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RANBP2 and USP9x regulate nuclear import of adenovirus minor coat protein IIIa

As intracellular parasites, viruses exploit cellular proteins at every stage of infection. Adenovirus outbreaks are associated with severe acute respiratory illnesses and conjunctivitis, with no specific antiviral therapy available. An adenoviral vaccine based on human adenovirus species D (HAdV-D)...

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Autores principales: Ismail, Ashrafali M., Saha, Amrita, Lee, Ji S., Painter, David F., Chen, Yinghua, Singh, Gurdeep, Condezo, Gabriela N., Chodosh, James, San Martín, Carmen, Rajaiya, Jaya
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9242475/
https://www.ncbi.nlm.nih.gov/pubmed/35709296
http://dx.doi.org/10.1371/journal.ppat.1010588
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author Ismail, Ashrafali M.
Saha, Amrita
Lee, Ji S.
Painter, David F.
Chen, Yinghua
Singh, Gurdeep
Condezo, Gabriela N.
Chodosh, James
San Martín, Carmen
Rajaiya, Jaya
author_facet Ismail, Ashrafali M.
Saha, Amrita
Lee, Ji S.
Painter, David F.
Chen, Yinghua
Singh, Gurdeep
Condezo, Gabriela N.
Chodosh, James
San Martín, Carmen
Rajaiya, Jaya
author_sort Ismail, Ashrafali M.
collection PubMed
description As intracellular parasites, viruses exploit cellular proteins at every stage of infection. Adenovirus outbreaks are associated with severe acute respiratory illnesses and conjunctivitis, with no specific antiviral therapy available. An adenoviral vaccine based on human adenovirus species D (HAdV-D) is currently in use for COVID-19. Herein, we investigate host interactions of HAdV-D type 37 (HAdV-D37) protein IIIa (pIIIa), identified by affinity purification and mass spectrometry (AP-MS) screens. We demonstrate that viral pIIIa interacts with ubiquitin-specific protease 9x (USP9x) and Ran-binding protein 2 (RANBP2). USP9x binding did not invoke its signature deubiquitination function but rather deregulated pIIIa-RANBP2 interactions. In USP9x-knockout cells, viral genome replication and viral protein expression increased compared to wild type cells, supporting a host-favored mechanism for USP9x. Conversely, RANBP2-knock down reduced pIIIa transport to the nucleus, viral genome replication, and viral protein expression. Also, RANBP2-siRNA pretreated cells appeared to contain fewer mature viral particles. Transmission electron microscopy of USP9x-siRNA pretreated, virus-infected cells revealed larger than typical paracrystalline viral arrays. RANBP2-siRNA pretreatment led to the accumulation of defective assembly products at an early maturation stage. CRM1 nuclear export blockade by leptomycin B led to the retention of pIIIa within cell nuclei and hindered pIIIa-RANBP2 interactions. In-vitro binding analyses indicated that USP9x and RANBP2 bind to C-terminus of pIIIa amino acids 386–563 and 386–510, respectively. Surface plasmon resonance testing showed direct pIIIa interaction with recombinant USP9x and RANBP2 proteins, without competition. Using an alternative and genetically disparate adenovirus type (HAdV-C5), we show that the demonstrated pIIIa interaction is also important for a severe respiratory pathogen. Together, our results suggest that pIIIa hijacks RANBP2 for nuclear import and subsequent virion assembly. USP9x counteracts this interaction and negatively regulates virion synthesis. This analysis extends the scope of known adenovirus-host interactions and has potential implications in designing new antiviral therapeutics.
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spelling pubmed-92424752022-06-30 RANBP2 and USP9x regulate nuclear import of adenovirus minor coat protein IIIa Ismail, Ashrafali M. Saha, Amrita Lee, Ji S. Painter, David F. Chen, Yinghua Singh, Gurdeep Condezo, Gabriela N. Chodosh, James San Martín, Carmen Rajaiya, Jaya PLoS Pathog Research Article As intracellular parasites, viruses exploit cellular proteins at every stage of infection. Adenovirus outbreaks are associated with severe acute respiratory illnesses and conjunctivitis, with no specific antiviral therapy available. An adenoviral vaccine based on human adenovirus species D (HAdV-D) is currently in use for COVID-19. Herein, we investigate host interactions of HAdV-D type 37 (HAdV-D37) protein IIIa (pIIIa), identified by affinity purification and mass spectrometry (AP-MS) screens. We demonstrate that viral pIIIa interacts with ubiquitin-specific protease 9x (USP9x) and Ran-binding protein 2 (RANBP2). USP9x binding did not invoke its signature deubiquitination function but rather deregulated pIIIa-RANBP2 interactions. In USP9x-knockout cells, viral genome replication and viral protein expression increased compared to wild type cells, supporting a host-favored mechanism for USP9x. Conversely, RANBP2-knock down reduced pIIIa transport to the nucleus, viral genome replication, and viral protein expression. Also, RANBP2-siRNA pretreated cells appeared to contain fewer mature viral particles. Transmission electron microscopy of USP9x-siRNA pretreated, virus-infected cells revealed larger than typical paracrystalline viral arrays. RANBP2-siRNA pretreatment led to the accumulation of defective assembly products at an early maturation stage. CRM1 nuclear export blockade by leptomycin B led to the retention of pIIIa within cell nuclei and hindered pIIIa-RANBP2 interactions. In-vitro binding analyses indicated that USP9x and RANBP2 bind to C-terminus of pIIIa amino acids 386–563 and 386–510, respectively. Surface plasmon resonance testing showed direct pIIIa interaction with recombinant USP9x and RANBP2 proteins, without competition. Using an alternative and genetically disparate adenovirus type (HAdV-C5), we show that the demonstrated pIIIa interaction is also important for a severe respiratory pathogen. Together, our results suggest that pIIIa hijacks RANBP2 for nuclear import and subsequent virion assembly. USP9x counteracts this interaction and negatively regulates virion synthesis. This analysis extends the scope of known adenovirus-host interactions and has potential implications in designing new antiviral therapeutics. Public Library of Science 2022-06-16 /pmc/articles/PMC9242475/ /pubmed/35709296 http://dx.doi.org/10.1371/journal.ppat.1010588 Text en © 2022 Ismail 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
Ismail, Ashrafali M.
Saha, Amrita
Lee, Ji S.
Painter, David F.
Chen, Yinghua
Singh, Gurdeep
Condezo, Gabriela N.
Chodosh, James
San Martín, Carmen
Rajaiya, Jaya
RANBP2 and USP9x regulate nuclear import of adenovirus minor coat protein IIIa
title RANBP2 and USP9x regulate nuclear import of adenovirus minor coat protein IIIa
title_full RANBP2 and USP9x regulate nuclear import of adenovirus minor coat protein IIIa
title_fullStr RANBP2 and USP9x regulate nuclear import of adenovirus minor coat protein IIIa
title_full_unstemmed RANBP2 and USP9x regulate nuclear import of adenovirus minor coat protein IIIa
title_short RANBP2 and USP9x regulate nuclear import of adenovirus minor coat protein IIIa
title_sort ranbp2 and usp9x regulate nuclear import of adenovirus minor coat protein iiia
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9242475/
https://www.ncbi.nlm.nih.gov/pubmed/35709296
http://dx.doi.org/10.1371/journal.ppat.1010588
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