A highly conserved sequence of the viral TAP inhibitor ICP47 is required for freezing of the peptide transport cycle

Abstract The transporter associated with antigen processing (TAP) translocates antigenic peptides into the endoplasmic reticulum (ER) lumen for loading onto MHC class I molecules. This is a key step in the control of viral infections through CD8+ T-cells. The herpes simplex virus type-1 encodes an 8...

Descripción completa

Guardado en:
Detalles Bibliográficos
Autores principales: Tony Matschulla, Richard Berry, Carolin Gerke, Marius Döring, Julia Busch, Jennifer Paijo, Ulrich Kalinke, Frank Momburg, Hartmut Hengel, Anne Halenius
Formato: article
Lenguaje:EN
Publicado: Nature Portfolio 2017
Materias:
R
Q
Acceso en línea:https://doaj.org/article/d8467302d44249fdb0099d71445a063d
Etiquetas: Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
id oai:doaj.org-article:d8467302d44249fdb0099d71445a063d
record_format dspace
spelling oai:doaj.org-article:d8467302d44249fdb0099d71445a063d2021-12-02T16:06:22ZA highly conserved sequence of the viral TAP inhibitor ICP47 is required for freezing of the peptide transport cycle10.1038/s41598-017-02994-52045-2322https://doaj.org/article/d8467302d44249fdb0099d71445a063d2017-06-01T00:00:00Zhttps://doi.org/10.1038/s41598-017-02994-5https://doaj.org/toc/2045-2322Abstract The transporter associated with antigen processing (TAP) translocates antigenic peptides into the endoplasmic reticulum (ER) lumen for loading onto MHC class I molecules. This is a key step in the control of viral infections through CD8+ T-cells. The herpes simplex virus type-1 encodes an 88 amino acid long species-specific TAP inhibitor, ICP47, that functions as a high affinity competitor for the peptide binding site on TAP. It has previously been suggested that the inhibitory function of ICP47 resides within the N-terminal region (residues 1–35). Here we show that mutation of the highly conserved 50PLL52 motif within the central region of ICP47 attenuates its inhibitory capacity. Taking advantage of the human cytomegalovirus-encoded TAP inhibitor US6 as a luminal sensor for conformational changes of TAP, we demonstrated that the 50PLL52 motif is essential for freezing of the TAP conformation. Moreover, hierarchical functional interaction sites on TAP dependent on 50PLL52 could be defined using a comprehensive set of human-rat TAP chimeras. This data broadens our understanding of the molecular mechanism underpinning TAP inhibition by ICP47, to include the 50PLL52 sequence as a stabilizer that tethers the TAP-ICP47 complex in an inward-facing conformation.Tony MatschullaRichard BerryCarolin GerkeMarius DöringJulia BuschJennifer PaijoUlrich KalinkeFrank MomburgHartmut HengelAnne HaleniusNature PortfolioarticleMedicineRScienceQENScientific Reports, Vol 7, Iss 1, Pp 1-13 (2017)
institution DOAJ
collection DOAJ
language EN
topic Medicine
R
Science
Q
spellingShingle Medicine
R
Science
Q
Tony Matschulla
Richard Berry
Carolin Gerke
Marius Döring
Julia Busch
Jennifer Paijo
Ulrich Kalinke
Frank Momburg
Hartmut Hengel
Anne Halenius
A highly conserved sequence of the viral TAP inhibitor ICP47 is required for freezing of the peptide transport cycle
description Abstract The transporter associated with antigen processing (TAP) translocates antigenic peptides into the endoplasmic reticulum (ER) lumen for loading onto MHC class I molecules. This is a key step in the control of viral infections through CD8+ T-cells. The herpes simplex virus type-1 encodes an 88 amino acid long species-specific TAP inhibitor, ICP47, that functions as a high affinity competitor for the peptide binding site on TAP. It has previously been suggested that the inhibitory function of ICP47 resides within the N-terminal region (residues 1–35). Here we show that mutation of the highly conserved 50PLL52 motif within the central region of ICP47 attenuates its inhibitory capacity. Taking advantage of the human cytomegalovirus-encoded TAP inhibitor US6 as a luminal sensor for conformational changes of TAP, we demonstrated that the 50PLL52 motif is essential for freezing of the TAP conformation. Moreover, hierarchical functional interaction sites on TAP dependent on 50PLL52 could be defined using a comprehensive set of human-rat TAP chimeras. This data broadens our understanding of the molecular mechanism underpinning TAP inhibition by ICP47, to include the 50PLL52 sequence as a stabilizer that tethers the TAP-ICP47 complex in an inward-facing conformation.
format article
author Tony Matschulla
Richard Berry
Carolin Gerke
Marius Döring
Julia Busch
Jennifer Paijo
Ulrich Kalinke
Frank Momburg
Hartmut Hengel
Anne Halenius
author_facet Tony Matschulla
Richard Berry
Carolin Gerke
Marius Döring
Julia Busch
Jennifer Paijo
Ulrich Kalinke
Frank Momburg
Hartmut Hengel
Anne Halenius
author_sort Tony Matschulla
title A highly conserved sequence of the viral TAP inhibitor ICP47 is required for freezing of the peptide transport cycle
title_short A highly conserved sequence of the viral TAP inhibitor ICP47 is required for freezing of the peptide transport cycle
title_full A highly conserved sequence of the viral TAP inhibitor ICP47 is required for freezing of the peptide transport cycle
title_fullStr A highly conserved sequence of the viral TAP inhibitor ICP47 is required for freezing of the peptide transport cycle
title_full_unstemmed A highly conserved sequence of the viral TAP inhibitor ICP47 is required for freezing of the peptide transport cycle
title_sort highly conserved sequence of the viral tap inhibitor icp47 is required for freezing of the peptide transport cycle
publisher Nature Portfolio
publishDate 2017
url https://doaj.org/article/d8467302d44249fdb0099d71445a063d
work_keys_str_mv AT tonymatschulla ahighlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT richardberry ahighlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT carolingerke ahighlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT mariusdoring ahighlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT juliabusch ahighlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT jenniferpaijo ahighlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT ulrichkalinke ahighlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT frankmomburg ahighlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT hartmuthengel ahighlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT annehalenius ahighlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT tonymatschulla highlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT richardberry highlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT carolingerke highlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT mariusdoring highlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT juliabusch highlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT jenniferpaijo highlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT ulrichkalinke highlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT frankmomburg highlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT hartmuthengel highlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
AT annehalenius highlyconservedsequenceoftheviraltapinhibitoricp47isrequiredforfreezingofthepeptidetransportcycle
_version_ 1718385057691860992