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Transcranial and pulsed focused ultrasound that activates brain can accelerate remyelination in a mouse model of multiple sclerosis.

Authors: Olmstead TA, Chiarelli PA, Griggs DJ, McClintic AM, Myroniv AN, Mourad PD

Multiple sclerosis (MS) impacts approximately 400,000 in the United States and is the leading cause of disability among young to middle aged people in the developed world. Characteristic of this disease, myelin within generally focal volumes of brain tissue wastes away under an autoimmune assault, either inexorably or through a cycle of demyelination and remyelination. This centrally located damage produces central and peripheral symptoms tied to the portion of brain within the MS lesion site. Interestingly, Gibson and colleagues noted that optical activation of transgenically tagged central neurons increased the thickness of the myelin sheath around those neurons. Since ultrasound, delivered transcranially, can also activate brain focally, we hypothesized that ultrasound stimulation that followed the temporal pattern of Gibson et al. applied to MS lesions in a mouse model might either decelerate the demyelination phase or accelerate its remyelination phase. We created a temporal pattern of ultrasound delivery that conformed to that of Gibson et al. and capable of activating mouse brain. We then applied ultrasound, transcranially, following that temporal pattern to separate cohorts of a mouse model of multiple sclerosis, using three different ultrasound carrier frequencies (0.625 MHz, 1.09 MHz, 2.0 MHz), during each of the demyelinating and remyelinating phases. After identifying the most promising protocol and MS brain state through qualitative analysis of myelin content, we performed additional studies for that condition then assayed for change in myelin content via quantitative analysis. We identified one ultrasound protocol that significantly accelerated remyelination, without damage, as demonstrated with histological analysis. MRI-guided focused ultrasound systems exist that can, in principle, deliver the ultrasound protocol we successfully tested here. In addition, MRI, as the clinical gold standard, can readily identify MS lesions. Given the relatively low intensity values of our ultrasound protocol - close to FDA limits - we anticipate that future success with this approach to MS therapy as tested using more realistic MS mouse models may one day translate to clinical trials that help address this devastating disease.

Introduction

Purpose Transcranial ultrasound stimulation
Study Objective To determine whether transcranial pulsed focused ultrasound delivered with the temporal pattern of Gibson et al. can slow demyelination or accelerate remyelination in a mouse model of multiple sclerosis.
Animal model / Human subject Mouse (Mus musculus), C57BL/6J, adult, male
Disease model Multiple sclerosis
MRI or image guidance method Stereotactic (stereotaxic headpiece with sub-millimeter micro-positioner; target placed relative to Bregma: −1.03 mm posterior, 0.5 mm right lateral, 0.5 mm below skull to overlap center of corpus callosum)
Targeted brain region(s) corpus callosum
Target coordinates -1.03 mm AP (behind Bregma), 0.5 mm ML (right of midline), 0.5 mm DV (below skull)
Cargo name and characteristics Cuprizone — a small‑molecule copper chelator administered in chow (0.2% Cuprizone diet) to C57BL/6J mice to induce CNS demyelination; used in short (5‑week continuous) and long (10‑week then withdrawal → remyelination/15‑week) protocols as the experimental demyelinating agent.
Route of administration Oral (0.2% cuprizone administered in chow/diet)

Outcomes and Safety

Summary of Outcomes Focused ultrasound using the temporal pattern translated from Gibson et al. significantly accelerated remyelination (increased myelin histology) without detectable neuronal damage in a cuprizone mouse MS model but did not alter demyelination. This effect was specific to the 1.09 MHz carrier (tested vs. 0.625 and 2.0 MHz), delivered during the remyelination phase at ~1.2 W/cm^2.
Duration of biological effect 15 weeks
Safety-related matter No adverse effects were reported: histological analysis showed no neuronal damage in any of the 7 animals treated with the effective 1.09 MHz protocol and the authors state the protocol did not damage mouse brain. The authors note the ultrasound intensity was relatively low (about 1.2 W/cm^2), close to FDA diagnostic limits.

Brain Region

Ultrasound Parameters

Ultrasound instrument Custom focused ultrasound transducer, center 0.625 MHz (Applied Physics Laboratory, University of Washington); transducer aperture/diameter: None; Sonic Concepts Model H-101 focused transducer, 1.09 MHz (Sonic Concepts, Woodinville, WA); transducer aperture/diameter: None; Sonic Concepts Model H-148 Annular Array, 2.0 MHz (Sonic Concepts, Woodinville, WA); transducer aperture/diameter: None
FUS Frequency 0.625 MHz, 1.09 MHz, 2.0 MHz
FUS Intensity 1.52 W/cm2 (I_sppa); 3.2 W/cm2 (I_spba); 0.06 W/cm2 (I_spta, per burst); 1.2 W/cm2 (I_spta, overall)
FUS Mode pulsed
Pulse duration 0.2 ms
Duration of a single FUS session 30 minutes
Focal Characteristics Focal depth: 0.5 mm below skull; Focal length: None; Aperture size: None
Treatment frequency multiple sessions

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