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Stomach-brain synchrony binds neural representations of the body in a novel, delayed-connectivity resting-state network

Ignacio Rebollo, Anne-Dominique Devauchelle, Benoît Béranger, View ORCID ProfileCatherine Tallon-Baudry
doi: https://doi.org/10.1101/217604
Ignacio Rebollo
aLaboratoire de neurosciences cognitives, Département d’études cognitives, École normale supérieure, INSERM, PSL Research University, 29 rue d’Ulm, 75005 Paris, France.
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Anne-Dominique Devauchelle
aLaboratoire de neurosciences cognitives, Département d’études cognitives, École normale supérieure, INSERM, PSL Research University, 29 rue d’Ulm, 75005 Paris, France.
bFondation Campus Biotech Geneva, FCBG, Chemin des Mines 9, 1202 Geneva, Switzerland.
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Benoît Béranger
cCentre de NeuroImagerie de Recherche - CENIR, Institut du Cerveau et de la Moelle épinière - ICM, 47 Boulevard Hôpital, 75013 Paris, France.
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Catherine Tallon-Baudry
aLaboratoire de neurosciences cognitives, Département d’études cognitives, École normale supérieure, INSERM, PSL Research University, 29 rue d’Ulm, 75005 Paris, France.
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  • ORCID record for Catherine Tallon-Baudry
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Abstract

Resting-state networks offer a unique window into the brain’s functional architecture, but their characterization remains limited to instantaneous connectivity thus far. Here, we describe a novel resting-state network based on the delayed connectivity between the brain and the slow electrical rhythm (0.05 Hz) generated in the stomach. The gastric network cuts across classical resting-state networks with little overlap with autonomic regulation areas. This network is composed of regions with convergent functional properties involved in mapping bodily space through touch, action or vision, as well as mapping external space in bodily coordinates. The network is characterized by a precise temporal sequence of activations within a gastric cycle, beginning with somato-motor cortices and ending with the extrastriate body area and dorsal precuneus. Our results demonstrate that canonical resting-state networks based on instantaneous connectivity represent only one of the possible partitions of the brain into coherent networks based on temporal dynamics.

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Posted November 10, 2017.
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Stomach-brain synchrony binds neural representations of the body in a novel, delayed-connectivity resting-state network
Ignacio Rebollo, Anne-Dominique Devauchelle, Benoît Béranger, Catherine Tallon-Baudry
bioRxiv 217604; doi: https://doi.org/10.1101/217604
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Stomach-brain synchrony binds neural representations of the body in a novel, delayed-connectivity resting-state network
Ignacio Rebollo, Anne-Dominique Devauchelle, Benoît Béranger, Catherine Tallon-Baudry
bioRxiv 217604; doi: https://doi.org/10.1101/217604

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