Literature DB >> 11804241

Modelling of the coupling between brain electrical activity and metabolism.

A Aubert1, R Costalat, R Valabrègue.   

Abstract

In order to make an attempt at grouping the various aspects of brain functional imaging (fMRI, MRS, EEG-MEG, ...) within a coherent frame, we implemented a model consisting of a system of differential equations, that includes: (1) sodium membrane transport, (2) Na/K ATPase, (3) neuronal energy metabolism (i.e. glycolysis, buffering effect of phosphocreatine, and mitochondrial respiration), (4) blood-brain barrier exchanges and (5) brain hemodynamics, all the processes which are involved in the activation of brain areas. We assumed that the correlation between brain activation and metabolism could be due to either changes in the concentrations of ATP and ADP following activation of Na/K ATPase that result from the changes in ion concentrations, or the involvement, in different phases of metabolism, of a second messenger such as calcium. In this article, we show how this type of model enables interpretation of MRS and fMRI published data that were obtained during prolonged stimulations.

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Year:  2001        PMID: 11804241     DOI: 10.1023/a:1014286728421

Source DB:  PubMed          Journal:  Acta Biotheor        ISSN: 0001-5342            Impact factor:   1.774


  15 in total

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Authors:  Agnès Aubert; Luc Pellerin; Pierre J Magistretti; Robert Costalat
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6.  Application of a multicomponent model of convectional reaction-diffusion to description of glucose gradients in a neurovascular unit.

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7.  Exploring neuro-vascular and neuro-metabolic coupling in rat somatosensory cortex.

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8.  Computational modelling of the piglet brain to simulate near-infrared spectroscopy and magnetic resonance spectroscopy data collected during oxygen deprivation.

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9.  Sparsity as cellular objective to infer directed metabolic networks from steady-state metabolome data: a theoretical analysis.

Authors:  Melik Öksüz; Hasan Sadıkoğlu; Tunahan Çakır
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10.  Modelling Blood Flow and Metabolism in the Preclinical Neonatal Brain during and Following Hypoxic-Ischaemia.

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