Presynapses contain distinct actin nanostructures

Author:

Bingham Dominic1ORCID,Jakobs Channa Elise1ORCID,Wernert Florian1ORCID,Boroni-Rueda Fanny1ORCID,Jullien Nicolas1ORCID,Schentarra Eva-Maria1ORCID,Friedl Karoline12ORCID,Da Costa Moura Julie1ORCID,van Bommel Danique Michelle1ORCID,Caillol Ghislaine1ORCID,Ogawa Yuki3ORCID,Papandréou Marie-Jeanne1ORCID,Leterrier Christophe1ORCID

Affiliation:

1. CNRS, INP UMR7051, NeuroCyto, Aix Marseille Université 1 , Marseille, France

2. Abbelight 2 , Cachan, France

3. Baylor College of Medicine 3 Department of Neuroscience, , Houston, TX, USA

Abstract

The architecture of the actin cytoskeleton that concentrates at presynapses remains poorly known, hindering our understanding of its roles in synaptic physiology. In this work, we measure and visualize presynaptic actin by diffraction-limited and super-resolution microscopy, thanks to a validated model of bead-induced presynapses in cultured neurons. We identify a major population of actin-enriched presynapses that concentrates more presynaptic components and shows higher synaptic vesicle cycling than their non-enriched counterparts. Pharmacological perturbations point to an optimal actin amount and the presence of distinct actin structures within presynapses. We directly visualize these nanostructures using Single Molecule Localization Microscopy (SMLM), defining three distinct types: an actin mesh at the active zone, actin rails between the active zone and deeper reserve pools, and actin corrals around the whole presynaptic compartment. Finally, CRISPR-tagging of endogenous actin allows us to validate our results in natural synapses between cultured neurons, confirming the role of actin enrichment and the presence of three types of presynaptic actin nanostructures.

Funder

CPER-FEDER

Fédération pour la Recherche sur le Cerveau

Centre National de la Recherche Scientifique

Fondation pour la Recherche Médicale

French Government “Investissements d’Avenir”

Institut NeuroMarseille

Publisher

Rockefeller University Press

Subject

Cell Biology

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