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Intestinal Gel-Forming Mucins Polymerize by Disulfide-Mediated Dimerization of D3 Domains

The mucin 2 glycoprotein assembles into a complex hydrogel that protects intestinal epithelia and houses the gut microbiome. A major step in mucin 2 assembly is further multimerization of preformed mucin dimers, thought to produce a honeycomb-like arrangement upon hydrogel expansion. Important open...

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Autores principales: Javitt, Gabriel, Calvo, María Luisa Gómez, Albert, Lis, Reznik, Nava, Ilani, Tal, Diskin, Ron, Fass, Deborah
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6739602/
https://www.ncbi.nlm.nih.gov/pubmed/31310764
http://dx.doi.org/10.1016/j.jmb.2019.07.018
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author Javitt, Gabriel
Calvo, María Luisa Gómez
Albert, Lis
Reznik, Nava
Ilani, Tal
Diskin, Ron
Fass, Deborah
author_facet Javitt, Gabriel
Calvo, María Luisa Gómez
Albert, Lis
Reznik, Nava
Ilani, Tal
Diskin, Ron
Fass, Deborah
author_sort Javitt, Gabriel
collection PubMed
description The mucin 2 glycoprotein assembles into a complex hydrogel that protects intestinal epithelia and houses the gut microbiome. A major step in mucin 2 assembly is further multimerization of preformed mucin dimers, thought to produce a honeycomb-like arrangement upon hydrogel expansion. Important open questions are how multiple mucin 2 dimers become covalently linked to one another and how mucin 2 multimerization compares with analogous processes in related polymers such as respiratory tract mucins and the hemostasis protein von Willebrand factor. Here we report the x-ray crystal structure of the mucin 2 multimerization module, found to form a dimer linked by two intersubunit disulfide bonds. The dimer structure calls into question the current model for intestinal mucin assembly, which proposes disulfide-mediated trimerization of the same module. Key residues making interactions across the dimer interface are highly conserved in intestinal mucin orthologs, supporting the physiological relevance of the observed quaternary structure. With knowledge of the interface residues, it can be demonstrated that many of these amino acids are also present in other mucins and in von Willebrand factor, further indicating that the stable dimer arrangement reported herein is likely to be shared across this functionally broad protein family. The mucin 2 module structure thus reveals the manner by which both mucins and von Willebrand factor polymerize, drawing deep structural parallels between macromolecular assemblies critical to mucosal epithelia and the vasculature.
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spelling pubmed-67396022019-09-16 Intestinal Gel-Forming Mucins Polymerize by Disulfide-Mediated Dimerization of D3 Domains Javitt, Gabriel Calvo, María Luisa Gómez Albert, Lis Reznik, Nava Ilani, Tal Diskin, Ron Fass, Deborah J Mol Biol Article The mucin 2 glycoprotein assembles into a complex hydrogel that protects intestinal epithelia and houses the gut microbiome. A major step in mucin 2 assembly is further multimerization of preformed mucin dimers, thought to produce a honeycomb-like arrangement upon hydrogel expansion. Important open questions are how multiple mucin 2 dimers become covalently linked to one another and how mucin 2 multimerization compares with analogous processes in related polymers such as respiratory tract mucins and the hemostasis protein von Willebrand factor. Here we report the x-ray crystal structure of the mucin 2 multimerization module, found to form a dimer linked by two intersubunit disulfide bonds. The dimer structure calls into question the current model for intestinal mucin assembly, which proposes disulfide-mediated trimerization of the same module. Key residues making interactions across the dimer interface are highly conserved in intestinal mucin orthologs, supporting the physiological relevance of the observed quaternary structure. With knowledge of the interface residues, it can be demonstrated that many of these amino acids are also present in other mucins and in von Willebrand factor, further indicating that the stable dimer arrangement reported herein is likely to be shared across this functionally broad protein family. The mucin 2 module structure thus reveals the manner by which both mucins and von Willebrand factor polymerize, drawing deep structural parallels between macromolecular assemblies critical to mucosal epithelia and the vasculature. Elsevier 2019-09-06 /pmc/articles/PMC6739602/ /pubmed/31310764 http://dx.doi.org/10.1016/j.jmb.2019.07.018 Text en © 2019 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Javitt, Gabriel
Calvo, María Luisa Gómez
Albert, Lis
Reznik, Nava
Ilani, Tal
Diskin, Ron
Fass, Deborah
Intestinal Gel-Forming Mucins Polymerize by Disulfide-Mediated Dimerization of D3 Domains
title Intestinal Gel-Forming Mucins Polymerize by Disulfide-Mediated Dimerization of D3 Domains
title_full Intestinal Gel-Forming Mucins Polymerize by Disulfide-Mediated Dimerization of D3 Domains
title_fullStr Intestinal Gel-Forming Mucins Polymerize by Disulfide-Mediated Dimerization of D3 Domains
title_full_unstemmed Intestinal Gel-Forming Mucins Polymerize by Disulfide-Mediated Dimerization of D3 Domains
title_short Intestinal Gel-Forming Mucins Polymerize by Disulfide-Mediated Dimerization of D3 Domains
title_sort intestinal gel-forming mucins polymerize by disulfide-mediated dimerization of d3 domains
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6739602/
https://www.ncbi.nlm.nih.gov/pubmed/31310764
http://dx.doi.org/10.1016/j.jmb.2019.07.018
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