TY - JOUR T1 - In-phase and in-antiphase connectivity in EEG JF - bioRxiv DO - 10.1101/2021.05.19.444800 SP - 2021.05.19.444800 AU - Christian O’Reilly AU - John D. Lewis AU - Rebecca J. Theilmann AU - Mayada Elsabbagh AU - Jeanne Townsend Y1 - 2021/01/01 UR - http://biorxiv.org/content/early/2021/06/02/2021.05.19.444800.abstract N2 - Zero-lag synchrony is generally discarded from functional connectivity studies to eliminate the confounding effect of volume conduction. Demonstrating genuine and significant unlagged synchronization between distant brain regions would indicate that most electroencephalography (EEG) connectivity studies neglect an important mechanism for neuronal communication. We previously demonstrated that local field potentials recorded intracranially tend to synchronize with no lag between homotopic brain regions. This synchrony occurs most frequently in antiphase, potentially supporting corpus callosal inhibition and interhemispheric rivalry. We are now extending our investigation to EEG. By comparing the coherency in a recorded and a surrogate dataset, we confirm the presence of a significant proportion of genuine zero-lag synchrony unlikely to be due to volume conduction or to recording reference artifacts. These results stress the necessity for integrating zero-lag synchrony in our understanding of neural communication and for disentangling volume conduction and zero-lag synchrony when estimating EEG sources and their functional connectivity.Competing Interest StatementThe authors have declared no competing interest. ER -