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Epitope Mapping for Monoclonal Antibody Reveals the Activation Mechanism for αVβ3 Integrin

Epitopes for a panel of anti-αVβ3 monoclonal antibodies (mAbs) were investigated to explore the activation mechanism of αVβ3 integrin. Experiments utilizing αV/αIIb domain-swapping chimeras revealed that among the nine mAbs tested, five recognized the ligand-binding β-propeller domain and four recog...

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Autores principales: Kamata, Tetsuji, Handa, Makoto, Takakuwa, Sonomi, Sato, Yukiko, Kawai, Yohko, Ikeda, Yasuo, Aiso, Sadakazu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3688720/
https://www.ncbi.nlm.nih.gov/pubmed/23840404
http://dx.doi.org/10.1371/journal.pone.0066096
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author Kamata, Tetsuji
Handa, Makoto
Takakuwa, Sonomi
Sato, Yukiko
Kawai, Yohko
Ikeda, Yasuo
Aiso, Sadakazu
author_facet Kamata, Tetsuji
Handa, Makoto
Takakuwa, Sonomi
Sato, Yukiko
Kawai, Yohko
Ikeda, Yasuo
Aiso, Sadakazu
author_sort Kamata, Tetsuji
collection PubMed
description Epitopes for a panel of anti-αVβ3 monoclonal antibodies (mAbs) were investigated to explore the activation mechanism of αVβ3 integrin. Experiments utilizing αV/αIIb domain-swapping chimeras revealed that among the nine mAbs tested, five recognized the ligand-binding β-propeller domain and four recognized the thigh domain, which is the upper leg of the αV chain. Interestingly, the four mAbs included function-blocking as well as non-functional mAbs, although they bound at a distance from the ligand-binding site. The epitopes for these four mAbs were further determined using human-to-mouse αV chimeras. Among the four, P3G8 recognized an amino acid residue, Ser-528, located on the side of the thigh domain, while AMF-7, M9, and P2W7 all recognized a common epitope, Ser-462, that was located close to the α-genu, where integrin makes a sharp bend in the crystal structure. Fibrinogen binding studies for cells expressing wild-type αVβ3 confirmed that AMF-7, M9, and P2W7 were inhibitory, while P3G8 was non-functional. However, these mAbs were all unable to block binding when αVβ3 was constrained in its extended conformation. These results suggest that AMF-7, M9, and P2W7 block ligand binding allosterically by stabilizing the angle of the bend in the bent conformation. Thus, a switchblade-like movement of the integrin leg is indispensable for the affinity regulation of αVβ3 integrin.
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spelling pubmed-36887202013-07-09 Epitope Mapping for Monoclonal Antibody Reveals the Activation Mechanism for αVβ3 Integrin Kamata, Tetsuji Handa, Makoto Takakuwa, Sonomi Sato, Yukiko Kawai, Yohko Ikeda, Yasuo Aiso, Sadakazu PLoS One Research Article Epitopes for a panel of anti-αVβ3 monoclonal antibodies (mAbs) were investigated to explore the activation mechanism of αVβ3 integrin. Experiments utilizing αV/αIIb domain-swapping chimeras revealed that among the nine mAbs tested, five recognized the ligand-binding β-propeller domain and four recognized the thigh domain, which is the upper leg of the αV chain. Interestingly, the four mAbs included function-blocking as well as non-functional mAbs, although they bound at a distance from the ligand-binding site. The epitopes for these four mAbs were further determined using human-to-mouse αV chimeras. Among the four, P3G8 recognized an amino acid residue, Ser-528, located on the side of the thigh domain, while AMF-7, M9, and P2W7 all recognized a common epitope, Ser-462, that was located close to the α-genu, where integrin makes a sharp bend in the crystal structure. Fibrinogen binding studies for cells expressing wild-type αVβ3 confirmed that AMF-7, M9, and P2W7 were inhibitory, while P3G8 was non-functional. However, these mAbs were all unable to block binding when αVβ3 was constrained in its extended conformation. These results suggest that AMF-7, M9, and P2W7 block ligand binding allosterically by stabilizing the angle of the bend in the bent conformation. Thus, a switchblade-like movement of the integrin leg is indispensable for the affinity regulation of αVβ3 integrin. Public Library of Science 2013-06-20 /pmc/articles/PMC3688720/ /pubmed/23840404 http://dx.doi.org/10.1371/journal.pone.0066096 Text en © 2013 Kamata et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Kamata, Tetsuji
Handa, Makoto
Takakuwa, Sonomi
Sato, Yukiko
Kawai, Yohko
Ikeda, Yasuo
Aiso, Sadakazu
Epitope Mapping for Monoclonal Antibody Reveals the Activation Mechanism for αVβ3 Integrin
title Epitope Mapping for Monoclonal Antibody Reveals the Activation Mechanism for αVβ3 Integrin
title_full Epitope Mapping for Monoclonal Antibody Reveals the Activation Mechanism for αVβ3 Integrin
title_fullStr Epitope Mapping for Monoclonal Antibody Reveals the Activation Mechanism for αVβ3 Integrin
title_full_unstemmed Epitope Mapping for Monoclonal Antibody Reveals the Activation Mechanism for αVβ3 Integrin
title_short Epitope Mapping for Monoclonal Antibody Reveals the Activation Mechanism for αVβ3 Integrin
title_sort epitope mapping for monoclonal antibody reveals the activation mechanism for αvβ3 integrin
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3688720/
https://www.ncbi.nlm.nih.gov/pubmed/23840404
http://dx.doi.org/10.1371/journal.pone.0066096
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