» Articles » PMID: 30890637

Structural Maturation of Cortical Perineuronal Nets and Their Perforating Synapses Revealed by Superresolution Imaging

Overview
Specialty Science
Date 2019 Mar 21
PMID 30890637
Citations 54
Authors
Affiliations
Soon will be listed here.
Abstract

Parvalbumin-positive (PV+) interneurons play a pivotal role in orchestrating windows of experience-dependent brain plasticity during development. Critical period closure is marked by the condensation of a perineuronal net (PNN) tightly enwrapping subsets of PV+ neurons, both acting as a molecular brake on plasticity and maintaining mature PV+ cell signaling. As much of the molecular organization of PNNs exists at length scales near or below the diffraction limit of light microscopy, we developed a superresolution imaging and analysis platform to visualize the structural organization of PNNs and the synaptic inputs perforating them in primary visual cortex. We identified a structural trajectory of PNN maturation featuring a range of net structures, which was accompanied by an increase in Synaptotagmin-2 (Syt2) signals on PV+ cells suggestive of increased inhibitory input between PV+ neurons. The same structural trajectory was followed by PNNs both during normal development and under conditions of critical period delay by total sensory deprivation or critical period acceleration by deletion of , the causative gene for Rett syndrome, despite shifted maturation levels under these perturbations. Notably, superresolution imaging further revealed a decrease in Syt2 signals alongside an increase in vesicular glutamate transporter-2 signals on PV+ cells in -deficient animals, suggesting weaker recurrent inhibitory input between PV+ neurons and stronger thalamocortical excitatory inputs onto PV+ cells. These results imply a latent imbalanced circuit signature that might promote cortical silencing in Rett syndrome before the functional regression of vision.

Citing Articles

Perineuronal Nets on CA2 Pyramidal Cells and Parvalbumin-Expressing Cells Differentially Regulate Hippocampal-Dependent Memory.

Alexander G, Nikolova V, Stober T, Gruzdev A, Moy S, Dudek S J Neurosci. 2024; 45(6).

PMID: 39740999 PMC: 11800750. DOI: 10.1523/JNEUROSCI.1626-24.2024.


Fortunate molecules boost signal to background ratio and localization precision in correlation based single molecule localization microscopy.

S A, Zanacchi F, Mondal P Commun Biol. 2024; 7(1):1693.

PMID: 39715806 PMC: 11666785. DOI: 10.1038/s42003-024-07153-x.


Perineuronal nets on CA2 pyramidal cells and parvalbumin-expressing cells differentially regulate hippocampal dependent memory.

Alexander G, Nikolova V, Stober T, Gruzdev A, Moy S, Dudek S bioRxiv. 2024; .

PMID: 39574580 PMC: 11581025. DOI: 10.1101/2024.11.07.622463.


Reduced excitatory activity in the developing mPFC mediates a PV-to-PV transition and impaired social cognition in autism spectrum disorders.

Luo Y, Wang L, Cao Y, Shen Y, Gu Y, Wang L Transl Psychiatry. 2024; 14(1):325.

PMID: 39107319 PMC: 11303698. DOI: 10.1038/s41398-024-03043-2.


Developmental Disruption of Mef2c in Medial Ganglionic Eminence-Derived Cortical Inhibitory Interneurons Impairs Cellular and Circuit Function.

Ward C, Nasrallah K, Tran D, Sabri E, Vazquez A, Sjulson L Biol Psychiatry. 2024; 96(10):804-814.

PMID: 38848814 PMC: 11486581. DOI: 10.1016/j.biopsych.2024.05.021.


References
1.
Amir R, Van den Veyver I, Wan M, Tran C, Francke U, Zoghbi H . Rett syndrome is caused by mutations in X-linked MECP2, encoding methyl-CpG-binding protein 2. Nat Genet. 1999; 23(2):185-8. DOI: 10.1038/13810. View

2.
Guy J, Hendrich B, Holmes M, Martin J, Bird A . A mouse Mecp2-null mutation causes neurological symptoms that mimic Rett syndrome. Nat Genet. 2001; 27(3):322-6. DOI: 10.1038/85899. View

3.
Fremeau Jr R, Troyer M, Pahner I, Nygaard G, Tran C, Reimer R . The expression of vesicular glutamate transporters defines two classes of excitatory synapse. Neuron. 2001; 31(2):247-60. DOI: 10.1016/s0896-6273(01)00344-0. View

4.
Pizzorusso T, Medini P, Berardi N, Chierzi S, Fawcett J, Maffei L . Reactivation of ocular dominance plasticity in the adult visual cortex. Science. 2002; 298(5596):1248-51. DOI: 10.1126/science.1072699. View

5.
Hartig W, Brauer K, Bruckner G . Wisteria floribunda agglutinin-labelled nets surround parvalbumin-containing neurons. Neuroreport. 1992; 3(10):869-72. DOI: 10.1097/00001756-199210000-00012. View