Focal cortical lesions are known to result in large-scale functional alterations involving distant areas; however, little is known about the electrophysiological mechanisms underlying these network effects. Here, we addressed this issue by analysing the short and long distance intracranial effects of controlled structural lesions in humans. The changes in Stereo-Electroencephalographic (SEEG) activity after Radiofrequency-Thermocoagulation (RFTC) recorded in 21 epileptic subjects were assessed with respect to baseline resting wakefulness and sleep activity. In addition, Cortico-Cortical Evoked Potentials (CCEPs) recorded before the lesion were employed to interpret these changes with respect to individual long-range connectivity patterns. We found that small structural ablations lead to the generation and large-scale propagation of sleep-like slow waves within the awake brain. These slow waves match those recorded in the same subjects during sleep, are prevalent in perilesional areas, but can percolate up to distances of 60 mm through specific long-range connections, as predicted by CCEPs. Given the known impact of slow waves on information processing and cortical plasticity, demonstrating their intrusion and percolation within the awake brain add key elements to our understanding of network dysfunction after cortical injuries.

Focal lesions induce large-scale percolation of sleep-like intracerebral activity in awake humans / S. Russo, A. Pigorini, E. Mikulan, S. Sarasso, A. Rubino, F.M. Zauli, S. Parmigiani, P. d'Orio, A. Cattani, S. Francione, L. Tassi, C.L.A. Bassetti, G. Lo Russo, L. Nobili, I. Sartori, M. Massimini. - In: NEUROIMAGE. - ISSN 1053-8119. - 234(2021 Jul 01), pp. 117964.1-117964.10. [10.1016/j.neuroimage.2021.117964]

Focal lesions induce large-scale percolation of sleep-like intracerebral activity in awake humans

A. Pigorini
Co-primo
;
E. Mikulan;S. Sarasso;A. Rubino;F.M. Zauli;S. Parmigiani;P. d'Orio;A. Cattani;G. Lo Russo;M. Massimini
Ultimo
2021

Abstract

Focal cortical lesions are known to result in large-scale functional alterations involving distant areas; however, little is known about the electrophysiological mechanisms underlying these network effects. Here, we addressed this issue by analysing the short and long distance intracranial effects of controlled structural lesions in humans. The changes in Stereo-Electroencephalographic (SEEG) activity after Radiofrequency-Thermocoagulation (RFTC) recorded in 21 epileptic subjects were assessed with respect to baseline resting wakefulness and sleep activity. In addition, Cortico-Cortical Evoked Potentials (CCEPs) recorded before the lesion were employed to interpret these changes with respect to individual long-range connectivity patterns. We found that small structural ablations lead to the generation and large-scale propagation of sleep-like slow waves within the awake brain. These slow waves match those recorded in the same subjects during sleep, are prevalent in perilesional areas, but can percolate up to distances of 60 mm through specific long-range connections, as predicted by CCEPs. Given the known impact of slow waves on information processing and cortical plasticity, demonstrating their intrusion and percolation within the awake brain add key elements to our understanding of network dysfunction after cortical injuries.
Bistability; Effective Connectivity; Intracranial Recording; Radio-Frequency Thermo-Coagulation; Stroke
Settore BIO/09 - Fisiologia
23-mar-2021
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2434/829589
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