Multiomics of synaptic junctions reveals altered lipid metabolism and signaling following environmental enrichment

  • Maximilian Borgmeyer (Shared first author)
  • Cristina Coman (Shared first author)
  • Canan Has
  • Hans-Frieder Schött
  • Tingting Li
  • Philipp Westhoff
  • Yam F H Cheung
  • Nils Hoffmann
  • PingAn Yuanxiang
  • Thomas Behnisch
  • Guilherme M Gomes
  • Mael Dumenieu
  • Michaela Schweizer
  • Michaela Chocholoušková
  • Michal Holčapek
  • Marina Mikhaylova
  • Michael R Kreutz
  • Robert Ahrends

Abstract

Membrane lipids and their metabolism have key functions in neurotransmission. Here we provide a quantitative lipid inventory of mouse and rat synaptic junctions. To this end, we developed a multiomics extraction and analysis workflow to probe the interplay of proteins and lipids in synaptic signal transduction from the same sample. Based on this workflow, we generate hypotheses about novel mechanisms underlying complex changes in synaptic connectivity elicited by environmental stimuli. As a proof of principle, this approach reveals that in mice exposed to an enriched environment, reduced endocannabinoid synthesis and signaling is linked to increased surface expression of α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid receptor (AMPAR) in a subset of Cannabinoid-receptor 1 positive synapses. This mechanism regulates synaptic strength in an input-specific manner. Thus, we establish a compartment-specific multiomics workflow that is suitable to extract information from complex lipid and protein networks involved in synaptic function and plasticity.

Bibliographical data

Original languageEnglish
ISSN2211-1247
DOIs
Publication statusPublished - 05.10.2021

Comment Deanary

Copyright © 2021 The Author(s). Published by Elsevier Inc. All rights reserved.

PubMed 34610315