The promises and challenges of neurotechnology to improve human health and cognition DOI Creative Commons
Simon Hanslmayr

PLoS Biology, Год журнала: 2024, Номер 22(10), С. e3002903 - e3002903

Опубликована: Окт. 30, 2024

This PLOS Biology collection explores the present and possible futures of neurotechnology to improve human health cognition, as well scientific, technological ethical challenges they face.

Язык: Английский

Diagnostic ultrasound enhances, then reduces, exogenously induced brain activity of mice DOI Creative Commons
Hao Yang Tan, Devon J. Griggs, Lucas Chen

и другие.

Frontiers in Human Neuroscience, Год журнала: 2025, Номер 18

Опубликована: Фев. 11, 2025

Transcranially delivered diagnostic ultrasound (tDUS) applied to the human brain can modulate those brains such that they became more receptive external stimulation relative sham exposure. Here, we sought directly measure effect of tDUS on mouse activity subjected an stimulation—a blinking light. Using electrocorticography, observed a substantial increase in median due plus light baseline and Subsequent decreased after cessation but with continuation light, though it remained above demonstrated by mice exposed only In separate experiment, showed alone, without had no observable activity, upon its cessation, decreased. These results demonstrate simultaneous exposure receptivity visual cortex prior reduce subsequent activity. each case, these are consistent published data. Our echo do not explain them, since their test subjects received less intense than did our mice. Given near ubiquity systems, further progress along this line research could one day lead widespread use intentionally function during exogenous stimulation.

Язык: Английский

Процитировано

0

Novel NIBS in psychiatry: Unveiling TUS and TI for research and treatment DOI Creative Commons
F Sharif, Catherine J. Harmer, Miriam C. Klein-Flügge

и другие.

Brain and Neuroscience Advances, Год журнала: 2025, Номер 9

Опубликована: Март 1, 2025

Mental disorders pose a significant global burden and constitute major cause of disability worldwide. Despite strides in treatment, substantial number patients do not respond adequately, underscoring the urgency for innovative approaches. Traditional non-invasive brain stimulation techniques show promise, yet grapple with challenges regarding efficacy specificity. Variations mechanistic understanding reliability among methods are common, limited spatial precision physical constraints hindering ability to target subcortical areas often implicated disease aetiology. Novel such as transcranial ultrasonic temporal interference have gained notable momentum recent years, possibly addressing these shortcomings. Transcranial (TUS) offers exceptional deeper penetration compared conventional electrical magnetic techniques. Studies targeting diverse array regions shown its potential affect neuronal excitability, functional connectivity symptoms psychiatric depressive disorder. Nevertheless, planning acoustic interactions skull must be tackled widespread adoption research potentially clinical settings. Similar stimulation, (TI) traditional albeit requiring comparatively higher current equivalent neural effects. Promising still sparse highlights TI’s selectively modulate activity, showing utility psychiatry. Overall, like only open new avenues but also hold effective treatments However, realising their full necessitates practical optimising application effectively.

Язык: Английский

Процитировано

0

Parameter optimisation for mitigating somatosensory confounds during transcranial ultrasonic stimulation DOI Creative Commons
Benjamin R. Kop,

Linda de Jong,

Kim Butts Pauly

и другие.

bioRxiv (Cold Spring Harbor Laboratory), Год журнала: 2025, Номер unknown

Опубликована: Март 19, 2025

Transcranial ultrasonic stimulation (TUS) redefines what is possible with non-invasive neuromodulation by oaering unparalleled spatial precision and flexible targeting capabilities. However, peripheral confounds pose a significant challenge to reliably implementing this technology. While auditory during TUS have been studied extensively, the somatosensory confound has overlooked thus far. It will become increasingly vital quantify manage as field shifts towards higher doses, more compact devices, frequent through temple where co-stimulation pronounced. Here, we provide systematic characterisation of TUS. We also identify conditions under which can be mitigated most eaectively mapping confound-parameter space. Specifically, investigate dose-response eaects, pulse shaping characteristics, transducer-specific parameters. demonstrate that avoiding near-field intensity peaks in scalp, spreading energy across greater area ramping envelope, delivering equivalent doses via longer, lower-intensity pulses rather than shorter, higher-intensity pulses. Additionally, repetition frequencies fundamental reduce eaects. Through our parameter space, find preliminary evidence particle displacement (strain) may primary biophysical driving force behind co-stimulation. This study provides actionable strategies minimise confounds, support thorough experimental control required unlock full potential for scientific research clinical interventions. Tactile, thermal, even painful occur TUS.Confounds & parameters.Valid replicable requires confounds.Particle confounds.

Язык: Английский

Процитировано

0

The promises and challenges of neurotechnology to improve human health and cognition DOI Creative Commons
Simon Hanslmayr

PLoS Biology, Год журнала: 2024, Номер 22(10), С. e3002903 - e3002903

Опубликована: Окт. 30, 2024

This PLOS Biology collection explores the present and possible futures of neurotechnology to improve human health cognition, as well scientific, technological ethical challenges they face.

Язык: Английский

Процитировано

0