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Complex Structure of Engineered Modular Domains Defining Molecular Interaction between ICAM-1 and Integrin LFA-1

Intermolecular contacts between integrin LFA-1 (α(L)β(2)) and ICAM-1 derive solely from the integrin α(L) I domain and the first domain (D1) of ICAM-1. This study presents a crystal structure of the engineered complex of the α(L) I domain and ICAM-1 D1. Previously, we engineered the I domain for hig...

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Autores principales: Kang, Sungkwon, Kim, Chae Un, Gu, Xiaoling, Owens, Roisin M., van Rijn, Sarah J., Boonyaleepun, Vanissra, Mao, Yuxin, Springer, Timothy A., Jin, Moonsoo M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3431320/
https://www.ncbi.nlm.nih.gov/pubmed/22956999
http://dx.doi.org/10.1371/journal.pone.0044124
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author Kang, Sungkwon
Kim, Chae Un
Gu, Xiaoling
Owens, Roisin M.
van Rijn, Sarah J.
Boonyaleepun, Vanissra
Mao, Yuxin
Springer, Timothy A.
Jin, Moonsoo M.
author_facet Kang, Sungkwon
Kim, Chae Un
Gu, Xiaoling
Owens, Roisin M.
van Rijn, Sarah J.
Boonyaleepun, Vanissra
Mao, Yuxin
Springer, Timothy A.
Jin, Moonsoo M.
author_sort Kang, Sungkwon
collection PubMed
description Intermolecular contacts between integrin LFA-1 (α(L)β(2)) and ICAM-1 derive solely from the integrin α(L) I domain and the first domain (D1) of ICAM-1. This study presents a crystal structure of the engineered complex of the α(L) I domain and ICAM-1 D1. Previously, we engineered the I domain for high affinity by point mutations that were identified by a directed evolution approach. In order to examine α(L) I domain allostery between the C-terminal α7-helix (allosteric site) and the metal-ion dependent adhesion site (active site), we have chosen a high affinity variant without mutations directly influencing either the position of the α7-helix or the active sites. In our crystal, the α(L) I domain was found to have a high affinity conformation to D1 with its α7-helix displaced downward away from the binding interface, recapitulating a current understanding of the allostery in the I domain and its linkage to neighboring domains of integrins in signaling. To enable soluble D1 of ICAM-1 to fold on its own, we also engineered D1 to be functional by mutations, which were found to be those that would convert hydrogen bond networks in the solvent-excluded core into vdW contacts. The backbone structure of the β-sandwich fold and the epitope for I domain binding of the engineered D1 were essentially identical to those of wild-type D1. Most deviations in engineered D1 were found in the loops at the N-terminal region that interacts with human rhinovirus (HRV). Structural deviation found in engineered D1 was overall in agreement with the function of engineered D1 observed previously, i.e., full capacity binding to α(L) I domain but reduced interaction with HRV.
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spelling pubmed-34313202012-09-06 Complex Structure of Engineered Modular Domains Defining Molecular Interaction between ICAM-1 and Integrin LFA-1 Kang, Sungkwon Kim, Chae Un Gu, Xiaoling Owens, Roisin M. van Rijn, Sarah J. Boonyaleepun, Vanissra Mao, Yuxin Springer, Timothy A. Jin, Moonsoo M. PLoS One Research Article Intermolecular contacts between integrin LFA-1 (α(L)β(2)) and ICAM-1 derive solely from the integrin α(L) I domain and the first domain (D1) of ICAM-1. This study presents a crystal structure of the engineered complex of the α(L) I domain and ICAM-1 D1. Previously, we engineered the I domain for high affinity by point mutations that were identified by a directed evolution approach. In order to examine α(L) I domain allostery between the C-terminal α7-helix (allosteric site) and the metal-ion dependent adhesion site (active site), we have chosen a high affinity variant without mutations directly influencing either the position of the α7-helix or the active sites. In our crystal, the α(L) I domain was found to have a high affinity conformation to D1 with its α7-helix displaced downward away from the binding interface, recapitulating a current understanding of the allostery in the I domain and its linkage to neighboring domains of integrins in signaling. To enable soluble D1 of ICAM-1 to fold on its own, we also engineered D1 to be functional by mutations, which were found to be those that would convert hydrogen bond networks in the solvent-excluded core into vdW contacts. The backbone structure of the β-sandwich fold and the epitope for I domain binding of the engineered D1 were essentially identical to those of wild-type D1. Most deviations in engineered D1 were found in the loops at the N-terminal region that interacts with human rhinovirus (HRV). Structural deviation found in engineered D1 was overall in agreement with the function of engineered D1 observed previously, i.e., full capacity binding to α(L) I domain but reduced interaction with HRV. Public Library of Science 2012-08-30 /pmc/articles/PMC3431320/ /pubmed/22956999 http://dx.doi.org/10.1371/journal.pone.0044124 Text en © 2012 Kang 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
Kang, Sungkwon
Kim, Chae Un
Gu, Xiaoling
Owens, Roisin M.
van Rijn, Sarah J.
Boonyaleepun, Vanissra
Mao, Yuxin
Springer, Timothy A.
Jin, Moonsoo M.
Complex Structure of Engineered Modular Domains Defining Molecular Interaction between ICAM-1 and Integrin LFA-1
title Complex Structure of Engineered Modular Domains Defining Molecular Interaction between ICAM-1 and Integrin LFA-1
title_full Complex Structure of Engineered Modular Domains Defining Molecular Interaction between ICAM-1 and Integrin LFA-1
title_fullStr Complex Structure of Engineered Modular Domains Defining Molecular Interaction between ICAM-1 and Integrin LFA-1
title_full_unstemmed Complex Structure of Engineered Modular Domains Defining Molecular Interaction between ICAM-1 and Integrin LFA-1
title_short Complex Structure of Engineered Modular Domains Defining Molecular Interaction between ICAM-1 and Integrin LFA-1
title_sort complex structure of engineered modular domains defining molecular interaction between icam-1 and integrin lfa-1
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3431320/
https://www.ncbi.nlm.nih.gov/pubmed/22956999
http://dx.doi.org/10.1371/journal.pone.0044124
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