Alix is required for activity-dependent bulk endocytosis at brain synapses

Südhof, Thomas C. and Laporte, Marine H. and Chi, Kwang Il and Caudal, Laura C. and Zhao, Na and Schwarz, Yvonne and Rolland, Marta and Martinez-Hernandez, José and Martineau, Magalie and Chatellard, Christine and Denarier, Eric and Mercier, Vincent and Lemaître, Florent and Blot, Béatrice and Moutaux, Eve and Cazorla, Maxime and Perrais, David and Lanté, Fabien and Bruns, Dieter and Fraboulet, Sandrine and Hemming, Fiona J. and Kirchhoff, Frank and Sadoul, Rémy (2022) Alix is required for activity-dependent bulk endocytosis at brain synapses. PLOS Biology, 20 (6). e3001659. ISSN 1545-7885

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Abstract

In chemical synapses undergoing high frequency stimulation, vesicle components can be retrieved from the plasma membrane via a clathrin-independent process called activity-dependent bulk endocytosis (ADBE). Alix (ALG-2-interacting protein X/PDCD6IP) is an adaptor protein binding to ESCRT and endophilin-A proteins which is required for clathrin-independent endocytosis in fibroblasts. Alix is expressed in neurons and concentrates at synapses during epileptic seizures. Here, we used cultured neurons to show that Alix is recruited to presynapses where it interacts with and concentrates endophilin-A during conditions triggering ADBE. Using Alix knockout (ko) neurons, we showed that this recruitment, which requires interaction with the calcium-binding protein ALG-2, is necessary for ADBE. We also found that presynaptic compartments of Alix ko hippocampi display subtle morphological defects compatible with flawed synaptic activity and plasticity detected electrophysiologically. Furthermore, mice lacking Alix in the forebrain undergo less seizures during kainate-induced status epilepticus and reduced propagation of the epileptiform activity. These results thus show that impairment of ADBE due to the lack of neuronal Alix leads to abnormal synaptic recovery during physiological or pathological repeated stimulations.

Item Type: Article
Subjects: ArticleGate > Biological Science
Depositing User: APLOS Lib
Date Deposited: 09 Jul 2022 12:14
Last Modified: 09 Jul 2022 12:14
URI: http://ebooks.pubstmlibrary.com/id/eprint/261

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