Conditional mutual information maps as descriptors of net connectivity levels in the brain
There is a growing interest in finding ways to summarise the local connectivity properties of the brain through single brain maps. Here we propose a method based on the conditional Mutual Information in the frequency domain. Conditional Mutual Information (CMI) maps quantify the amount of non-redund...
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doaj-edb4e9dc1c5e4f149e2bd6665d9cbe0e2020-11-24T20:47:31ZengFrontiers Media S.A.Frontiers in Neuroinformatics1662-51962010-11-01410.3389/fninf.2010.001157679Conditional mutual information maps as descriptors of net connectivity levels in the brainRaymond eSalvador0Maria eAnguera1Jesús J Gomar2Edward T Bullmore3Edith ePomarol-Clotet4Benito Menni C.A.S.M. - CIBERSAMBenito Menni C.A.S.M. - CIBERSAMBenito Menni C.A.S.M. - CIBERSAMUniversity of CambridgeBenito Menni C.A.S.M. - CIBERSAMThere is a growing interest in finding ways to summarise the local connectivity properties of the brain through single brain maps. Here we propose a method based on the conditional Mutual Information in the frequency domain. Conditional Mutual Information (CMI) maps quantify the amount of non-redundant covariability between each site and all others in the rest of the brain, partialling out the joint variability due to gross physiological noise. Average maps from a sample of 45 healthy individuals scanned in the resting state show a clear and symmetric pattern of connectivity maxima in several regions of cortex, including prefrontal, orbitofrontal, lateral parietal, and midline default mode network components; and in subcortical nuclei, including the amygdala, thalamus and basal ganglia. Such cortical and subcortical hotspots of functional connectivity were more clearly evident at lower frequencies (0.02-0.1 Hz) than at higher frequencies (0.2-0.5 Hz) of endogenous oscillation. Conditional mutual information mapping can also be easily applied to perform group analyses. This is exemplified by exploring effects of normal ageing on CMI in a sample of healthy controls and by investigating correlations between CMI and positive psychotic symptom scores in a sample of 40 schizophrenic patients. Both the normative ageing and schizophrenia studies reveal functional connectivity trends that converge with reported findings from other studies, thus giving further support to the validity of the proposed method.http://journal.frontiersin.org/Journal/10.3389/fninf.2010.00115/fullSchizophreniaDefault Mode Networkfunctional connectivityresting statemutual informationbrain connectivity |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Raymond eSalvador Maria eAnguera Jesús J Gomar Edward T Bullmore Edith ePomarol-Clotet |
spellingShingle |
Raymond eSalvador Maria eAnguera Jesús J Gomar Edward T Bullmore Edith ePomarol-Clotet Conditional mutual information maps as descriptors of net connectivity levels in the brain Frontiers in Neuroinformatics Schizophrenia Default Mode Network functional connectivity resting state mutual information brain connectivity |
author_facet |
Raymond eSalvador Maria eAnguera Jesús J Gomar Edward T Bullmore Edith ePomarol-Clotet |
author_sort |
Raymond eSalvador |
title |
Conditional mutual information maps as descriptors of net connectivity levels in the brain |
title_short |
Conditional mutual information maps as descriptors of net connectivity levels in the brain |
title_full |
Conditional mutual information maps as descriptors of net connectivity levels in the brain |
title_fullStr |
Conditional mutual information maps as descriptors of net connectivity levels in the brain |
title_full_unstemmed |
Conditional mutual information maps as descriptors of net connectivity levels in the brain |
title_sort |
conditional mutual information maps as descriptors of net connectivity levels in the brain |
publisher |
Frontiers Media S.A. |
series |
Frontiers in Neuroinformatics |
issn |
1662-5196 |
publishDate |
2010-11-01 |
description |
There is a growing interest in finding ways to summarise the local connectivity properties of the brain through single brain maps. Here we propose a method based on the conditional Mutual Information in the frequency domain. Conditional Mutual Information (CMI) maps quantify the amount of non-redundant covariability between each site and all others in the rest of the brain, partialling out the joint variability due to gross physiological noise. Average maps from a sample of 45 healthy individuals scanned in the resting state show a clear and symmetric pattern of connectivity maxima in several regions of cortex, including prefrontal, orbitofrontal, lateral parietal, and midline default mode network components; and in subcortical nuclei, including the amygdala, thalamus and basal ganglia. Such cortical and subcortical hotspots of functional connectivity were more clearly evident at lower frequencies (0.02-0.1 Hz) than at higher frequencies (0.2-0.5 Hz) of endogenous oscillation. Conditional mutual information mapping can also be easily applied to perform group analyses. This is exemplified by exploring effects of normal ageing on CMI in a sample of healthy controls and by investigating correlations between CMI and positive psychotic symptom scores in a sample of 40 schizophrenic patients. Both the normative ageing and schizophrenia studies reveal functional connectivity trends that converge with reported findings from other studies, thus giving further support to the validity of the proposed method. |
topic |
Schizophrenia Default Mode Network functional connectivity resting state mutual information brain connectivity |
url |
http://journal.frontiersin.org/Journal/10.3389/fninf.2010.00115/full |
work_keys_str_mv |
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