Displacement and functional ultrasound (fUS) imaging of displacement-guided focused ultrasound (FUS) neuromodulation in mice.
Authors: Kim S, Kwon N, Hossain MM, Bendig J, Konofagou EE
Focused ultrasound (FUS) stimulation is a promising neuromodulation technique with the merits of non-invasiveness, high spatial resolution, and deep penetration depth. However, simultaneous imaging of FUS-induced brain tissue displacement and the subsequent effect of FUS stimulation on brain hemodynamics has proven challenging thus far. In addition, earlier studies lack in situ confirmation of targeting except for the magnetic resonance imaging-guided FUS system-based studies. The purpose of this study is 1) to introduce a fully ultrasonic approach to in situ target, modulate neuronal activity, and monitor the resultant neuromodulation effect by respectively leveraging displacement imaging, FUS, and functional ultrasound (fUS) imaging, and 2) to investigate FUS-evoked cerebral blood volume (CBV) response and the relationship between CBV and displacement. We performed displacement imaging on craniotomized mice to confirm the in situ targeting for neuromodulation site. We recorded hemodynamic responses evoked by FUS while fUS imaging revealed an ipsilateral CBV increase that peaks at 4 s post-FUS. We report a stronger hemodynamic activation in the subcortical region than cortical, showing good agreement with a brain elasticity map that can also be obtained using a similar methodology. We observed dose-dependent CBV responses with peak CBV, activated area, and correlation coefficient increasing with the ultrasonic dose. Furthermore, by mapping displacement and hemodynamic activation, we found that displacement colocalized and linearly correlated with CBV increase. The findings presented herein demonstrated that FUS evokes ipsilateral hemodynamic activation in cortical and subcortical depths while the evoked hemodynamic responses colocalize and correlate with FUS-induced displacement. We anticipate that our findings will help consolidate accurate targeting as well as shedding light on one of the mechanisms behind FUS modulation, i.e., how FUS mechanically displaces brain tissue affecting cerebral hemodynamics and thereby its associated connectivity.
Introduction
Purpose
Transcranial ultrasound stimulation
Study Objective
To develop and demonstrate a fully ultrasonic method to in situ target, deliver, and monitor FUS neuromodulation and to investigate how FUS-induced brain tissue displacement relates to changes in cerebral blood volume.
Animal model / Human subject
Mouse (mice); strain: not reported; age: not reported; sex: not reported
Disease model
Healthy
MRI or image guidance method
Ultrasound image guidance (in situ displacement imaging and functional ultrasound (fUS) imaging)
Outcomes and Safety
Summary of Outcomes
FUS evoked an ipsilateral cerebral blood volume (CBV) increase peaking ~4 s after stimulation with stronger hemodynamic activation in subcortical than cortical regions, and FUS-induced tissue displacement colocalized with and linearly correlated to CBV increases. Multiple ultrasonic doses were tested and produced dose-dependent effects — higher ultrasonic dose increased peak CBV, activated area, and the displacement–CBV correlation.
Duration of biological effect
4 s
Safety-related matter
No safety issues or adverse effects were reported or mentioned in the paper.
Brain Region
Ultrasound Parameters
Focal Characteristics
Focal depth: None; Focal length: None; Aperture size: None
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