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Engineering of Three-Finger Fold Toxins Creates Ligands with Original Pharmacological Profiles for Muscarinic and Adrenergic Receptors

Protein engineering approaches are often a combination of rational design and directed evolution using display technologies. Here, we test “loop grafting,” a rational design method, on three-finger fold proteins. These small reticulated proteins have exceptional affinity and specificity for their di...

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Autores principales: Fruchart-Gaillard, Carole, Mourier, Gilles, Blanchet, Guillaume, Vera, Laura, Gilles, Nicolas, Ménez, Renée, Marcon, Elodie, Stura, Enrico A., Servent, Denis
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3375269/
https://www.ncbi.nlm.nih.gov/pubmed/22720062
http://dx.doi.org/10.1371/journal.pone.0039166
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author Fruchart-Gaillard, Carole
Mourier, Gilles
Blanchet, Guillaume
Vera, Laura
Gilles, Nicolas
Ménez, Renée
Marcon, Elodie
Stura, Enrico A.
Servent, Denis
author_facet Fruchart-Gaillard, Carole
Mourier, Gilles
Blanchet, Guillaume
Vera, Laura
Gilles, Nicolas
Ménez, Renée
Marcon, Elodie
Stura, Enrico A.
Servent, Denis
author_sort Fruchart-Gaillard, Carole
collection PubMed
description Protein engineering approaches are often a combination of rational design and directed evolution using display technologies. Here, we test “loop grafting,” a rational design method, on three-finger fold proteins. These small reticulated proteins have exceptional affinity and specificity for their diverse molecular targets, display protease-resistance, and are highly stable and poorly immunogenic. The wealth of structural knowledge makes them good candidates for protein engineering of new functionality. Our goal is to enhance the efficacy of these mini-proteins by modifying their pharmacological properties in order to extend their use in imaging, diagnostics and therapeutic applications. Using the interaction of three-finger fold toxins with muscarinic and adrenergic receptors as a model, chimeric toxins have been engineered by substituting loops on toxin MT7 by those from toxin MT1. The pharmacological impact of these grafts was examined using binding experiments on muscarinic receptors M1 and M4 and on the α(1A)-adrenoceptor. Some of the designed chimeric proteins have impressive gain of function on certain receptor subtypes achieving an original selectivity profile with high affinity for muscarinic receptor M1 and α(1A)-adrenoceptor. Structure-function analysis supported by crystallographic data for MT1 and two chimeras permits a molecular based interpretation of these gains and details the merits of this protein engineering technique. The results obtained shed light on how loop permutation can be used to design new three-finger proteins with original pharmacological profiles.
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spelling pubmed-33752692012-06-20 Engineering of Three-Finger Fold Toxins Creates Ligands with Original Pharmacological Profiles for Muscarinic and Adrenergic Receptors Fruchart-Gaillard, Carole Mourier, Gilles Blanchet, Guillaume Vera, Laura Gilles, Nicolas Ménez, Renée Marcon, Elodie Stura, Enrico A. Servent, Denis PLoS One Research Article Protein engineering approaches are often a combination of rational design and directed evolution using display technologies. Here, we test “loop grafting,” a rational design method, on three-finger fold proteins. These small reticulated proteins have exceptional affinity and specificity for their diverse molecular targets, display protease-resistance, and are highly stable and poorly immunogenic. The wealth of structural knowledge makes them good candidates for protein engineering of new functionality. Our goal is to enhance the efficacy of these mini-proteins by modifying their pharmacological properties in order to extend their use in imaging, diagnostics and therapeutic applications. Using the interaction of three-finger fold toxins with muscarinic and adrenergic receptors as a model, chimeric toxins have been engineered by substituting loops on toxin MT7 by those from toxin MT1. The pharmacological impact of these grafts was examined using binding experiments on muscarinic receptors M1 and M4 and on the α(1A)-adrenoceptor. Some of the designed chimeric proteins have impressive gain of function on certain receptor subtypes achieving an original selectivity profile with high affinity for muscarinic receptor M1 and α(1A)-adrenoceptor. Structure-function analysis supported by crystallographic data for MT1 and two chimeras permits a molecular based interpretation of these gains and details the merits of this protein engineering technique. The results obtained shed light on how loop permutation can be used to design new three-finger proteins with original pharmacological profiles. Public Library of Science 2012-06-14 /pmc/articles/PMC3375269/ /pubmed/22720062 http://dx.doi.org/10.1371/journal.pone.0039166 Text en Fruchart-Gaillard 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
Fruchart-Gaillard, Carole
Mourier, Gilles
Blanchet, Guillaume
Vera, Laura
Gilles, Nicolas
Ménez, Renée
Marcon, Elodie
Stura, Enrico A.
Servent, Denis
Engineering of Three-Finger Fold Toxins Creates Ligands with Original Pharmacological Profiles for Muscarinic and Adrenergic Receptors
title Engineering of Three-Finger Fold Toxins Creates Ligands with Original Pharmacological Profiles for Muscarinic and Adrenergic Receptors
title_full Engineering of Three-Finger Fold Toxins Creates Ligands with Original Pharmacological Profiles for Muscarinic and Adrenergic Receptors
title_fullStr Engineering of Three-Finger Fold Toxins Creates Ligands with Original Pharmacological Profiles for Muscarinic and Adrenergic Receptors
title_full_unstemmed Engineering of Three-Finger Fold Toxins Creates Ligands with Original Pharmacological Profiles for Muscarinic and Adrenergic Receptors
title_short Engineering of Three-Finger Fold Toxins Creates Ligands with Original Pharmacological Profiles for Muscarinic and Adrenergic Receptors
title_sort engineering of three-finger fold toxins creates ligands with original pharmacological profiles for muscarinic and adrenergic receptors
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3375269/
https://www.ncbi.nlm.nih.gov/pubmed/22720062
http://dx.doi.org/10.1371/journal.pone.0039166
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