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Corominas-Teruel, X.

Publications and source records attributed to Corominas-Teruel, X..

2 recordsLinked to original sources

EPICURUS: E-field-based spatial filtering procedure for an accurate estimation of local EEG activity evoked by Transcranial Magnetic Stimulation

BackgroundThe concurrent use of Transcranial magnetic stimulation and electroencephalography (TMS-EEG) is increasingly integrated into research and clinical protocols. However, a reliable isolation of EEG responses that are locally evoked by TMS at the targeted cortical sites independent from contaminating sources, remains challenging. MethodsHere we introduce EPICURUS, a novel spatial filtering approach for TMS-EEG that uses individualized MRI-based simulations of the TMS-induced electric field (E-field) to define the spatial extent of locally evoked activity. This method guides the reconstruction of EEG signals originating from the direct stimulation site while minimizing crosstalk from distant, non-targeted sources. ResultsIn synthetic simulations and a human TMS-EEG dataset, EPICURUS preserved early-latency TMS-evoked local activity while substantially attenuating later components, consistent with suppression of non-local activity. ConclusionBy leveraging the spatial precision of individualized E-field modeling, EPICURUS may enhance the specificity of EEG signal reconstruction, offering a promising tool for improving the spatiotemporal resolution of local early and late cortical local responses directly elicited by TMS.

neuroscience↗

Oscillatory impact of Transcranial Magnetic Stimulation at very weak-intensity on the primary motor cortex: A TMS-EEG study in the human brain

Transcranial Magnetic Stimulation is widely used to probe and modulate human brain function, yet the neural effects of stimulation delivered at very low intensities remain unclear. Here, we show that very low intensity magnetic pulses can alter ongoing oscillatory activity in the human primary motor cortex. In healthy participants, we combined transcranial magnetic stimulation with electroencephalography to assess neural responses to single pulses and rhythmic stimulation in the motor cortex. Conventional high intensity stimulation produced robust evoked responses and synchronized beta-frequency oscillations. Low-intensity rhythmic stimulation, despite generating much weaker direct responses, modified local oscillatory activity in a manner consistent with phase-dependent enhancement of ongoing rhythms. These findings suggest that cortical oscillations can be influenced by magnetic fields substantially weaker than those typically used in human studies. Low-intensity stimulation may therefore offer a route towards portable, energy-efficient technologies for investigating and modulating brain networks.

neuroscience↗