sup> V<sup>2</sup>•s). The change in relative gene expression of the mouse inflammatory cytokines and receptors were evaluated at three different time-points (6 h, 24 h, and 72 h) after FUS. At both 6 and 24 h time-points, significant changes in relative gene expression of inflammatory cytokines and receptors were observed across all cavitation groups. However, the degree of changes in relative expression levels and the number of genes with significant changes in expression varied across the cavitation groups. Groups with a higher cavitation dose exhibited both greater changes in relative expression levels and greater number of significant changes. By 72 h post-opening, the gene expression levels returned to baseline in all cavitation dose groups, signifying a transient inflammatory response to FUS-induced BBB opening at the targeted cavitation dose levels. Furthermore, the real-time cavitation controller was able to produce consistent and significantly different BBB permeability enhancement volumes across the three different cavitation dose groups. These results indicate that cavitation monitoring and controlling during FUS-induced BBB opening can be used to potentially modulate or limit the degree of neuroinflammation, further emphasizing the importance of implementing cavitation controllers as FUS-induced BBB opening is translated into the clinic.
Introduction
Purpose
Drug delivery with BBB opening
Study Objective
To investigate how varying microbubble cavitation doses during focused ultrasound-induced blood-brain barrier opening influence neuroinflammatory gene expression over time in mice.
Animal model / Human subject
Mouse (Mus musculus); strain: None; age: None; sex: None
Disease model
FUS-induced blood-brain barrier opening in healthy mice (transient neuroinflammatory response)
Cargo name and characteristics
Focused ultrasound (FUS) — a non‑invasive physical/acoustic modality used to transiently and locally open the blood–brain barrier. In this study FUS parameters (frequency, pressure, pulse length, etc.) were fixed and sonications were controlled in real time by a cavitation controller to reach target cavitation doses (1×10^7, 5×10^7, 1×10^8 V^2·s), producing reproducible, dose‑dependent increases in BBB permeability and a transient neuroinflammatory gene response.
Route of administration
Intravenous (systemic injection of microbubbles)
Outcomes and Safety
Summary of Outcomes
Focused ultrasound-induced BBB opening produced a transient, cavitation dose-dependent neuroinflammatory gene expression response peaking at 6–24 h and resolving by 72 h, with higher cavitation doses causing larger inflammatory responses and greater BBB permeability, showing that real-time cavitation control can modulate neuroinflammation.
Duration of biological effect
72 hours
Safety-related matter
Preclinical work indicates FUS-induced BBB opening is transient and efficacious, but it provokes a transient neuroinflammatory response (significant at 6–24 h and returning to baseline by 72 h) that can be modulated or limited by real-time cavitation control.
Brain Region
Ultrasound Parameters
Ultrasound instrument
None.
FUS Mode
pulsed
Duration of a single FUS session
None.
Treatment frequency
single session
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