Publication

A coherent neurobiological framework for functional neuroimaging provided by a model integrating compartmentalized energy metabolism

Résumé

Functional neuroimaging has undergone spectacular developments in recent years. Paradoxically, its neurobiological bases have remained elusive, resulting in an intense debate around the cellular mechanisms taking place upon activation that could contribute to the signals measured. Taking advantage of a modeling approach, we propose here a coherent neurobiological framework that not only explains several in vitro and in vivo observations but also provides a physiological basis to interpret imaging signals. First, based on a model of compartmentalized energy metabolism, we show that complex kinetics of NADH changes observed in vitro can be accounted for by distinct metabolic responses in two cell populations reminiscent of neurons and astrocytes. Second, extended application of the model to an in vivo situation allowed us to reproduce the evolution of intraparenchymal oxygen levels upon activation as measured experimentally without substantially altering the initial parameter values. Finally, applying the same model to functional neuroimaging in humans, we were able to determine that the early negative component of the blood oxygenation level-dependent response recorded with functional MRI, known as the initial dip, critically depends on the oxidative response of neurons, whereas the late aspects of the signal correspond to a combination of responses from cell types with two distinct metabolic profiles that could be neurons and astrocytes. In summary, our results, obtained with such a modeling approach, support the concept that both neuronal and glial metabolic responses form essential components of neuroimaging signals.

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Concepts associés (35)
Imagerie cérébrale
Limagerie cérébrale (dite aussi neuro-imagerie) désigne l'ensemble des techniques issues de l' qui permettent d'observer le cerveau, en particulier lorsqu'un individu exécute une tâche cognitive. L'observation du cerveau par autopsie est imprécise et incomplète en ce qu'elle se limite à l'analyse d'un état figé qui ne peut rendre compte d'effets liés aux évolutions dans l'organe vivant. Le premier effort connu de neuro-imagerie visant à dépasser cette limite a été la « balance de circulation humaine » de Angelo Mosso développée dans les années 1880.
Functional neuroimaging
Functional neuroimaging is the use of neuroimaging technology to measure an aspect of brain function, often with a view to understanding the relationship between activity in certain brain areas and specific mental functions. It is primarily used as a research tool in cognitive neuroscience, cognitive psychology, neuropsychology, and social neuroscience.
Imagerie par résonance magnétique fonctionnelle
thumb|Détection par l'IRMf de l'activation des régions du cerveau impliquées dans la perception visuelle. L’imagerie par résonance magnétique fonctionnelle (IRMf) est une application de l' permettant de visualiser, de manière indirecte, l'activité cérébrale. Il s'agit d'une technique d'imagerie utilisée pour l'étude du fonctionnement du cerveau. Elle consiste à enregistrer des variations hémodynamiques (variation des propriétés du flux sanguin) cérébrales locales minimes, lorsque ces zones sont stimulées.
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