Modeling brain dynamics in brain tumor patients using The Virtual Brain

Author:

Aerts HanneloreORCID,Schirner MichaelORCID,Jeurissen BenORCID,Van Roost DirkORCID,Achten RikORCID,Ritter PetraORCID,Marinazzo DanieleORCID

Abstract

AbstractPresurgical planning for brain tumor resection aims at delineating eloquent tissue in the vicinity of the lesion to spare during surgery. To this end, non-invasive neuroimaging techniques such as functional MRI and diffusion weighted imaging fiber tracking are currently employed. However, taking into account this information is often still insufficient, as the complex non-linear dynamics of the brain impede straightforward prediction of functional outcome after surgical intervention. Large-scale brain network modeling carries the potential to bridge this gap by integrating neuroimaging data with biophysically based models to predict collective brain dynamics.As a first step in this direction, an appropriate computational model has to be selected, after which suitable model parameter values have to be determined. To this end, we simulated large-scale brain dynamics in 25 human brain tumor patients and 11 human control participants using The Virtual Brain, an open-source neuroinformatics platform. Local and global model parameters of the Reduced Wong-Wang model were individually optimized and compared between brain tumor patients and control subjects. In addition, the relationship between model parameters and structural network topology and cognitive performance was assessed.Results showed (1) significantly improved prediction accuracy of individual functional connectivity when using individually optimized model parameters; (2) local model parameters can differentiate between regions directly affected by a tumor, regions distant from a tumor, and regions in a healthy brain; and (3) interesting associations between individually optimized model parameters and structural network topology and cognitive performance.

Publisher

Cold Spring Harbor Laboratory

Reference65 articles.

1. How to correct susceptibility distortions in spin-echo echo-planar images: application to diffusion tensor imaging

2. An integrated approach to correction for off-resonance effects and subject movement in diffusion MR imaging

3. Network dynamics with BrainX3: a large-scale simulation of the human brain network with real-time interaction;Frontiers in Neuroinformatics,2015

4. Virtual Brain for neurological disease modeling;Drug Discovery Today: Disease Models,2017

5. Role of resting state functional connectivity MRI in presurgical investigation of mesial temporal lobe epilepsy

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