Visual to default network pathways: A double dissociation between semantic and spatial cognition

Author:

Gonzalez Alam Tirso RJ123ORCID,Krieger-Redwood Katya12ORCID,Varga Dominika4ORCID,Gao Zhiyao5ORCID,Horner Aidan12ORCID,Hartley Tom12ORCID,Thiebaut de Schotten Michel67ORCID,Sliwinska Magdalena W8ORCID,Pitcher David12ORCID,Margulies Daniel S9ORCID,Smallwood Jonathan10ORCID,Jefferies Elizabeth12ORCID

Affiliation:

1. Department of Psychology, University of York

2. York Neuroimaging Centre, Innovation Way

3. School of Human and Behavioural Sciences, Bangor University

4. Sussex Neuroscience, School of Psychology, University of Sussex

5. Department of Psychiatry & Behavioral Sciences, Stanford University School of Medicine

6. Univ. Bordeaux

7. Brain Connectivity and Behaviour Laboratory

8. Department of Psychology, Liverpool John Moores University

9. Integrative Neuroscience and Cognition Center (UMR 8002), Centre National de la Recherche Scientifique (CNRS) and Université de Paris

10. Department of Psychology, Queen’s University

Abstract

Processing pathways between sensory and default mode network (DMN) regions support recognition, navigation, and memory but their organisation is not well understood. We show that functional subdivisions of visual cortex and DMN sit at opposing ends of parallel streams of information processing that support visually-mediated semantic and spatial cognition, providing convergent evidence from univariate and multivariate task responses, intrinsic functional and structural connectivity. Participants learned virtual environments consisting of buildings populated with objects, drawn from either a single semantic category or multiple categories. Later, they made semantic and spatial context decisions about these objects and buildings during functional magnetic resonance imaging. A lateral ventral occipital to frontotemporal DMN pathway was primarily engaged by semantic judgements, while a medial visual to medial temporal DMN pathway supported spatial context judgements. These pathways had distinctive locations in functional connectivity space: the semantic pathway was both further from unimodal systems and more balanced between visual and auditory-motor regions compared with the spatial pathway. When semantic and spatial context information could be integrated (in buildings containing objects from a single category), regions at the intersection of these pathways responded, suggesting that parallel processing streams interact at multiple levels of the cortical hierarchy to produce coherent memory-guided cognition.

Publisher

eLife Sciences Publications, Ltd

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