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Liberati, G.

Publications and source records attributed to Liberati, G..

2 recordsLinked to original sources

EEG frequency-tagging captures the neural integration of bilateral periodic thermonociceptive stimulation

Sustained periodic stimuli are known to elicit a periodic neural response (i.e. steady-state evoked potential) in the EEG frequency spectrum. These responses can easily be traced at their frequency of stimulation and corresponding harmonics using a frequency-tagging approach. To date, sustained periodic thermonociceptive stimuli have only been used on one extremity (e.g. right volar forearm) at a time. Extending this procedure to sustained stimulation applied concomitantly to distinct limbs would allow us to study the mechanisms of integration or competition between sensory signals from these different body locations. This study demonstrates that slow, sustained, sinusoidal thermonociceptive stimuli, bilaterally applied using two different stimulation frequencies (i.e. f1, f2, one on each forearm), elicit two distinct neural periodic responses at the respective frequency of stimulation and their harmonics. Additionally, we showed preliminary evidence for an interaction between the neural populations involved in the response to these stimuli, marked by neural activity at intermodulation frequencies (n* f1 {+/-} m* f2). So far, this non-linear integration of sensory information has already been observed following visual and auditory stimuli but not yet following thermonociceptive stimuli. New and noteworthyThis study demonstrates that sustained, slow, sinusoidal thermonociceptive stimulation applied simultaneously to both forearms at different frequencies elicits distinct neural responses at each stimulation frequency and its harmonics. Moreover, we provide preliminary evidence for interaction between the neural populations involved in the response to these stimuli during bilateral thermonociceptive stimulation. These findings extend frequency-tagging approaches in pain research and reveal potential non-linear sensory integration of distinct thermo-nociceptive inputs.

neuroscience↗

Individualized Alpha-tACS for Modulating Pain Perception and Neural Oscillations: A Sham-Controlled Study in Healthy Participants

Pain encompasses sensory, affective, and cognitive dimensions, with neural oscillations increasingly recognized as key mechanisms in their integration. However, the underlying processes remain inadequately understood. Transcranial alternating current stimulation (tACS) offers a promising tool for modulating these oscillations, yet the widespread reliance on one-size-fits-all tACS protocols with fixed frequencies has led to limited and contradictory findings on its efficacy in pain treatment. In this study, we employed individualized tACS at individual peak alpha frequency (IAF) over the primary motor cortex (M1) contralateral to the dominant arm of 38 healthy participants, in a within-subject, sham-controlled design, to investigate its effects on pain perception and neural oscillations. Sustained and periodic 0.2 Hz thermonociceptive stimuli were applied to the dominant forearm before and after tACS. We measured participants pain perception and heat pain thresholds (HPT) before and after tACS stimulation. Scalp electroencephalography (EEG) measurements were used to measure neural activity during thermonociceptive stimuli. To calculate IAF, we used a discriminative approach based on independent component analysis (ICA) to separate sensorimotor related IAF (SM-IAF). The results revealed an overall increase in pain perception and a decrease in HPT in both sham and active conditions, with no significant interactions between conditions. However, a trend toward reduced sensitization post-tACS was observed. Exploratory analyses indicated a significant tACS effect on HPT in women. Furthermore, a significant correlation was found between SM-IAF and HPT. These findings provide a novel perspective on advancing individualized neuromodulation approaches for pain and neurobiological disorders.

neuroscience↗