The endocannabinoid 2-arachidonoylglycerol is released and transported on demand via extracellular microvesicles

V Verena M. Straub (Department of Molecular Physiology, Leiden University) B Benjamin Barti (Department of Psychological and Brain Sciences, Indiana University Bloomington) S Sebastian T. Tandar (Division of Systems Pharmacology & Pharmacy, Leiden Academic Centre for Drug Research, Leiden University) A A. Floor Stevens (Department of Molecular Physiology, Leiden University) N Noëlle van Egmond (Department of Molecular Physiology, Leiden University) T Tom van der Wel (Department of Molecular Physiology, Leiden University) N Na Zhu (Department of Molecular Physiology, Leiden University) J Joel Rüegger (Department of Molecular Physiology, Leiden University) C Cas van der Horst (Leiden Academic Centre for Drug Research) L Laura H. Heitman (Leiden Academic Centre for Drug Research) Y Yulong Li N Nephi Stella (Department of Pharmacology, School of Medicine, University of Washington) J J. G. Coen van Hasselt (Division of Systems Pharmacology & Pharmacy, Leiden Academic Centre for Drug Research, Leiden University) I István Katona (Department of Psychological and Brain Sciences, Indiana University Bloomington) M Mario van der Stelt (Division of Drug Discovery and Safety, Leiden Academic Centre for Drug Research)

Abstract

While it is known that endocannabinoids (eCB) modulate multiple neuronal functions, the molecular mechanism governing their release and transport remains elusive. Here, we propose an “ on-demand release ” model, wherein the formation of microvesicles, a specific group of extracellular vesicles (EVs) containing the eCB, 2-arachidonoylglycerol (2-AG), is an important step. A coculture model system that combines a reporter cell line expressing the fluorescent eCB sensor, G protein-coupled receptor-based (GRAB) eCB2.0 , and neuronal cells revealed that neurons release EVs containing 2-AG, but not anandamide, in a stimulus-dependent process regulated by protein kinase C, Diacylglycerol lipase, Adenosinediphosphate (ADP) ribosylation factor 6 (Arf6), and which was sensitive to inhibitors of eCB facilitated diffusion. A vesicle contained approximately 2,000 2-AG molecules. Accordingly, hippocampal eCB-mediated synaptic plasticity was modulated by Arf6 and transport inhibitors. The “ on-demand release ” model, supported by mathematical analysis, offers a cohesive framework for understanding eCB trafficking at the molecular level and suggests that microvesicles carrying signaling lipids in their membrane regulate neuronal functions in parallel to canonical synaptic vesicles.

Article Details

Volume / Issue Vol. 122, Issue 8
Published February 25, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (15)

V

Verena M. Straub

Department of Molecular Physiology, Leiden University

B

Benjamin Barti

Department of Psychological and Brain Sciences, Indiana University Bloomington

S

Sebastian T. Tandar

Division of Systems Pharmacology & Pharmacy, Leiden Academic Centre for Drug Research, Leiden University

A

A. Floor Stevens

Department of Molecular Physiology, Leiden University

N

Noëlle van Egmond

Department of Molecular Physiology, Leiden University

T

Tom van der Wel

Department of Molecular Physiology, Leiden University

N

Na Zhu

Department of Molecular Physiology, Leiden University

J

Joel Rüegger

Department of Molecular Physiology, Leiden University

C

Cas van der Horst

Leiden Academic Centre for Drug Research

L

Laura H. Heitman

Leiden Academic Centre for Drug Research

Y

Yulong Li

N

Nephi Stella

Department of Pharmacology, School of Medicine, University of Washington

J

J. G. Coen van Hasselt

Division of Systems Pharmacology & Pharmacy, Leiden Academic Centre for Drug Research, Leiden University

I

István Katona

Department of Psychological and Brain Sciences, Indiana University Bloomington

M

Mario van der Stelt

Division of Drug Discovery and Safety, Leiden Academic Centre for Drug Research