Identification of a stereotypic molecular arrangement of endogenous glycine receptors at spinal cord synapses

Author:

Maynard Stephanie A1ORCID,Rostaing Philippe1,Schaefer Natascha2ORCID,Gemin Olivier1ORCID,Candat Adrien1,Dumoulin Andréa1,Villmann Carmen2ORCID,Triller Antoine1ORCID,Specht Christian G13ORCID

Affiliation:

1. Institut de Biologie de l'ENS (IBENS), École Normale Supérieure, CNRS, Inserm, PSL University

2. Institute for Clinical Neurobiology, University Hospital, Julius-Maximilians-University

3. Diseases and Hormones of the Nervous System (DHNS), Inserm U1195, Université Paris-Saclay

Abstract

Precise quantitative information about the molecular architecture of synapses is essential to understanding the functional specificity and downstream signaling processes at specific populations of synapses. Glycine receptors (GlyRs) are the primary fast inhibitory neurotransmitter receptors in the spinal cord and brainstem. These inhibitory glycinergic networks crucially regulate motor and sensory processes. Thus far, the nanoscale organization of GlyRs underlying the different network specificities has not been defined. Here, we have quantitatively characterized the molecular arrangement and ultra-structure of glycinergic synapses in spinal cord tissue using quantitative super-resolution correlative light and electron microscopy. We show that endogenous GlyRs exhibit equal receptor-scaffold occupancy and constant packing densities of about 2000 GlyRs µm-2 at synapses across the spinal cord and throughout adulthood, even though ventral horn synapses have twice the total copy numbers, larger postsynaptic domains, and more convoluted morphologies than dorsal horn synapses. We demonstrate that this stereotypic molecular arrangement is maintained at glycinergic synapses in the oscillator mouse model of the neuromotor disease hyperekplexia despite a decrease in synapse size, indicating that the molecular organization of GlyRs is preserved in this hypomorph. We thus conclude that the morphology and size of inhibitory postsynaptic specializations rather than differences in GlyR packing determine the postsynaptic strength of glycinergic neurotransmission in motor and sensory spinal cord networks.

Funder

H2020 European Research Council

Agence Nationale de la Recherche

Labex

France Bio-Imaging

Deutsche Forschungsgemeinschaft

Fondation pour la Recherche Médicale

Bavarian State Ministry of Science and the Arts and the University of Würzburg

European Research Council

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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