Dynamic reconfiguration of macaque brain networks during natural vision.


Journal

NeuroImage
ISSN: 1095-9572
Titre abrégé: Neuroimage
Pays: United States
ID NLM: 9215515

Informations de publication

Date de publication:
01 12 2021
Historique:
received: 17 06 2020
revised: 08 09 2021
accepted: 22 09 2021
pubmed: 27 9 2021
medline: 5 2 2022
entrez: 26 9 2021
Statut: ppublish

Résumé

Natural vision engages a wide range of higher-level regions that integrate visual information over the large-scale brain network. How interareal connectivity reconfigures during the processing of ongoing natural visual scenes and how these dynamic functional changes relate to the underlaying anatomical links between regions is not well understood. Here, we hypothesized that macaque visual brain regions are poly-functional sharing the capacity to change their configuration state depending on the nature of visual input. To address this hypothesis, we reconstructed networks from in-vivo diffusion-weighted imaging (DWI) and functional magnetic resonance imaging (fMRI) data obtained in four alert macaque monkeys viewing naturalistic movie scenes. At first, we characterized network properties and found greater interhemispheric density and greater inter-subject variability in free-viewing networks as compared to structural networks. From the structural connectivity, we then captured modules on which we identified hubs during free-viewing that formed a widespread visuo-saccadic network across frontal (FEF, 46v), parietal (LIP, Tpt), and occipitotemporal modules (MT, V4, TEm), and that excluded primary visual cortex. Inter-subject variability of well-connected hubs reflected subject-specific configurations that largely recruited occipito-parietal and frontal modules. Across the cerebral hemispheres, free-viewing networks showed higher correlations among long-distance brain regions as compared to structural networks. From these findings, we hypothesized that long-distance interareal connectivity could reconfigure depending on the ongoing changes in visual scenes. Testing this hypothesis by applying temporally resolved functional connectivity we observed that many structurally defined areas (such as areas V4, MT/MST and LIP) were poly-functional as they were recruited as hub members of multiple network states that changed during the presentation of scenes containing objects, motion, faces, and actions. We suggest that functional flexibility in macaque macroscale brain networks is required for the efficient interareal communication during active natural vision. To further promote the use of naturalistic free-viewing paradigms and increase the development of macaque neuroimaging resources, we share our datasets in the PRIME-DE consortium.

Identifiants

pubmed: 34563680
pii: S1053-8119(21)00888-0
doi: 10.1016/j.neuroimage.2021.118615
pmc: PMC8591371
pii:
doi:

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

118615

Subventions

Organisme : Wellcome Trust
Pays : United Kingdom
Organisme : Medical Research Council
ID : MR/T004347/1
Pays : United Kingdom
Organisme : Wellcome Trust
ID : 102037
Pays : United Kingdom

Informations de copyright

Copyright © 2021 The Authors. Published by Elsevier Inc. All rights reserved.

Déclaration de conflit d'intérêts

Declaration of Competing Interest The authors declare no competing financial interest.

Références

Chaos. 2017 Apr;27(4):047409
pubmed: 28456160
Netw Neurosci. 2020 Mar 01;4(1):234-256
pubmed: 32166210
Front Neurosci. 2015 Apr 01;9:113
pubmed: 25883546
Eye (Lond). 2015 Feb;29(2):200-7
pubmed: 25412716
Neuroimage. 2017 Oct 15;160:41-54
pubmed: 28034766
Sci Rep. 2018 Feb 19;8(1):3259
pubmed: 29459635
Cereb Cortex. 2017 Jan 1;27(1):330-343
pubmed: 28108489
Proc Natl Acad Sci U S A. 2009 Feb 10;106(6):2035-40
pubmed: 19188601
Hear Res. 2009 Dec;258(1-2):37-46
pubmed: 19619628
PLoS Biol. 2009 Aug;7(8):e1000170
pubmed: 19668354
Hum Brain Mapp. 2009 Mar;30(3):941-50
pubmed: 18344176
J Comp Neurol. 2017 Nov 1;525(16):3488-3513
pubmed: 28685822
Nat Neurosci. 1999 Jun;2(6):555-62
pubmed: 10448221
Philos Trans A Math Phys Eng Sci. 2016 May 13;374(2067):
pubmed: 27044987
Neuroimage. 2020 Aug 15;217:116860
pubmed: 32376301
Cereb Cortex. 2020 Mar 14;30(3):1957-1973
pubmed: 31647525
Nature. 1998 Jun 4;393(6684):440-2
pubmed: 9623998
Nat Neurosci. 2003 Sep;6(9):989-95
pubmed: 12925854
J Comp Neurol. 1990 Jun 15;296(3):462-95
pubmed: 2358548
PLoS Biol. 2016 Jul 21;14(7):e1002512
pubmed: 27441598
Hum Brain Mapp. 2004 Feb;21(2):75-85
pubmed: 14755595
Neuron. 2003 Dec 18;40(6):1241-50
pubmed: 14687556
Neuroimage. 2018 Oct 15;180(Pt B):417-427
pubmed: 28698107
J Neurosci Methods. 2018 Oct 1;308:377-389
pubmed: 30232039
J Neurosci. 2002 Dec 1;22(23):10416-26
pubmed: 12451141
PLoS One. 2010 Oct 28;5(10):e13701
pubmed: 21060892
IEEE Trans Vis Comput Graph. 2006 Sep-Oct;12(5):741-8
pubmed: 17080795
Proc Natl Acad Sci U S A. 2011 May 3;108(18):7641-6
pubmed: 21502525
Nat Methods. 2012 Feb 05;9(3):277-82
pubmed: 22306809
PLoS Comput Biol. 2006 Jul 21;2(7):e95
pubmed: 16848638
Trends Cogn Sci. 2018 Dec;22(12):1127-1142
pubmed: 30449318
Neuron. 2016 Oct 19;92(2):372-382
pubmed: 27720486
Neuron. 2013 Aug 21;79(4):782-97
pubmed: 23891400
Nat Rev Neurosci. 2009 Mar;10(3):186-98
pubmed: 19190637
Annu Rev Neurosci. 2010;33:1-21
pubmed: 20192813
Neuroimage. 1999 Feb;9(2):179-94
pubmed: 9931268
Annu Rev Psychol. 2016;67:613-40
pubmed: 26393868
Neuron. 2012 Apr 12;74(1):12-29
pubmed: 22500626
Brain Connect. 2013;3(5):523-35
pubmed: 23980912
Neuroinformatics. 2004;2(3):353-60
pubmed: 15365196
Neuroimage. 2015 Apr 1;109:84-94
pubmed: 25579448
Nat Neurosci. 2017 Feb 23;20(3):353-364
pubmed: 28230844
Front Hum Neurosci. 2012 Aug 13;6:233
pubmed: 22905026
PLoS One. 2015 Sep 02;10(8):e0135247
pubmed: 26332788
J Comp Neurol. 1994 May 15;343(3):445-63
pubmed: 8027452
Comput Biomed Res. 1996 Jun;29(3):162-73
pubmed: 8812068
Science. 2017 May 19;356(6339):745-749
pubmed: 28522533
Neuroimage. 2010 Sep;52(3):1059-69
pubmed: 19819337
J Neurosci. 2006 Aug 9;26(32):8310-9
pubmed: 16899726
Nature. 2007 May 3;447(7140):83-6
pubmed: 17476267
J Comp Neurol. 1995 Sep 25;360(3):513-35
pubmed: 8543656
Neuron. 2016 Oct 19;92(2):544-554
pubmed: 27693256
PLoS One. 2013 Nov 06;8(11):e77089
pubmed: 24223118
J Neurosci. 2016 Sep 14;36(37):9580-9
pubmed: 27629710
Cereb Cortex. 2017 Oct 1;27(10):4823-4834
pubmed: 27620978
Science. 1985 Aug 23;229(4715):782-4
pubmed: 4023713
Proc Natl Acad Sci U S A. 2004 Oct 26;101(43):15541-4
pubmed: 15489272
Hum Brain Mapp. 2013 Sep;34(9):2154-77
pubmed: 22438275
Neuron. 2018 Jul 25;99(2):413-420.e3
pubmed: 30017395
Neuroimage. 2019 Nov 15;202:116147
pubmed: 31479755
Neuroimage. 2015 Nov 15;122:399-407
pubmed: 26231247
Neuron. 2015 Oct 7;88(1):127-44
pubmed: 26447577
Proc Natl Acad Sci U S A. 2014 Jul 15;111(28):10341-6
pubmed: 24982140
Trends Cogn Sci. 2020 Apr;24(4):302-315
pubmed: 32160567
Biol Psychiatry. 1994 Jul 1;36(1):21-30
pubmed: 8080899
J Neurosci. 2008 Mar 5;28(10):2539-50
pubmed: 18322098
Cereb Cortex. 2014 Jan;24(1):17-36
pubmed: 23010748
J Neurosci. 2015 Apr 8;35(14):5537-48
pubmed: 25855170
Brain Res Rev. 2007 Oct;55(2):285-96
pubmed: 17433837
Sci Adv. 2021 Jun 23;7(26):
pubmed: 34162548
Neuron. 2011 Jun 23;70(6):1205-17
pubmed: 21689605
Sci Data. 2019 Jul 17;6(1):123
pubmed: 31316116
Cereb Cortex. 2017 Sep 1;27(9):4463-4477
pubmed: 27566980
Nat Rev Neurosci. 2013 May;14(5):350-63
pubmed: 23595013
Neuron. 2016 Apr 6;90(1):143-51
pubmed: 27021172
Trends Cogn Sci. 2013 Dec;17(12):683-96
pubmed: 24231140
J Neurosci. 2009 Aug 26;29(34):10683-94
pubmed: 19710320
J Neurophysiol. 2016 Sep 1;116(3):1328-43
pubmed: 27250912
Neuron. 2016 Jun 15;90(6):1325-1342
pubmed: 27263973
Proc Natl Acad Sci U S A. 2014 Nov 18;111(46):16580-5
pubmed: 25368200
J Neurophysiol. 1981 Aug;46(2):369-84
pubmed: 6267219
Nat Commun. 2015 Sep 21;6:8378
pubmed: 26387804
PLoS One. 2010 Apr 27;5(4):e10232
pubmed: 20436911
Science. 2004 Mar 12;303(5664):1634-40
pubmed: 15016991
Cereb Cortex. 2008 Mar;18(3):705-17
pubmed: 17615246
J Neurophysiol. 2010 Mar;103(3):1238-52
pubmed: 20018833
Nature. 2003 Jan 23;421(6921):370-3
pubmed: 12540901
Neuron. 2012 Nov 8;76(3):629-39
pubmed: 23141073
PLoS One. 2012;7(9):e46497
pubmed: 23029538

Auteurs

Michael Ortiz-Rios (M)

Bioscience Institute, Henry Welcome Building, Medical School, Framlington Place, Newcastle upon Tyne NE2 4HH, UK; Functional Imaging Laboratory, Deutsches Primatenzentrum (DPZ), Leibniz-Institut für Primatenforschung, Göttingen, Germany. Electronic address: mortiz-rios@dpz.eu.

Fabien Balezeau (F)

Bioscience Institute, Henry Welcome Building, Medical School, Framlington Place, Newcastle upon Tyne NE2 4HH, UK.

Marcus Haag (M)

Bioscience Institute, Henry Welcome Building, Medical School, Framlington Place, Newcastle upon Tyne NE2 4HH, UK; Shanghai Jiao Tong University, Rui Jin Hospital, Department of Functional Neurosurgery, China.

Michael C Schmid (MC)

Bioscience Institute, Henry Welcome Building, Medical School, Framlington Place, Newcastle upon Tyne NE2 4HH, UK; Faculty of Science and Medicine, University of Fribourg, Chemin du Musée 5, 1700 Fribourg, Switzerland.

Marcus Kaiser (M)

School of Computing, Urban Sciences Building, Newcastle University, Science Central, Newcastle upon Tyne NE4 5TG, UK; Precision Imaging Beacon, School of Medicine, University of Nottingham, UK; Shanghai Jiao Tong University, Rui Jin Hospital, Department of Functional Neurosurgery, China.

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Classifications MeSH