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ADAM17 targeting by human cytomegalovirus remodels the cell surface proteome to simultaneously regulate multiple immune pathways

Human cytomegalovirus (HCMV) is a major human pathogen whose life-long persistence is enabled by its remarkable capacity to systematically subvert host immune defenses. In exploring the finding that HCMV infection up-regulates tumor necrosis factor receptor 2 (TNFR2), a ligand for the pro-inflammato...

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Autores principales: Rubina, Anzelika, Patel, Mihil, Nightingale, Katie, Potts, Martin, Fielding, Ceri A., Kollnberger, Simon, Lau, Betty, Ladell, Kristin, Miners, Kelly L., Nichols, Jenna, Nobre, Luis, Roberts, Dawn, Trinca, Terrence M., Twohig, Jason P., Vlahava, Virginia-Maria, Davison, Andrew J., Price, David A., Tomasec, Peter, Wilkinson, Gavin W. G., Weekes, Michael P., Stanton, Richard J., Wang, Eddie C. Y.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10438378/
https://www.ncbi.nlm.nih.gov/pubmed/37561786
http://dx.doi.org/10.1073/pnas.2303155120
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author Rubina, Anzelika
Patel, Mihil
Nightingale, Katie
Potts, Martin
Fielding, Ceri A.
Kollnberger, Simon
Lau, Betty
Ladell, Kristin
Miners, Kelly L.
Nichols, Jenna
Nobre, Luis
Roberts, Dawn
Trinca, Terrence M.
Twohig, Jason P.
Vlahava, Virginia-Maria
Davison, Andrew J.
Price, David A.
Tomasec, Peter
Wilkinson, Gavin W. G.
Weekes, Michael P.
Stanton, Richard J.
Wang, Eddie C. Y.
author_facet Rubina, Anzelika
Patel, Mihil
Nightingale, Katie
Potts, Martin
Fielding, Ceri A.
Kollnberger, Simon
Lau, Betty
Ladell, Kristin
Miners, Kelly L.
Nichols, Jenna
Nobre, Luis
Roberts, Dawn
Trinca, Terrence M.
Twohig, Jason P.
Vlahava, Virginia-Maria
Davison, Andrew J.
Price, David A.
Tomasec, Peter
Wilkinson, Gavin W. G.
Weekes, Michael P.
Stanton, Richard J.
Wang, Eddie C. Y.
author_sort Rubina, Anzelika
collection PubMed
description Human cytomegalovirus (HCMV) is a major human pathogen whose life-long persistence is enabled by its remarkable capacity to systematically subvert host immune defenses. In exploring the finding that HCMV infection up-regulates tumor necrosis factor receptor 2 (TNFR2), a ligand for the pro-inflammatory antiviral cytokine TNFα, we found that the underlying mechanism was due to targeting of the protease, A Disintegrin And Metalloproteinase 17 (ADAM17). ADAM17 is the prototype ‘sheddase’, a family of proteases that cleaves other membrane-bound proteins to release biologically active ectodomains into the supernatant. HCMV impaired ADAM17 surface expression through the action of two virally-encoded proteins in its U(L)/b’ region, UL148 and UL148D. Proteomic plasma membrane profiling of cells infected with an HCMV double-deletion mutant for UL148 and UL148D with restored ADAM17 expression, combined with ADAM17 functional blockade, showed that HCMV stabilized the surface expression of 114 proteins (P < 0.05) in an ADAM17-dependent fashion. These included reported substrates of ADAM17 with established immunological functions such as TNFR2 and jagged1, but also numerous unreported host and viral targets, such as nectin1, UL8, and UL144. Regulation of TNFα-induced cytokine responses and NK inhibition during HCMV infection were dependent on this impairment of ADAM17. We therefore identify a viral immunoregulatory mechanism in which targeting a single sheddase enables broad regulation of multiple critical surface receptors, revealing a paradigm for viral-encoded immunomodulation.
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spelling pubmed-104383782023-08-19 ADAM17 targeting by human cytomegalovirus remodels the cell surface proteome to simultaneously regulate multiple immune pathways Rubina, Anzelika Patel, Mihil Nightingale, Katie Potts, Martin Fielding, Ceri A. Kollnberger, Simon Lau, Betty Ladell, Kristin Miners, Kelly L. Nichols, Jenna Nobre, Luis Roberts, Dawn Trinca, Terrence M. Twohig, Jason P. Vlahava, Virginia-Maria Davison, Andrew J. Price, David A. Tomasec, Peter Wilkinson, Gavin W. G. Weekes, Michael P. Stanton, Richard J. Wang, Eddie C. Y. Proc Natl Acad Sci U S A Biological Sciences Human cytomegalovirus (HCMV) is a major human pathogen whose life-long persistence is enabled by its remarkable capacity to systematically subvert host immune defenses. In exploring the finding that HCMV infection up-regulates tumor necrosis factor receptor 2 (TNFR2), a ligand for the pro-inflammatory antiviral cytokine TNFα, we found that the underlying mechanism was due to targeting of the protease, A Disintegrin And Metalloproteinase 17 (ADAM17). ADAM17 is the prototype ‘sheddase’, a family of proteases that cleaves other membrane-bound proteins to release biologically active ectodomains into the supernatant. HCMV impaired ADAM17 surface expression through the action of two virally-encoded proteins in its U(L)/b’ region, UL148 and UL148D. Proteomic plasma membrane profiling of cells infected with an HCMV double-deletion mutant for UL148 and UL148D with restored ADAM17 expression, combined with ADAM17 functional blockade, showed that HCMV stabilized the surface expression of 114 proteins (P < 0.05) in an ADAM17-dependent fashion. These included reported substrates of ADAM17 with established immunological functions such as TNFR2 and jagged1, but also numerous unreported host and viral targets, such as nectin1, UL8, and UL144. Regulation of TNFα-induced cytokine responses and NK inhibition during HCMV infection were dependent on this impairment of ADAM17. We therefore identify a viral immunoregulatory mechanism in which targeting a single sheddase enables broad regulation of multiple critical surface receptors, revealing a paradigm for viral-encoded immunomodulation. National Academy of Sciences 2023-08-10 2023-08-15 /pmc/articles/PMC10438378/ /pubmed/37561786 http://dx.doi.org/10.1073/pnas.2303155120 Text en Copyright © 2023 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by/4.0/This open access article is distributed under Creative Commons Attribution License 4.0 (CC BY) (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Biological Sciences
Rubina, Anzelika
Patel, Mihil
Nightingale, Katie
Potts, Martin
Fielding, Ceri A.
Kollnberger, Simon
Lau, Betty
Ladell, Kristin
Miners, Kelly L.
Nichols, Jenna
Nobre, Luis
Roberts, Dawn
Trinca, Terrence M.
Twohig, Jason P.
Vlahava, Virginia-Maria
Davison, Andrew J.
Price, David A.
Tomasec, Peter
Wilkinson, Gavin W. G.
Weekes, Michael P.
Stanton, Richard J.
Wang, Eddie C. Y.
ADAM17 targeting by human cytomegalovirus remodels the cell surface proteome to simultaneously regulate multiple immune pathways
title ADAM17 targeting by human cytomegalovirus remodels the cell surface proteome to simultaneously regulate multiple immune pathways
title_full ADAM17 targeting by human cytomegalovirus remodels the cell surface proteome to simultaneously regulate multiple immune pathways
title_fullStr ADAM17 targeting by human cytomegalovirus remodels the cell surface proteome to simultaneously regulate multiple immune pathways
title_full_unstemmed ADAM17 targeting by human cytomegalovirus remodels the cell surface proteome to simultaneously regulate multiple immune pathways
title_short ADAM17 targeting by human cytomegalovirus remodels the cell surface proteome to simultaneously regulate multiple immune pathways
title_sort adam17 targeting by human cytomegalovirus remodels the cell surface proteome to simultaneously regulate multiple immune pathways
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10438378/
https://www.ncbi.nlm.nih.gov/pubmed/37561786
http://dx.doi.org/10.1073/pnas.2303155120
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