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A Novel Integrated Way for Deciphering the Glycan Code for the FimH Lectin

The fimbrial lectin FimH from uro- and enteropathogenic Escherichia coli binds with nanomolar affinity to oligomannose glycans exposing Manα1,3Man dimannosides at their non-reducing end, but only with micromolar affinities to Manα1,2Man dimannosides. These two dimannoses play a significantly distinc...

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Autores principales: Dumych, Tetiana, Bridot, Clarisse, Gouin, Sébastien G., Lensink, Marc F., Paryzhak, Solomiya, Szunerits, Sabine, Blossey, Ralf, Bilyy, Rostyslav, Bouckaert, Julie, Krammer, Eva-Maria
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6278545/
https://www.ncbi.nlm.nih.gov/pubmed/30373288
http://dx.doi.org/10.3390/molecules23112794
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author Dumych, Tetiana
Bridot, Clarisse
Gouin, Sébastien G.
Lensink, Marc F.
Paryzhak, Solomiya
Szunerits, Sabine
Blossey, Ralf
Bilyy, Rostyslav
Bouckaert, Julie
Krammer, Eva-Maria
author_facet Dumych, Tetiana
Bridot, Clarisse
Gouin, Sébastien G.
Lensink, Marc F.
Paryzhak, Solomiya
Szunerits, Sabine
Blossey, Ralf
Bilyy, Rostyslav
Bouckaert, Julie
Krammer, Eva-Maria
author_sort Dumych, Tetiana
collection PubMed
description The fimbrial lectin FimH from uro- and enteropathogenic Escherichia coli binds with nanomolar affinity to oligomannose glycans exposing Manα1,3Man dimannosides at their non-reducing end, but only with micromolar affinities to Manα1,2Man dimannosides. These two dimannoses play a significantly distinct role in infection by E. coli. Manα1,2Man has been described early on as shielding the (Manα1,3Man) glycan that is more relevant to strong bacterial adhesion and invasion. We quantified the binding of the two dimannoses (Manα1,2Man and Manα1,3Man to FimH using ELLSA and isothermal microcalorimetry and calculated probabilities of binding modes using molecular dynamics simulations. Our experimentally and computationally determined binding energies confirm a higher affinity of FimH towards the dimannose Manα1,3Man. Manα1,2Man displays a much lower binding enthalpy combined with a high entropic gain. Most remarkably, our molecular dynamics simulations indicate that Manα1,2Man cannot easily take its major conformer from water into the FimH binding site and that FimH is interacting with two very different conformers of Manα1,2Man that occupy 42% and 28% respectively of conformational space. The finding that Manα1,2Man binding to FimH is unstable agrees with the earlier suggestion that E. coli may use the Manα1,2Man epitope for transient tethering along cell surfaces in order to enhance dispersion of the infection.
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spelling pubmed-62785452018-12-13 A Novel Integrated Way for Deciphering the Glycan Code for the FimH Lectin Dumych, Tetiana Bridot, Clarisse Gouin, Sébastien G. Lensink, Marc F. Paryzhak, Solomiya Szunerits, Sabine Blossey, Ralf Bilyy, Rostyslav Bouckaert, Julie Krammer, Eva-Maria Molecules Article The fimbrial lectin FimH from uro- and enteropathogenic Escherichia coli binds with nanomolar affinity to oligomannose glycans exposing Manα1,3Man dimannosides at their non-reducing end, but only with micromolar affinities to Manα1,2Man dimannosides. These two dimannoses play a significantly distinct role in infection by E. coli. Manα1,2Man has been described early on as shielding the (Manα1,3Man) glycan that is more relevant to strong bacterial adhesion and invasion. We quantified the binding of the two dimannoses (Manα1,2Man and Manα1,3Man to FimH using ELLSA and isothermal microcalorimetry and calculated probabilities of binding modes using molecular dynamics simulations. Our experimentally and computationally determined binding energies confirm a higher affinity of FimH towards the dimannose Manα1,3Man. Manα1,2Man displays a much lower binding enthalpy combined with a high entropic gain. Most remarkably, our molecular dynamics simulations indicate that Manα1,2Man cannot easily take its major conformer from water into the FimH binding site and that FimH is interacting with two very different conformers of Manα1,2Man that occupy 42% and 28% respectively of conformational space. The finding that Manα1,2Man binding to FimH is unstable agrees with the earlier suggestion that E. coli may use the Manα1,2Man epitope for transient tethering along cell surfaces in order to enhance dispersion of the infection. MDPI 2018-10-28 /pmc/articles/PMC6278545/ /pubmed/30373288 http://dx.doi.org/10.3390/molecules23112794 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Dumych, Tetiana
Bridot, Clarisse
Gouin, Sébastien G.
Lensink, Marc F.
Paryzhak, Solomiya
Szunerits, Sabine
Blossey, Ralf
Bilyy, Rostyslav
Bouckaert, Julie
Krammer, Eva-Maria
A Novel Integrated Way for Deciphering the Glycan Code for the FimH Lectin
title A Novel Integrated Way for Deciphering the Glycan Code for the FimH Lectin
title_full A Novel Integrated Way for Deciphering the Glycan Code for the FimH Lectin
title_fullStr A Novel Integrated Way for Deciphering the Glycan Code for the FimH Lectin
title_full_unstemmed A Novel Integrated Way for Deciphering the Glycan Code for the FimH Lectin
title_short A Novel Integrated Way for Deciphering the Glycan Code for the FimH Lectin
title_sort novel integrated way for deciphering the glycan code for the fimh lectin
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6278545/
https://www.ncbi.nlm.nih.gov/pubmed/30373288
http://dx.doi.org/10.3390/molecules23112794
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