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TBK1 is part of a galectin 8 dependent membrane damage recognition complex and drives autophagy upon Adenovirus endosomal escape

Intracellular pathogens cause membrane distortion and damage as they enter host cells. Cells perceive these membrane alterations as danger signals and respond by activating autophagy. This response has primarily been studied during bacterial invasion, and only rarely in viral infections. Here, we in...

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Autores principales: Pied, Noémie, Daussy, Coralie F., Denis, Zoé, Ragues, Jessica, Faure, Muriel, Iggo, Richard, Tschan, Mario P., Roger, Benoit, Rayne, Fabienne, Wodrich, Harald
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9342788/
https://www.ncbi.nlm.nih.gov/pubmed/35857795
http://dx.doi.org/10.1371/journal.ppat.1010736
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author Pied, Noémie
Daussy, Coralie F.
Denis, Zoé
Ragues, Jessica
Faure, Muriel
Iggo, Richard
Tschan, Mario P.
Roger, Benoit
Rayne, Fabienne
Wodrich, Harald
author_facet Pied, Noémie
Daussy, Coralie F.
Denis, Zoé
Ragues, Jessica
Faure, Muriel
Iggo, Richard
Tschan, Mario P.
Roger, Benoit
Rayne, Fabienne
Wodrich, Harald
author_sort Pied, Noémie
collection PubMed
description Intracellular pathogens cause membrane distortion and damage as they enter host cells. Cells perceive these membrane alterations as danger signals and respond by activating autophagy. This response has primarily been studied during bacterial invasion, and only rarely in viral infections. Here, we investigate the cellular response to membrane damage during adenoviral entry. Adenoviruses and their vector derivatives, that are an important vaccine platform against SARS-CoV-2, enter the host cell by endocytosis followed by lysis of the endosomal membrane. We previously showed that cells mount a locally confined autophagy response at the site of endosomal membrane lysis. Here we describe the mechanism of autophagy induction: endosomal membrane damage activates the kinase TBK1 that accumulates in its phosphorylated form at the penetration site. Activation and recruitment of TBK1 require detection of membrane damage by galectin 8 but occur independently of classical autophagy receptors or functional autophagy. Instead, TBK1 itself promotes subsequent autophagy that adenoviruses need to take control of. Deletion of TBK1 reduces LC3 lipidation during adenovirus infection and restores the infectivity of an adenovirus mutant that is restricted by autophagy. By comparing adenovirus-induced membrane damage to sterile lysosomal damage, we implicate TBK1 in the response to a broader range of types of membrane damage. Our study thus highlights an important role for TBK1 in the cellular response to adenoviral endosome penetration and places TBK1 early in the pathway leading to autophagy in response to membrane damage.
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spelling pubmed-93427882022-08-02 TBK1 is part of a galectin 8 dependent membrane damage recognition complex and drives autophagy upon Adenovirus endosomal escape Pied, Noémie Daussy, Coralie F. Denis, Zoé Ragues, Jessica Faure, Muriel Iggo, Richard Tschan, Mario P. Roger, Benoit Rayne, Fabienne Wodrich, Harald PLoS Pathog Research Article Intracellular pathogens cause membrane distortion and damage as they enter host cells. Cells perceive these membrane alterations as danger signals and respond by activating autophagy. This response has primarily been studied during bacterial invasion, and only rarely in viral infections. Here, we investigate the cellular response to membrane damage during adenoviral entry. Adenoviruses and their vector derivatives, that are an important vaccine platform against SARS-CoV-2, enter the host cell by endocytosis followed by lysis of the endosomal membrane. We previously showed that cells mount a locally confined autophagy response at the site of endosomal membrane lysis. Here we describe the mechanism of autophagy induction: endosomal membrane damage activates the kinase TBK1 that accumulates in its phosphorylated form at the penetration site. Activation and recruitment of TBK1 require detection of membrane damage by galectin 8 but occur independently of classical autophagy receptors or functional autophagy. Instead, TBK1 itself promotes subsequent autophagy that adenoviruses need to take control of. Deletion of TBK1 reduces LC3 lipidation during adenovirus infection and restores the infectivity of an adenovirus mutant that is restricted by autophagy. By comparing adenovirus-induced membrane damage to sterile lysosomal damage, we implicate TBK1 in the response to a broader range of types of membrane damage. Our study thus highlights an important role for TBK1 in the cellular response to adenoviral endosome penetration and places TBK1 early in the pathway leading to autophagy in response to membrane damage. Public Library of Science 2022-07-20 /pmc/articles/PMC9342788/ /pubmed/35857795 http://dx.doi.org/10.1371/journal.ppat.1010736 Text en © 2022 Pied et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Pied, Noémie
Daussy, Coralie F.
Denis, Zoé
Ragues, Jessica
Faure, Muriel
Iggo, Richard
Tschan, Mario P.
Roger, Benoit
Rayne, Fabienne
Wodrich, Harald
TBK1 is part of a galectin 8 dependent membrane damage recognition complex and drives autophagy upon Adenovirus endosomal escape
title TBK1 is part of a galectin 8 dependent membrane damage recognition complex and drives autophagy upon Adenovirus endosomal escape
title_full TBK1 is part of a galectin 8 dependent membrane damage recognition complex and drives autophagy upon Adenovirus endosomal escape
title_fullStr TBK1 is part of a galectin 8 dependent membrane damage recognition complex and drives autophagy upon Adenovirus endosomal escape
title_full_unstemmed TBK1 is part of a galectin 8 dependent membrane damage recognition complex and drives autophagy upon Adenovirus endosomal escape
title_short TBK1 is part of a galectin 8 dependent membrane damage recognition complex and drives autophagy upon Adenovirus endosomal escape
title_sort tbk1 is part of a galectin 8 dependent membrane damage recognition complex and drives autophagy upon adenovirus endosomal escape
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9342788/
https://www.ncbi.nlm.nih.gov/pubmed/35857795
http://dx.doi.org/10.1371/journal.ppat.1010736
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