Epidermal Electrode Technology for Detecting Ultrasonic Perturbation of Sensory Brain Activity.
Authors: Huang S, Fisher JAN, Ye M, Kim YS, Ma R, Nabili M, Krauthamer V, Myers MR, Coleman TP, Welle CG
We aim to demonstrate the in vivo capability of a wearable sensor technology to detect localized perturbations of sensory-evoked brain activity. Cortical somatosensory evoked potentials (SSEPs) were recorded in mice via wearable, flexible epidermal electrode arrays. We then utilized the sensors to explore the effects of transcranial focused ultrasound, which noninvasively induced neural perturbation. SSEPs recorded with flexible epidermal sensors were quantified and benchmarked against those recorded with invasive epidural electrodes. We found that cortical SSEPs recorded by flexible epidermal sensors were stimulus frequency dependent. Immediately following controlled, focal ultrasound perturbation, the sensors detected significant SSEP modulation, which consisted of dynamic amplitude decreases and altered stimulus-frequency dependence. These modifications were also dependent on the ultrasound perturbation dosage. The effects were consistent with those recorded with invasive electrodes, albeit with roughly one order of magnitude lower signal-to-noise ratio. We found that flexible epidermal sensors reported multiple SSEP parameters that were sensitive to focused ultrasound. This work therefore 1) establishes that epidermal electrodes are appropriate for monitoring the integrity of major CNS functionalities through SSEP; and 2) leveraged this technology to explore ultrasound-induced neuromodulation. The sensor technology is well suited for this application because the sensor electrical properties are uninfluenced by direct exposure to ultrasound irradiation. The sensors and experimental paradigm we present involve standard, safe clinical neurological assessment methods and are thus applicable to a wide range of future translational studies in humans with any manner of health condition.
Introduction
Purpose
Transcranial ultrasound stimulation
Study Objective
Demonstrate the in vivo capability of a wearable sensor technology to detect localized perturbations of sensory-evoked brain activity.
Animal model / Human subject
Mice (species: Mus musculus; strain: not specified; age: not specified; sex: not specified)
Disease model
Healthy
Targeted brain region(s)
Somatosensory Cortex
Outcomes and Safety
Summary of Outcomes
Flexible epidermal sensors detected immediate, dosage-dependent modulation of cortical somatosensory evoked potentials—manifest as dynamic amplitude decreases and altered stimulus-frequency dependence—after focal transcranial focused ultrasound, with effects matching invasive electrodes but ~10× lower SNR. Ultrasound parameters that produced successful modulation were focal transcranial focused ultrasound applied at varying dosages (dose-dependent effects).
Safety-related matter
No adverse effects were reported; the study notes the experimental paradigm involves standard, safe clinical neurological assessment methods and that the sensor electrical properties were uninfluenced by direct exposure to ultrasound irradiation.
Brain Region
Ultrasound Parameters
Focal Characteristics
Focal depth: None; Focal length: None; Aperture size: None
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