AI Article Synopsis

  • Transcranial ultrasound stimulation (TUS) is being explored as a non-invasive method to precisely modulate deep brain structures, but its safety, effectiveness for cognitive functions, and potential auditory interference are still debated.
  • The study aimed to evaluate if TUS could enhance higher-order visual functions specifically in the brain's motion processing area while minimizing auditory distractions.
  • Results showed that TUS improved participants' accuracy and response times in visual tasks, altered EEG readings related to those tasks, and did not cause any harmful effects, confirming TUS's potential for cognitive modulation.

Article Abstract

Background: Transcranial ultrasound stimulation (TUS) holds promise as a novel technology for non-invasive neuromodulation, with greater spatial precision than other available methods and the ability to target deep brain structures. However, its safety and efficacy for behavioural and electrophysiological modulation remains controversial and it is not yet clear whether it can be used to manipulate the neural mechanisms supporting higher cognitive function in humans. Moreover, concerns have been raised about a potential TUS-induced auditory confound.

Objectives: We aimed to investigate whether TUS can be used to modulate higher-order visual function in humans in an anatomically-specific way whilst controlling for auditory confounds.

Methods: We used participant-specific skull maps, functional localisation of brain targets, acoustic modelling and neuronavigation to guide TUS delivery to human visual motion processing cortex (hMT+) whilst participants performed a visual motion detection task. We compared the effects of hMT+ stimulation with sham and control site stimulation and examined EEG data for modulation of task-specific event-related potentials. An auditory mask was applied which prevented participants from distinguishing between stimulation and sham trials.

Results: Compared with sham and control site stimulation, TUS to hMT+ improved accuracy and reduced response times of visual motion detection. TUS also led to modulation of the task-specific event-related EEG potential. The amplitude of this modulation correlated with the performance benefit induced by TUS. No pathological changes were observed comparing structural MRI obtained before and after stimulation.

Conclusions: The results demonstrate for the first time the precision, efficacy and safety of TUS for stimulation of higher-order cortex and cognitive function in humans whilst controlling for auditory confounds.

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Source
http://dx.doi.org/10.1016/j.brs.2022.08.022DOI Listing

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