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research article

Mobile brain/body imaging of landmark-based navigation with high-density EEG

Delaux, Alexandre
•
de Saint Aubert, Jean-Baptiste
•
Ramanoel, Stephen
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May 4, 2021
European Journal Of Neuroscience

Coupling behavioral measures and brain imaging in naturalistic, ecological conditions is key to comprehend the neural bases of spatial navigation. This highly integrative function encompasses sensorimotor, cognitive, and executive processes that jointly mediate active exploration and spatial learning. However, most neuroimaging approaches in humans are based on static, motion-constrained paradigms and they do not account for all these processes, in particular multisensory integration. Following the Mobile Brain/Body Imaging approach, we aimed to explore the cortical correlates of landmark-based navigation in actively behaving young adults, solving a Y-maze task in immersive virtual reality. EEG analysis identified a set of brain areas matching state-of-the-art brain imaging literature of landmark-based navigation. Spatial behavior in mobile conditions additionally involved sensorimotor areas related to motor execution and proprioception usually overlooked in static fMRI paradigms. Expectedly, we located a cortical source in or near the posterior cingulate, in line with the engagement of the retrosplenial complex in spatial reorientation. Consistent with its role in visuo-spatial processing and coding, we observed an alpha-power desynchronization while participants gathered visual information. We also hypothesized behavior-dependent modulations of the cortical signal during navigation. Despite finding few differences between the encoding and retrieval phases of the task, we identified transient time-frequency patterns attributed, for instance, to attentional demand, as reflected in the alpha/gamma range, or memory workload in the delta/theta range. We confirmed that combining mobile high-density EEG and biometric measures can help unravel the brain structures and the neural modulations subtending ecological landmark-based navigation.

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Type
research article
DOI
10.1111/ejn.15190
Web of Science ID

WOS:000646729600001

Author(s)
Delaux, Alexandre
de Saint Aubert, Jean-Baptiste
Ramanoel, Stephen
Becu, Marcia
Gehrke, Lukas
Klug, Marius
Chavarriaga, Ricardo  
Sahel, Jose-Alain
Gramann, Klaus
Arleo, Angelo
Date Issued

2021-05-04

Publisher

WILEY

Published in
European Journal Of Neuroscience
Volume

54

Issue

12

Start page

8256

End page

8282

Subjects

Neurosciences

•

Neurosciences & Neurology

•

ecological navigation

•

mobile eeg

•

retrosplenial complex

•

source reconstruction

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virtual reality

•

gamma band responses

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spatial navigation

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virtual-reality

•

retrosplenial cortex

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treadmill walking

•

motion artifacts

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free exploration

•

reference frames

•

dual-tasking

•

motor

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
CNBI  
Available on Infoscience
May 22, 2021
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/178327
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