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Peptide exchange on MHC-I by TAPBPR is driven by a negative allostery release cycle

Chaperones TAPBPR and tapasin associate with class-I major histocompatibility complexes (MHC-I) to promote optimization (editing) of peptide cargo. Here, we use solution NMR to investigate the mechanism of peptide exchange. We identify TAPBPR-induced conformational changes on conserved MHC-I molecul...

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Autores principales: McShan, Andrew C., Natarajan, Kannan, Kumirov, Vlad K., Flores-Solis, David, Jiang, Jiansheng, Badstübner, Mareike, Toor, Jugmohit S., Bagshaw, Clive R., Kovrigin, Evgenii L., Margulies, David H., Sgourakis, Nikolaos G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6202177/
https://www.ncbi.nlm.nih.gov/pubmed/29988068
http://dx.doi.org/10.1038/s41589-018-0096-2
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author McShan, Andrew C.
Natarajan, Kannan
Kumirov, Vlad K.
Flores-Solis, David
Jiang, Jiansheng
Badstübner, Mareike
Toor, Jugmohit S.
Bagshaw, Clive R.
Kovrigin, Evgenii L.
Margulies, David H.
Sgourakis, Nikolaos G.
author_facet McShan, Andrew C.
Natarajan, Kannan
Kumirov, Vlad K.
Flores-Solis, David
Jiang, Jiansheng
Badstübner, Mareike
Toor, Jugmohit S.
Bagshaw, Clive R.
Kovrigin, Evgenii L.
Margulies, David H.
Sgourakis, Nikolaos G.
author_sort McShan, Andrew C.
collection PubMed
description Chaperones TAPBPR and tapasin associate with class-I major histocompatibility complexes (MHC-I) to promote optimization (editing) of peptide cargo. Here, we use solution NMR to investigate the mechanism of peptide exchange. We identify TAPBPR-induced conformational changes on conserved MHC-I molecular surfaces, consistent with our independently determined X-ray structure of the complex. Dynamics present in the empty MHC-I are stabilized by TAPBPR, and become progressively dampened with increasing peptide occupancy. Incoming peptides are recognized according to the global stability of the final pMHC-I product, and anneal in a native-like conformation to be edited by TAPBPR. Our results demonstrate an inverse relationship between MHC-I peptide occupancy and TAPBPR binding affinity, where the lifetime and structural features of transiently bound peptides controls the regulation of a conformational switch, located near the TAPBPR binding site, which triggers TAPBPR release. These results suggest a similar mechanism for the function of tapasin in the peptide-loading complex.
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spelling pubmed-62021772019-01-09 Peptide exchange on MHC-I by TAPBPR is driven by a negative allostery release cycle McShan, Andrew C. Natarajan, Kannan Kumirov, Vlad K. Flores-Solis, David Jiang, Jiansheng Badstübner, Mareike Toor, Jugmohit S. Bagshaw, Clive R. Kovrigin, Evgenii L. Margulies, David H. Sgourakis, Nikolaos G. Nat Chem Biol Article Chaperones TAPBPR and tapasin associate with class-I major histocompatibility complexes (MHC-I) to promote optimization (editing) of peptide cargo. Here, we use solution NMR to investigate the mechanism of peptide exchange. We identify TAPBPR-induced conformational changes on conserved MHC-I molecular surfaces, consistent with our independently determined X-ray structure of the complex. Dynamics present in the empty MHC-I are stabilized by TAPBPR, and become progressively dampened with increasing peptide occupancy. Incoming peptides are recognized according to the global stability of the final pMHC-I product, and anneal in a native-like conformation to be edited by TAPBPR. Our results demonstrate an inverse relationship between MHC-I peptide occupancy and TAPBPR binding affinity, where the lifetime and structural features of transiently bound peptides controls the regulation of a conformational switch, located near the TAPBPR binding site, which triggers TAPBPR release. These results suggest a similar mechanism for the function of tapasin in the peptide-loading complex. 2018-07-09 2018-08 /pmc/articles/PMC6202177/ /pubmed/29988068 http://dx.doi.org/10.1038/s41589-018-0096-2 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
McShan, Andrew C.
Natarajan, Kannan
Kumirov, Vlad K.
Flores-Solis, David
Jiang, Jiansheng
Badstübner, Mareike
Toor, Jugmohit S.
Bagshaw, Clive R.
Kovrigin, Evgenii L.
Margulies, David H.
Sgourakis, Nikolaos G.
Peptide exchange on MHC-I by TAPBPR is driven by a negative allostery release cycle
title Peptide exchange on MHC-I by TAPBPR is driven by a negative allostery release cycle
title_full Peptide exchange on MHC-I by TAPBPR is driven by a negative allostery release cycle
title_fullStr Peptide exchange on MHC-I by TAPBPR is driven by a negative allostery release cycle
title_full_unstemmed Peptide exchange on MHC-I by TAPBPR is driven by a negative allostery release cycle
title_short Peptide exchange on MHC-I by TAPBPR is driven by a negative allostery release cycle
title_sort peptide exchange on mhc-i by tapbpr is driven by a negative allostery release cycle
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6202177/
https://www.ncbi.nlm.nih.gov/pubmed/29988068
http://dx.doi.org/10.1038/s41589-018-0096-2
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