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Site-Selective Solid-Phase Synthesis of a CCR5 Sulfopeptide Library To Interrogate HIV Binding and Entry

[Image: see text] Tyrosine (Tyr) sulfation is a common post-translational modification that is implicated in a variety of important biological processes, including the fusion and entry of human immunodeficiency virus type-1 (HIV-1). A number of sulfated Tyr (sTyr) residues on the N-terminus of the C...

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Autores principales: Liu, Xuyu, Malins, Lara R., Roche, Michael, Sterjovski, Jasminka, Duncan, Renee, Garcia, Mary L., Barnes, Nadine C., Anderson, David A., Stone, Martin J., Gorry, Paul R., Payne, Richard J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2014
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4168781/
https://www.ncbi.nlm.nih.gov/pubmed/24963694
http://dx.doi.org/10.1021/cb500337r
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author Liu, Xuyu
Malins, Lara R.
Roche, Michael
Sterjovski, Jasminka
Duncan, Renee
Garcia, Mary L.
Barnes, Nadine C.
Anderson, David A.
Stone, Martin J.
Gorry, Paul R.
Payne, Richard J.
author_facet Liu, Xuyu
Malins, Lara R.
Roche, Michael
Sterjovski, Jasminka
Duncan, Renee
Garcia, Mary L.
Barnes, Nadine C.
Anderson, David A.
Stone, Martin J.
Gorry, Paul R.
Payne, Richard J.
author_sort Liu, Xuyu
collection PubMed
description [Image: see text] Tyrosine (Tyr) sulfation is a common post-translational modification that is implicated in a variety of important biological processes, including the fusion and entry of human immunodeficiency virus type-1 (HIV-1). A number of sulfated Tyr (sTyr) residues on the N-terminus of the CCR5 chemokine receptor are involved in a crucial binding interaction with the gp120 HIV-1 envelope glycoprotein. Despite the established importance of these sTyr residues, the exact structural and functional role of this post-translational modification in HIV-1 infection is not fully understood. Detailed biological studies are hindered in part by the difficulty in accessing homogeneous sulfopeptides and sulfoproteins through biological expression and established synthetic techniques. Herein we describe an efficient approach to the synthesis of sulfopeptides bearing discrete sulfation patterns through the divergent, site-selective incorporation of sTyr residues on solid support. By employing three orthogonally protected Tyr building blocks and a solid-phase sulfation protocol, we demonstrate the synthesis of a library of target N-terminal CCR5(2-22) sulfoforms bearing discrete and differential sulfation at Tyr10, Tyr14, and Tyr15, from a single resin-bound intermediate. We demonstrate the importance of distinct sites of Tyr sulfation in binding gp120 through a competitive binding assay between the synthetic CCR5 sulfopeptides and an anti-gp120 monoclonal antibody. These studies revealed a critical role of sulfation at Tyr14 for binding and a possible additional role for sulfation at Tyr10. N-terminal CCR5 variants bearing a sTyr residue at position 14 were also found to complement viral entry into cells expressing an N-terminally truncated CCR5 receptor.
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spelling pubmed-41687812015-06-25 Site-Selective Solid-Phase Synthesis of a CCR5 Sulfopeptide Library To Interrogate HIV Binding and Entry Liu, Xuyu Malins, Lara R. Roche, Michael Sterjovski, Jasminka Duncan, Renee Garcia, Mary L. Barnes, Nadine C. Anderson, David A. Stone, Martin J. Gorry, Paul R. Payne, Richard J. ACS Chem Biol [Image: see text] Tyrosine (Tyr) sulfation is a common post-translational modification that is implicated in a variety of important biological processes, including the fusion and entry of human immunodeficiency virus type-1 (HIV-1). A number of sulfated Tyr (sTyr) residues on the N-terminus of the CCR5 chemokine receptor are involved in a crucial binding interaction with the gp120 HIV-1 envelope glycoprotein. Despite the established importance of these sTyr residues, the exact structural and functional role of this post-translational modification in HIV-1 infection is not fully understood. Detailed biological studies are hindered in part by the difficulty in accessing homogeneous sulfopeptides and sulfoproteins through biological expression and established synthetic techniques. Herein we describe an efficient approach to the synthesis of sulfopeptides bearing discrete sulfation patterns through the divergent, site-selective incorporation of sTyr residues on solid support. By employing three orthogonally protected Tyr building blocks and a solid-phase sulfation protocol, we demonstrate the synthesis of a library of target N-terminal CCR5(2-22) sulfoforms bearing discrete and differential sulfation at Tyr10, Tyr14, and Tyr15, from a single resin-bound intermediate. We demonstrate the importance of distinct sites of Tyr sulfation in binding gp120 through a competitive binding assay between the synthetic CCR5 sulfopeptides and an anti-gp120 monoclonal antibody. These studies revealed a critical role of sulfation at Tyr14 for binding and a possible additional role for sulfation at Tyr10. N-terminal CCR5 variants bearing a sTyr residue at position 14 were also found to complement viral entry into cells expressing an N-terminally truncated CCR5 receptor. American Chemical Society 2014-06-25 2014-09-19 /pmc/articles/PMC4168781/ /pubmed/24963694 http://dx.doi.org/10.1021/cb500337r Text en Copyright © 2014 American Chemical Society Terms of Use (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html)
spellingShingle Liu, Xuyu
Malins, Lara R.
Roche, Michael
Sterjovski, Jasminka
Duncan, Renee
Garcia, Mary L.
Barnes, Nadine C.
Anderson, David A.
Stone, Martin J.
Gorry, Paul R.
Payne, Richard J.
Site-Selective Solid-Phase Synthesis of a CCR5 Sulfopeptide Library To Interrogate HIV Binding and Entry
title Site-Selective Solid-Phase Synthesis of a CCR5 Sulfopeptide Library To Interrogate HIV Binding and Entry
title_full Site-Selective Solid-Phase Synthesis of a CCR5 Sulfopeptide Library To Interrogate HIV Binding and Entry
title_fullStr Site-Selective Solid-Phase Synthesis of a CCR5 Sulfopeptide Library To Interrogate HIV Binding and Entry
title_full_unstemmed Site-Selective Solid-Phase Synthesis of a CCR5 Sulfopeptide Library To Interrogate HIV Binding and Entry
title_short Site-Selective Solid-Phase Synthesis of a CCR5 Sulfopeptide Library To Interrogate HIV Binding and Entry
title_sort site-selective solid-phase synthesis of a ccr5 sulfopeptide library to interrogate hiv binding and entry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4168781/
https://www.ncbi.nlm.nih.gov/pubmed/24963694
http://dx.doi.org/10.1021/cb500337r
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