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Examination of the interaction of parameters for low-intensity focused ultrasound of the human motor cortex.

Authors: Ennasr A, Isaac G, Strohman A, Legon W

Low-intensity focused ultrasound (LIFU) is a promising form of non-invasive neuromodulation characterized by a rich parameter space that includes intensity, duration, duty cycle and pulsing strategy. The effect and interaction of these parameters to affect human brain activity is poorly understood. A better understanding of how parameters interact is critical to advance LIFU as a potential therapeutic. To determine how intensity, duration, and duty cycle interact to produce neuromodulation effects in the human motor cortex. Further, this study assesses the effect of pulsing versus continuous ultrasound. We hypothesize that higher duty cycles will confer excitation. Increasing intensity or duration will increase the magnitude of effect. Pulsing LIFU will not be more effective than continuous wave ultrasound. N = 18 healthy human volunteers underwent 20 different parameter combinations that included a fully parametrized set of two intensities (I<sub>SPPA</sub>: 6 & 24 W/cm<sup>2</sup>), five duty cycles (1, 10, 30, 50, 70 %) and two durations (100, 500 msec) with a constant pulse repetition frequency of 1 kHz delivered concurrently with transcranial magnetic stimulation (TMS) to the primary motor cortex (M1). Four of these parameter combinations were also delivered continuously, matched on the number of cycles. Motor-evoked potential (MEP) amplitude was the primary outcome measure. All parameter combinations were collected time-locked to MEP generation. There was no evidence of excitation from any parameter combination. 3 of the 24 parameter sets resulted in significant inhibition. The parameter set that resulted in the greatest inhibition (∼30 %) was an intensity of 6W/cm<sup>2</sup> with a duty cycle of 30 % and a duration of 500 msec. A three-way ANOVA revealed an interaction of intensity and duty cycle. The analysis of continuous versus pulsed ultrasound revealed a 3-way interaction of intensity, pulsing, and the number of cycles such that under the 6W/cm<sup>2</sup> condition higher cycles of pulsed ultrasound resulted in inhibition whereas lower number of cycles using continuous LIFU resulted in inhibition. LIFU to M1 in humans, in the range employed, either conferred inhibition or had no effect. Significant excitation was not observed. In general, lower intensity looks to be more efficacious for inhibition that depends on duration. In addition, pulsed ultrasound looks to be more effective for inhibition as compared to continuous wave after controlling for total energy delivered. Non-specific auditory effects may contribute to these results.

Introduction

Purpose Transcranial ultrasound stimulation
Study Objective To determine how intensity, duration, and duty cycle interact to produce neuromodulatory effects in the human primary motor cortex and to compare pulsed versus continuous low-intensity focused ultrasound.
Animal model / Human subject Homo sapiens (human); strain: N/A; age: adult human volunteers (None); sex: None
Disease model healthy
MRI or image guidance method Transcranial magnetic stimulation (TMS) localization of the primary motor cortex (M1)
Targeted brain region(s) Primary Motor Cortex (M1)
Cargo name and characteristics Low-intensity focused ultrasound (LIFU) — physical neuromodulatory energy delivered transcranially to human primary motor cortex. Parameters tested: spatial peak pulse average intensity (ISPPA) 6 and 24 W/cm^2, duty cycles 1%, 10%, 30%, 50%, 70%, durations 100 ms and 500 ms, pulse repetition frequency 1 kHz; both pulsed and continuous-wave (continuous delivered matched for number of cycles); delivered concurrently with transcranial magnetic stimulation (TMS). Outcome: modulation of motor-evoked potential amplitude.

Outcomes and Safety

Summary of Outcomes LIFU to M1 produced inhibition or no effect (no excitation); three pulsed parameter sets produced significant inhibition—6 W/cm^2, 30% duty cycle, 500 ms (~30% inhibition, largest effect); 24 W/cm^2, 1% duty cycle, 500 ms; and 6 W/cm^2, 70% duty cycle, 500 ms—and overall lower intensity with longer duration (and pulsed vs. continuous at low intensity/long duration) was more inhibitory.
Duration of biological effect 500 msec
Safety-related matter Participants reported only mild, transient symptoms (neck pain, sleepiness, headache, scalp sensations) with low frequency and severity, and none of the 16 respondents to the one-month follow-up reported new or persistent symptoms; no serious adverse events were observed. Thermal simulations indicated modest heating (peak skull ~37.8°C, brain ~37.48°C; maximum estimated rise ~0.8°C), suggesting limited thermal contribution to effects.

Brain Region

Ultrasound Parameters

FUS Frequency 500 kHz
FUS Intensity 6 W/cm2, 24 W/cm2
FUS Mode pulsed and continuous
Pulse duration 100 ms, 500 ms
Focal Characteristics Focal depth: None; Focal length: None; Aperture size: None
Treatment frequency Multiple

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