Adjudicating Between Local and Global Architectures of Predictive Processing in the Subcortical Auditory Pathway.

abstract processing auditory processing inferior colliculus medial geniculate body predictive coding sensory coding subcortical sensory pathway

Journal

Frontiers in neural circuits
ISSN: 1662-5110
Titre abrégé: Front Neural Circuits
Pays: Switzerland
ID NLM: 101477940

Informations de publication

Date de publication:
2021
Historique:
received: 21 12 2020
accepted: 16 02 2021
entrez: 29 3 2021
pubmed: 30 3 2021
medline: 14 1 2022
Statut: epublish

Résumé

Predictive processing, a leading theoretical framework for sensory processing, suggests that the brain constantly generates predictions on the sensory world and that perception emerges from the comparison between these predictions and the actual sensory input. This requires two distinct neural elements: generative units, which encode the model of the sensory world; and prediction error units, which compare these predictions against the sensory input. Although predictive processing is generally portrayed as a theory of cerebral cortex function, animal and human studies over the last decade have robustly shown the ubiquitous presence of prediction error responses in several nuclei of the auditory, somatosensory, and visual subcortical pathways. In the auditory modality, prediction error is typically elicited using so-called oddball paradigms, where sequences of repeated pure tones with the same pitch are at unpredictable intervals substituted by a tone of deviant frequency. Repeated sounds become predictable promptly and elicit decreasing prediction error; deviant tones break these predictions and elicit large prediction errors. The simplicity of the rules inducing predictability make oddball paradigms agnostic about the origin of the predictions. Here, we introduce two possible models of the organizational topology of the predictive processing auditory network: (1) the global view, that assumes that predictions on the sensory input are generated at high-order levels of the cerebral cortex and transmitted in a cascade of generative models to the subcortical sensory pathways; and (2) the local view, that assumes that independent local models, computed using local information, are used to perform predictions at each processing stage. In the global view information encoding is optimized globally but biases sensory representations along the entire brain according to the subjective views of the observer. The local view results in a diminished coding efficiency, but guarantees in return a robust encoding of the features of sensory input at each processing stage. Although most experimental results to-date are ambiguous in this respect, recent evidence favors the global model.

Identifiants

pubmed: 33776657
doi: 10.3389/fncir.2021.644743
pmc: PMC7994860
doi:

Types de publication

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

Langues

eng

Sous-ensembles de citation

IM

Pagination

644743

Informations de copyright

Copyright © 2021 Tabas and von Kriegstein.

Déclaration de conflit d'intérêts

The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.

Références

Electroencephalogr Clin Neurophysiol. 1975 Apr;38(4):379-86
pubmed: 46818
J Neurosci. 2003 Oct 15;23(28):9349-56
pubmed: 14561862
Eur J Neurosci. 2011 Sep;34(5):766-79
pubmed: 21864319
J Neurosci. 2012 Dec 5;32(49):17762-74
pubmed: 23223296
Int J Psychophysiol. 2012 Feb;83(2):120-31
pubmed: 21867734
J Neurophysiol. 2015 Nov;114(5):2625-36
pubmed: 26311184
Eur J Neurosci. 2015 Mar;41(5):579-85
pubmed: 25728177
Hear Res. 1984 Sep;15(3):225-47
pubmed: 6501112
Hum Brain Mapp. 2009 Jun;30(6):1772-82
pubmed: 19378273
PLoS One. 2011;6(8):e23369
pubmed: 21853120
Neuroimage. 2016 Feb 15;127:34-43
pubmed: 26584870
J Neurosci. 2004 Nov 17;24(46):10440-53
pubmed: 15548659
Psychol Med. 2018 Oct;48(14):2277-2284
pubmed: 29478431
J Physiol. 2014 Feb 15;592(4):729-43
pubmed: 24099802
Brain Struct Funct. 2015 Nov;220(6):3385-98
pubmed: 25115620
Brain Cogn. 2017 Mar;112:92-97
pubmed: 26809759
Nat Neurosci. 2011 May;14(5):642-8
pubmed: 21460833
PLoS Comput Biol. 2011 Aug;7(8):e1002117
pubmed: 21876661
Nat Commun. 2019 Nov 6;10(1):5036
pubmed: 31695046
Network. 2011;22(1-4):4-44
pubmed: 22149669
Cogn Process. 2016 Aug;17(3):279-305
pubmed: 27118562
Neuroscience. 2011 May 5;181:163-74
pubmed: 21284952
J Neurosci. 2009 Apr 29;29(17):5483-93
pubmed: 19403816
Curr Biol. 2019 Aug 19;29(16):2640-2651.e4
pubmed: 31378605
PLoS Biol. 2017 Apr 12;15(4):e2001210
pubmed: 28403143
Neuron. 2000 Jun;26(3):695-702
pubmed: 10896164
J Neurosci. 2009 Jun 3;29(22):7359-63
pubmed: 19494157
Nature. 2005 Jul 7;436(7047):71-7
pubmed: 16001064
PLoS One. 2014 Dec 08;9(12):e114537
pubmed: 25486252
J Neurocytol. 1985 Jun;14(3):365-411
pubmed: 2413176
Brain Struct Funct. 2018 Apr;223(3):1391-1407
pubmed: 29143124
J Neurosci. 2013 Feb 27;33(9):4076-93
pubmed: 23447616
Biol Psychol. 2016 Apr;116:10-22
pubmed: 26159810
Psychophysiology. 2011 Mar;48(3):377-84
pubmed: 20636288
Nat Commun. 2019 Jul 9;10(1):3019
pubmed: 31289272
Eur J Neurosci. 2015 Mar;41(5):615-30
pubmed: 25728180
Sci Rep. 2015 May 20;5:10383
pubmed: 25993334
Proc Natl Acad Sci U S A. 2008 May 6;105(18):6747-52
pubmed: 18436648
Neurosci Biobehav Rev. 2019 Oct;105:262-275
pubmed: 31437478
Neuroimage. 2018 Jul 15;175:56-69
pubmed: 29604459
Cereb Cortex. 1994 Jan-Feb;4(1):1-7
pubmed: 8180488
J Neurosci. 2014 Jun 11;34(24):8072-82
pubmed: 24920613
Neuropsychologia. 2015 Feb;68:51-8
pubmed: 25556848
Nat Commun. 2016 Nov 24;7:13442
pubmed: 27883088
Clin Neurophysiol. 2009 Mar;120(3):453-63
pubmed: 19181570
PLoS Biol. 2020 Dec 21;18(12):e3001019
pubmed: 33347436
PLoS One. 2012;7(3):e34297
pubmed: 22479591
Nat Neurosci. 2011 Feb;14(2):246-51
pubmed: 21170056
Neuron. 2006 Aug 3;51(3):359-68
pubmed: 16880130
Phys Life Rev. 2019 Dec;31:104-121
pubmed: 30704846
Front Neural Circuits. 2013 Jan 14;6:119
pubmed: 23335885
Proc Natl Acad Sci U S A. 2016 Mar 22;113(12):E1747-56
pubmed: 26957596
J Autism Dev Disord. 2017 May;47(5):1323-1340
pubmed: 28185044
Nature. 2001 Aug 23;412(6849):787-92
pubmed: 11518957
Sci Rep. 2017 Aug 1;7(1):6997
pubmed: 28765608
Biol Psychol. 2016 Apr;116:23-7
pubmed: 26656286
Front Syst Neurosci. 2014 Jun 24;8:111
pubmed: 25009474
Neuron. 2007 Nov 21;56(4):689-700
pubmed: 18031685
Curr Opin Neurobiol. 2018 Oct;52:88-97
pubmed: 29727859
Nature. 2005 Jun 23;435(7045):1102-7
pubmed: 15973409
Neuron. 2009 Nov 12;64(3):311-9
pubmed: 19914180
Front Psychol. 2016 Nov 18;7:1792
pubmed: 27917138
Neuron. 2014 Mar 19;81(6):1223-1239
pubmed: 24656247
Neuroscience. 2018 Oct 1;389:54-73
pubmed: 28782642
Nat Neurosci. 1999 Jan;2(1):79-87
pubmed: 10195184
J Neurosci. 2019 Feb 27;39(9):1720-1732
pubmed: 30643025
NPJ Sci Learn. 2020 Oct 27;5:16
pubmed: 33133638
Philos Trans R Soc Lond B Biol Sci. 2005 Apr 29;360(1456):815-36
pubmed: 15937014
J Neurosci. 2015 Sep 2;35(35):12261-72
pubmed: 26338336
Prog Neurobiol. 2020 Sep;192:101821
pubmed: 32446883
Curr Opin Neurobiol. 2009 Aug;19(4):402-7
pubmed: 19665367
Neuroimage. 2019 Jan 1;184:889-900
pubmed: 30296562
Neuroimage. 2014 May 1;91:220-7
pubmed: 24486979
Neuron. 2012 Feb 9;73(3):415-34
pubmed: 22325196
Front Integr Neurosci. 2015 Mar 26;9:19
pubmed: 25859192
Front Hum Neurosci. 2019 Jul 16;13:245
pubmed: 31379540
Percept Psychophys. 1993 Jun;53(6):704-9
pubmed: 8332436
Wiley Interdiscip Rev Cogn Sci. 2011 Sep;2(5):580-593
pubmed: 26302308
J Neurosci Methods. 1999 Jan;86(2):109-17
pubmed: 10065980
Elife. 2020 Dec 08;9:
pubmed: 33289479
Curr Opin Neurobiol. 2017 Oct;46:219-227
pubmed: 28942084
Trends Hear. 2018 Jan-Dec;22:2331216518784822
pubmed: 30022729
Hear Res. 2011 Jun;276(1-2):79-87
pubmed: 21184817
J Neurophysiol. 1986 Aug;56(2):261-86
pubmed: 3760921
Biol Cybern. 1992;66(3):241-51
pubmed: 1540675
Cognition. 2014 May;131(2):284-99
pubmed: 24566007
Vision Res. 2014 Aug;101:82-93
pubmed: 24911515
Nat Commun. 2017 Dec 15;8(1):2148
pubmed: 29247159
Hear Res. 2012 Sep;291(1-2):34-40
pubmed: 22743044
Psychon Bull Rev. 2018 Feb;25(1):423-430
pubmed: 28397076
PLoS Comput Biol. 2009 May;5(5):e1000373
pubmed: 19412529
Front Psychol. 2013 Jul 12;4:388
pubmed: 23874309
PLoS One. 2010 Nov 19;5(11):e14071
pubmed: 21124913
Science. 1970 Mar 13;167(3924):1517-8
pubmed: 5415287
Psychophysiology. 2014 Feb;51(2):111-23
pubmed: 24423134
J Neurosci. 2012 Mar 14;32(11):3665-78
pubmed: 22423089
Nat Neurosci. 2019 May;22(5):787-796
pubmed: 30936557
Neuron. 2012 Nov 21;76(4):695-711
pubmed: 23177956
PLoS Biol. 2020 Jun 19;18(6):e3000744
pubmed: 32559190
Annu Rev Neurosci. 2000;23:613-47
pubmed: 10845077
Sci Rep. 2016 Apr 12;6:24114
pubmed: 27066835
Neuroimage. 2019 Apr 15;190:133-143
pubmed: 29860087
Ann N Y Acad Sci. 2020 Mar;1464(1):242-268
pubmed: 32147856
Trends Cogn Sci. 2018 Sep;22(9):764-779
pubmed: 30122170
Nat Neurosci. 2016 Dec;19(12):1658-1664
pubmed: 27618309
Neuron. 2019 Jun 19;102(6):1211-1222.e3
pubmed: 31054873
Curr Biol. 2016 Sep 12;26(17):2280-90
pubmed: 27524483
J Neurosci. 2011 Nov 23;31(47):17306-16
pubmed: 22114297
Philos Trans R Soc Lond B Biol Sci. 2019 Apr 29;374(1771):20180030
pubmed: 30852990
Science. 2009 Oct 16;326(5951):404
pubmed: 19833962
Nat Neurosci. 2003 Apr;6(4):391-8
pubmed: 12652303
J Neurophysiol. 2004 Dec;92(6):3244-54
pubmed: 15306632
Curr Biol. 2017 Dec 4;27(23):3692-3698.e4
pubmed: 29153326
Biol Psychiatry. 2018 Nov 1;84(9):634-643
pubmed: 30007575
J Neurosci. 2006 Jan 11;26(2):559-63
pubmed: 16407554
Psychophysiology. 2010 Mar 1;47(2):236-46
pubmed: 19824950
J Neurosci. 2013 Sep 25;33(39):15394-400
pubmed: 24068807
Cogn Neurodyn. 2008 Jun;2(2):121-36
pubmed: 19003479
J Neurophysiol. 2020 Jul 1;124(1):245-258
pubmed: 32584636
Neuron. 2014 Feb 5;81(3):529-35
pubmed: 24507190
Proc Natl Acad Sci U S A. 2012 Aug 21;109(34):13841-6
pubmed: 22869724
Eur J Neurosci. 2010 Sep;32(5):859-65
pubmed: 20626459
Sci Rep. 2016 Nov 17;6:37405
pubmed: 27853313
Crit Rev Biomed Eng. 1985;13(2):97-123
pubmed: 3905257
Eur J Neurosci. 2013 Jan;37(1):52-62
pubmed: 23121128
J Neurosci. 2012 Jan 25;32(4):1447-52
pubmed: 22279229
Front Syst Neurosci. 2015 Mar 09;9:19
pubmed: 25805974
Neuron. 2018 Oct 24;100(2):424-435
pubmed: 30359606
Hear Res. 2021 Jan;399:107954
pubmed: 32234254
Behav Brain Funct. 2011 Oct 17;7:44
pubmed: 22005291
J Psychiatry Neurosci. 2016 Aug;41(5):304-11
pubmed: 26836623
J Neurosci. 2017 Oct 11;37(41):10012-10021
pubmed: 28899918
Psychol Rev. 2014 Oct;121(4):649-75
pubmed: 25347312
Neurobiol Learn Mem. 2014 Mar;109:82-93
pubmed: 24291573
J Neurosci. 2011 Jun 29;31(26):9708-22
pubmed: 21715636
PLoS One. 2015 Sep 08;10(9):e0136794
pubmed: 26348628
Brain Res Brain Res Rev. 2004 Aug;46(1):1-31
pubmed: 15297152
Nat Neurosci. 2009 Sep;12(9):1165-70
pubmed: 19684591
PLoS Comput Biol. 2011 Dec;7(12):e1002303
pubmed: 22194676
PLoS Biol. 2015 Sep 29;13(9):e1002271
pubmed: 26418156
Hear Res. 2018 Dec;370:294-301
pubmed: 30196981
Nat Commun. 2016 Mar 24;7:11070
pubmed: 27009409
J Neurophysiol. 2017 Feb 1;117(2):594-603
pubmed: 27832606
Neuron. 2012 Mar 8;73(5):1016-27
pubmed: 22405210
Proc Natl Acad Sci U S A. 2012 Nov 13;109(46):18968-73
pubmed: 23112145
Front Syst Neurosci. 2015 Nov 18;9:156
pubmed: 26635546
Neuron. 2013 Aug 7;79(3):541-54
pubmed: 23932000
PLoS One. 2011;6(12):e28522
pubmed: 22163029
Brain Res. 2012 Jan 24;1434:178-88
pubmed: 21955728
Neural Netw. 2003 Nov;16(9):1325-52
pubmed: 14622888
Curr Opin Neurobiol. 2011 Oct;21(5):774-81
pubmed: 21742484
Proc Natl Acad Sci U S A. 2017 Feb 21;114(8):1773-1782
pubmed: 28167793
Hear Res. 2005 Sep;207(1-2):1-9
pubmed: 16091301
Hear Res. 2007 Jul;229(1-2):132-47
pubmed: 17317056
J Neurophysiol. 2013 Oct;110(8):1892-902
pubmed: 23904489

Auteurs

Alejandro Tabas (A)

Chair of Cognitive and Clinical Neuroscience, Faculty of Psychology, Technische Universität Dresden, Dresden, Germany.
Max Planck Institute for Human Cognitive and Brain Sciences, Leipzig, Germany.

Katharina von Kriegstein (K)

Chair of Cognitive and Clinical Neuroscience, Faculty of Psychology, Technische Universität Dresden, Dresden, Germany.
Max Planck Institute for Human Cognitive and Brain Sciences, Leipzig, Germany.

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