Pitt Shield

Considerations for ultrasound exposure during transcranial MR acoustic radiation force imaging.

Authors: Phipps MA, Jonathan SV, Yang PF, Chaplin V, Chen LM, Grissom WA, Caskey CF

The aim of this study was to improve the sensitivity of magnetic resonance-acoustic radiation force imaging (MR-ARFI) to minimize pressures required to localize focused ultrasound (FUS) beams, and to establish safe FUS localization parameters for ongoing ultrasound neuromodulation experiments in living non-human primates. We developed an optical tracking method to ensure that the MR-ARFI motion-encoding gradients (MEGs) were aligned with a single-element FUS transducer and that the imaged slice was prescribed at the optically tracked location of the acoustic focus. This method was validated in phantoms, which showed that MR-ARFI-derived displacement sensitivity is maximized when the MR-ARFI MEGs were maximally aligned with the FUS propagation direction. The method was then applied in vivo to acquire displacement images in two healthy macaque monkeys (M fascicularis) which showed the FUS beam within the brain. Temperature images were acquired using MR thermometry to provide an estimate of in vivo brain temperature changes during MR-ARFI, and pressure and thermal simulations of the acoustic pulses were performed using the k-Wave package which showed no significant heating at the focus of the FUS beam. The methods presented here will benefit the multitude of transcranial FUS applications as well as future human applications.

Introduction

Purpose Transcranial ultrasound stimulation
Study Objective To improve MR-ARFI sensitivity and establish safe transcranial FUS localization parameters for neuromodulation in living non-human primates by developing and validating an optical tracking method to align motion-encoding gradients with the acoustic focus.
Animal model / Human subject Macaca fascicularis (cynomolgus macaque), primate, strain: None, age: None, sex: None (n=2)
Disease model Healthy
MRI or image guidance method Optical tracking to align MR-ARFI motion-encoding gradients and prescribe the imaged slice at the optically tracked acoustic focus

Outcomes and Safety

Summary of Outcomes MR-ARFI with optical tracking successfully localized transcranial FUS in living macaque brains, detecting micron-scale displacements (peak ~1.20 µm at de-rated PNP 0.90 MPa; detectable down to ~0.49 µm at de-rated PNP 0.54 MPa) with negligible brain heating (<0.1 °C) and no macroscopic cavitation damage. Successful parameters included 802 kHz sonications at de-rated PNPs ≈0.54–0.90 MPa (free-field ≈1.68–2.81 MPa), TR = 1 s with short pulses (overall duty cycle ≈0.23%), and MR-ARFI MEGs prescribed aligned with the FUS propagation direction (off-axis MEGs at 45°/90° greatly reduced sensitivity).
Duration of biological effect 4 minutes
Safety-related matter In vivo MR thermometry showed no significant brain heating (<~0.1°C at the focus, ~0.2°C near the skull) and no macroscopic cavitation-induced skin lesions were observed in either monkey; the authors state there were no detectable negative bioeffects during the 5-minute MR-ARFI sessions. However, simulations predicted up to 3.19 MPa peak pressure and ~2.2°C heating within the skull (and free-field pressures exceeding imaging MI limits), so the authors caution about cavitation risk, note a maximum de-rated MI in the brain of 1.0, and plan histological analysis for further safety assessment.

Brain Region

Visualization unavailable

Ultrasound Parameters

FUS Mode pulsed
Focal Characteristics focal depth: None; focal length: None; aperture size: None

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