Input-Independent Homeostasis of Developing Thalamocortical Activity.

EEG activity homeostasis retinal waves spindle-burst visual cortex

Journal

eNeuro
ISSN: 2373-2822
Titre abrégé: eNeuro
Pays: United States
ID NLM: 101647362

Informations de publication

Date de publication:
Historique:
received: 23 04 2021
accepted: 26 04 2021
pubmed: 6 5 2021
medline: 3 7 2021
entrez: 5 5 2021
Statut: epublish

Résumé

The isocortex of all mammals studied to date shows a progressive increase in the amount and continuity of background activity during early development. In humans the transition from a discontinuous (mostly silent, intermittently bursting) cortex to one that is continuously active is complete soon after birth and is a critical prognostic indicator. In the visual cortex of rodents this switch from discontinuous to continuous background activity occurs during the 2 d before eye-opening, driven by activity changes in relay thalamus. The factors that regulate the timing of continuity development, which enables mature visual processing, are unknown. Here, we test the role of the retina, the primary input, in the development of continuous spontaneous activity in the visual cortex of mice using depth electrode recordings from enucleated mice

Identifiants

pubmed: 33947688
pii: ENEURO.0184-21.2021
doi: 10.1523/ENEURO.0184-21.2021
pmc: PMC8143019
pii:
doi:

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Subventions

Organisme : NEI NIH HHS
ID : R01 EY022730
Pays : United States
Organisme : NINDS NIH HHS
ID : R01 NS106244
Pays : United States

Informations de copyright

Copyright © 2021 Riyahi et al.

Références

Brain Res. 2019 Mar 1;1706:13-23
pubmed: 30366019
Nat Commun. 2015 Jul 16;6:7750
pubmed: 26177896
Annu Rev Neurosci. 2010;33:23-48
pubmed: 20201645
Curr Opin Neurobiol. 2018 Oct;52:72-79
pubmed: 29715588
Annu Rev Neurosci. 2017 Jul 25;40:499-538
pubmed: 28772103
Eur J Neurosci. 2020 Jan;51(1):413-421
pubmed: 30614089
Sci Adv. 2020 Jun 12;6(24):eaba1430
pubmed: 32582852
J Neurosci. 2021 Feb 3;41(5):813-822
pubmed: 33431633
Curr Biol. 2017 Aug 21;27(16):2407-2419.e4
pubmed: 28781054
J Neurosci. 2010 Mar 24;30(12):4325-37
pubmed: 20335468
Nat Rev Neurosci. 2011 Aug 10;12(9):509-23
pubmed: 21829219
Science. 2010 Jan 29;327(5965):587-90
pubmed: 20110507
Cell. 2016 Mar 24;165(1):180-191
pubmed: 26997481
Trends Cogn Sci. 2010 Apr;14(4):180-90
pubmed: 20206576
Neuron. 2010 Aug 12;67(3):480-98
pubmed: 20696384
J Neurosci. 2016 Nov 30;36(48):12259-12275
pubmed: 27903733
J Neurosci. 2003 Apr 1;23(7):2851-60
pubmed: 12684472
Science. 1999 Jul 23;285(5427):599-604
pubmed: 10417392
Curr Biol. 2012 Feb 7;22(3):253-8
pubmed: 22264606
Nature. 2004 Dec 9;432(7018):758-61
pubmed: 15592414
Neuron. 2019 Nov 20;104(4):711-723.e3
pubmed: 31561919
Neurophysiol Clin. 2021 Jan;51(1):5-33
pubmed: 33162287
Front Neuroanat. 2019 Apr 16;13:41
pubmed: 31040772
Curr Opin Neurobiol. 2014 Feb;24(1):166-75
pubmed: 24492092
Ann Clin Transl Neurol. 2014 Mar;1(3):209-14
pubmed: 25356399
Front Neural Circuits. 2016 Sep 05;10:71
pubmed: 27656131
Front Cell Neurosci. 2017 Sep 20;11:289
pubmed: 28979189
Dev Psychobiol. 1976 Nov;9(6):501-15
pubmed: 1001836
Neurophysiol Clin. 2010 May;40(2):59-124
pubmed: 20510792
J Clin Neurophysiol. 2011 Dec;28(6):611-7
pubmed: 22146359
Dev Neurosci. 2017;39(1-4):23-35
pubmed: 28402972
Arch Dis Child Fetal Neonatal Ed. 2005 May;90(3):F245-51
pubmed: 15846017
Elife. 2021 Mar 16;10:
pubmed: 33722342
Proc Natl Acad Sci U S A. 2020 Sep 29;117(39):24514-24525
pubmed: 32917810
Neural Plast. 2016;2016:8037321
pubmed: 27119028
Biol Psychiatry. 2015 Jun 15;77(12):1071-8
pubmed: 25680672
Philos Trans R Soc Lond B Biol Sci. 2017 Mar 5;372(1715):
pubmed: 28093556
Jpn J Physiol. 1960 Apr 29;10:211-20
pubmed: 13839778
Nat Neurosci. 2016 Apr;19(4):634-641
pubmed: 26974951
Neuron. 2018 Oct 24;100(2):294-313
pubmed: 30359598
Nat Commun. 2017 Feb 03;8:14172
pubmed: 28155854
J Neurosci. 2016 Mar 30;36(13):3676-90
pubmed: 27030754
J Comp Neurol. 2003 Apr 28;459(2):156-72
pubmed: 12640667
Sci Rep. 2017 Oct 11;7(1):12969
pubmed: 29021546
Nat Commun. 2017 Feb 20;8:14563
pubmed: 28216627
Neuroimage. 2016 Sep;138:64-75
pubmed: 27222218
Annu Rev Neurosci. 2020 Jul 8;43:391-415
pubmed: 32250724
Elife. 2016 Oct 11;5:
pubmed: 27725086
Neuroscience. 2018 Jan 1;368:256-267
pubmed: 28528963
J Neurosci. 2018 Oct 10;38(41):8772-8786
pubmed: 30150360
Early Hum Dev. 2017 Oct;113:87-103
pubmed: 28711233
Clin Neurophysiol Pract. 2016 Dec 05;2:12-18
pubmed: 30214965
Annu Rev Vis Sci. 2019 Sep 15;5:317-339
pubmed: 31525143
Semin Fetal Neonatal Med. 2006 Dec;11(6):471-8
pubmed: 17018268
Trends Cogn Sci. 2020 Sep;24(9):734-746
pubmed: 32600967
Cell Rep. 2017 May 2;19(5):939-948
pubmed: 28467907
J Neurosci. 2014 Apr 16;34(16):5477-85
pubmed: 24741038
J Neurosci. 2013 Jun 12;33(24):10085-97
pubmed: 23761904

Auteurs

Pouria Riyahi (P)

Department of Biomedical Engineering, The George Washington University, Washington DC 20052.

Marnie A Phillips (MA)

Department of Pharmacology and Physiology, The George Washington University, Washington DC 20052.

Matthew T Colonnese (MT)

Department of Pharmacology and Physiology, The George Washington University, Washington DC 20052 colonnese@gwu.edu.

Articles similaires

Robotic Surgical Procedures Animals Humans Telemedicine Models, Animal

Odour generalisation and detection dog training.

Lyn Caldicott, Thomas W Pike, Helen E Zulch et al.
1.00
Animals Odorants Dogs Generalization, Psychological Smell
Animals TOR Serine-Threonine Kinases Colorectal Neoplasms Colitis Mice
Animals Tail Swine Behavior, Animal Animal Husbandry

Classifications MeSH