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Lango, I.

Publications and source records attributed to Lango, I..

2 recordsLinked to original sources

From Scalp to Source: Precise Phase Retrieval of Intracerebral Epileptic Sources Based on Surface EEG

Accurate phase tracking of deep-brain activity is critical for effective closed-loop and phase-locked neuromodulation therapies. However, direct access to deep neural phase through intracranial recordings remains clinically restrictive due to the invasiveness. Here we validate and clinically benchmark the Gabor-Nelson (GN) dipole estimation method for reconstructing deep-brain oscillatory phase from non-invasive scalp EEG. GN is a geometry-based, imaging-independent approach that offers computationally efficient dipole reconstruction and has rarely been applied to source-level phase estimation in human neuroscience. We compared GN with an established MRI-informed Inverse Solution (IS) method using a three-stage reconstruction pipeline consisting of dipole modeling, dimensionality reduction, and frequency-dependent phase-delay correction. Validation is performed using (i) cadaveric recordings, where known ground-truth seizure waveforms were replayed through implanted deep electrodes, and (ii) simultaneous scalp EEG and SEEG recordings in human patients, where pseudo-ground truth was approximated via the intracranial contacts. GN achieved phase accuracy and signal fidelity comparable to IS across both datasets despite requiring no anatomical imaging. In cadaver recordings, phase-corrected reconstruction correlations exceeded r > 0.91 and {Delta}{Phi} < 9{degrees} in mean phase error. In patient SEEG data, GN reached up to r {approx} 0.80 with phase offsets suitable for neuromodulatory timing. GN offers a viable, low-barrier, imaging-independent alternative to traditional inverse modeling for non-invasive seizure phase tracking. This framework opens pathways for scalable, phase-locked and closed-loop stimulation therapies in epilepsy and potentially other network-based brain disorders.

neuroscience↗

Non-vectorial Integration of Intersectional Short-Pulse Stimulation Enables Enhanced Deep Brain Modulation and Effective Seizure Control

Transcranial electrical stimulation (TES) holds promise to treat neurological disorders, but its efficacy is limited by poor spatial focality and depth of penetration. Here, we examined the potential utility of Intersectional Short-Pulse (ISP) stimulation of deeper brain penetration. Using computational modeling and in vivo patch-clamp recordings in rats, we demonstrate that neurons integrate ISP-induced electric fields in a non-vectorial manner. This mechanism allows ISP to overcome some limits of conventional TES, achieving spatially limited stimulation across cortical and subcortical structures. In a rat model of temporal lobe epilepsy, closed-loop ISP stimulation significantly outperformed conventional TES in reducing seizure duration and severity. ISP reduced hippocampal seizure duration by 49% and 41% compared to sham stimulation and conventional TES and significantly reduced motor seizure severity. Our findings demonstrate that ISP stimulation can rapidly terminate hippocampal seizures, offering a potential new approach for non-invasive neuromodulation with applications across diverse neurologic and psychiatric disorders.

neuroscience↗