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dc.contributor.author Pino-Belmar, Camila
dc.contributor.author Aguilar, Rayén
dc.contributor.author Valenzuela-Nieto, Guillermo E.
dc.contributor.author Cavieres, Viviana A.
dc.contributor.author Cerda-Troncoso, Cristóbal
dc.contributor.author Navarrete, Valentina C.
dc.contributor.author Salazar, Paula
dc.contributor.author Burgos, Patricia V.
dc.contributor.author Otth, Carola
dc.contributor.author Bustamante, Hianara A.
dc.date.accessioned 2026-02-08T03:22:40Z
dc.date.available 2026-02-08T03:22:40Z
dc.date.issued 2024-08
dc.identifier.issn 2073-4409
dc.identifier.other ORCID: /0000-0002-3012-8289/work/164372060
dc.identifier.uri https://repositorio.uss.cl/handle/uss/20260
dc.description Publisher Copyright: © 2024 by the authors.
dc.description.abstract Autophagy engulfs cellular components in double-membrane-bound autophagosomes for clearance and recycling after fusion with lysosomes. Thus, autophagy is a key process for maintaining proteostasis and a powerful cell-intrinsic host defense mechanism, protecting cells against pathogens by targeting them through a specific form of selective autophagy known as xenophagy. In this context, ubiquitination acts as a signal of recognition of the cargoes for autophagic receptors, which direct them towards autophagosomes for subsequent breakdown. Nevertheless, autophagy can carry out a dual role since numerous viruses including members of the Orthoherpesviridae family can either inhibit or exploit autophagy for its own benefit and to replicate within host cells. There is growing evidence that Herpes simplex virus type 1 (HSV-1), a highly prevalent human pathogen that infects epidermal keratinocytes and sensitive neurons, is capable of negatively modulating autophagy. Since the effects of HSV-1 infection on autophagic receptors have been poorly explored, this study aims to understand the consequences of HSV-1 productive infection on the levels of the major autophagic receptors involved in xenophagy, key proteins in the recruitment of intracellular pathogens into autophagosomes. We found that productive HSV-1 infection in human neuroglioma cells and keratinocytes causes a reduction in the total levels of Ub conjugates and decreases protein levels of autophagic receptors, including SQSTM1/p62, OPTN1, NBR1, and NDP52, a phenotype that is also accompanied by reduced levels of LC3-I and LC3-II, which interact directly with autophagic receptors. Mechanistically, we show these phenotypes are the result of xenophagy activation in the early stages of productive HSV-1 infection to limit virus replication, thereby reducing progeny HSV-1 yield. Additionally, we found that the removal of the tegument HSV-1 protein US11, a recognized viral factor that counteracts autophagy in host cells, enhances the clearance of autophagic receptors, with a significant reduction in the progeny HSV-1 yield. Moreover, the removal of US11 increases the ubiquitination of SQSTM1/p62, indicating that US11 slows down the autophagy turnover of autophagy receptors. Overall, our findings suggest that xenophagy is a potent host defense against HSV-1 replication and reveals the role of the autophagic receptors in the delivery of HSV-1 to clearance via xenophagy. en
dc.language.iso eng
dc.relation.ispartof vol. 13 Issue: no. 15 Pages:
dc.source Cells
dc.title An Intrinsic Host Defense against HSV-1 Relies on the Activation of Xenophagy with the Active Clearance of Autophagic Receptors en
dc.type Artículo
dc.identifier.doi 10.3390/cells13151256
dc.publisher.department Facultad de Ciencias

 

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