General-Purpose Ultrasound Neuromodulation System for Chronic, Closed-Loop Preclinical Studies in Freely Behaving Rodents.
Authors: Jo Y, Lee SM, Jung T, Park G, Lee C, Im GH, Lee S, Park JS, Oh C, Kook G, Kim H, Kim S, Lee BC, Suh GSB, Kim SG, Kim J, Lee HJ
Transcranial focused ultrasound stimulation (tFUS) is an effective noninvasive treatment modality for brain disorders with high clinical potential. However, the therapeutic effects of ultrasound neuromodulation are not widely explored due to limitations in preclinical systems. The current preclinical studies are head-fixed, anesthesia-dependent, and acute, limiting clinical translatability. Here, this work reports a general-purpose ultrasound neuromodulation system for chronic, closed-loop preclinical studies in freely behaving rodents. This work uses microelectromechanical systems (MEMS) technology to design and fabricate a small and lightweight transducer capable of artifact-free stimulation and simultaneous neural recording. Using the general-purpose system, it can be observed that state-dependent ultrasound neuromodulation of the prefrontal cortex increases rapid eye movement (REM) sleep and protects spatial working memory to REM sleep deprivation. The system will allow explorative studies in brain disease therapeutics and neuromodulation using ultrasound stimulation for widespread clinical adoption.
Introduction
Purpose
Transcranial ultrasound stimulation (tFUS)
Study Objective
To develop and demonstrate a chronic, artifact-free, closed-loop transcranial focused ultrasound neuromodulation system for freely behaving rodents and assess its effects on sleep and spatial working memory.
Animal model / Human subject
Mouse (mice); strain: not specified; age: not specified; sex: not specified
Disease model
REM sleep deprivation
Targeted brain region(s)
Medial Prefrontal Cortex
Outcomes and Safety
Summary of Outcomes
Closed‑loop transcranial focused ultrasound of the medial prefrontal cortex in freely behaving mice (stimulation during NREM sleep) increased REM sleep duration and protected short‑term spatial working memory from the adverse effects of REM sleep deprivation. Successful stimulation parameters reported: center frequency ~460 kHz, pulse‑repetition frequency 100 Hz, 60% duty cycle, 2‑s bursts within 6‑s epochs (delivered across a 10‑h period); estimated intensity ~84–100 mW/cm^2 with peak pressure ≈55 kPa (CMUT drive ~100 V DC ±100 Vpp).
Duration of biological effect
14 s
Safety-related matter
No device-related adverse effects were reported: stimulation produced no EEG/EMG artifacts and thermal modeling/measurements indicated negligible heating (≈0.36°C at 300 s, <0.02°C at 2 s; surface rise ~1.5°C over 1 min). Additionally, ultrasound increased REM sleep and showed neuroprotective effects that negated the adverse effects of REM sleep deprivation on spatial working memory.
Brain Region
Ultrasound Parameters
Ultrasound instrument
Capacitive micromachined ultrasound transducer (CMUT) — custom MEMS-based transducer (manufacturer not stated); transducer aperture/diameter: None
Focal Characteristics
Focal depth: None; Focal length: None; Aperture size: None
Treatment frequency
multiple sessions
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