Validating linear systems analysis for laminar fMRI: temporal additivity for stimulus duration manipulations

van Dijk, J. A., Fracasso, A. , Petridou, N. and Dumoulin, S. O. (2021) Validating linear systems analysis for laminar fMRI: temporal additivity for stimulus duration manipulations. Brain Topography, 34(1), pp. 88-101. (doi: 10.1007/s10548-020-00808-y) (PMID:33210193) (PMCID:PMC7803719)

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Abstract

Advancements in ultra-high field (7 T and higher) magnetic resonance imaging (MRI) scanners have made it possible to investigate both the structure and function of the human brain at a sub-millimeter scale. As neuronal feedforward and feedback information arrives in different layers, sub-millimeter functional MRI has the potential to uncover information processing between cortical micro-circuits across cortical depth, i.e. laminar fMRI. For nearly all conventional fMRI analyses, the main assumption is that the relationship between local neuronal activity and the blood oxygenation level dependent (BOLD) signal adheres to the principles of linear systems theory. For laminar fMRI, however, directional blood pooling across cortical depth stemming from the anatomy of the cortical vasculature, potentially violates these linear system assumptions, thereby complicating analysis and interpretation. Here we assess whether the temporal additivity requirement of linear systems theory holds for laminar fMRI. We measured responses elicited by viewing stimuli presented for different durations and evaluated how well the responses to shorter durations predicted those elicited by longer durations. We find that BOLD response predictions are consistently good predictors for observed responses, across all cortical depths, and in all measured visual field maps (V1, V2, and V3). Our results suggest that the temporal additivity assumption for linear systems theory holds for laminar fMRI. We thus show that the temporal additivity assumption holds across cortical depth for sub-millimeter gradient-echo BOLD fMRI in early visual cortex.

Item Type:Articles
Keywords:Cortical laminae, linear systems, neuroimaging, visual system, fMRI.
Status:Published
Refereed:Yes
Glasgow Author(s) Enlighten ID:Fracasso, Dr Alessio
Authors: van Dijk, J. A., Fracasso, A., Petridou, N., and Dumoulin, S. O.
College/School:College of Medical Veterinary and Life Sciences > School of Psychology & Neuroscience
Journal Name:Brain Topography
Publisher:Springer
ISSN:0896-0267
ISSN (Online):1573-6792
Published Online:18 November 2020
Copyright Holders:Copyright © 2020 The Authors
First Published:First published in Brain Topography 34(1): 88-101
Publisher Policy:Reproduced under a Creative Commons License

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