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Chemical Synthesis of a Functional Fluorescent-Tagged α-Bungarotoxin

α-bungarotoxin is a large, 74 amino acid toxin containing five disulphide bridges, initially identified in the venom of Bungarus multicinctus snake. Like most large toxins, chemical synthesis of α-bungarotoxin is challenging, explaining why all previous reports use purified or recombinant α-bungarot...

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Autores principales: Brun, Oliver, Zoukimian, Claude, Oliveira-Mendes, Barbara, Montnach, Jérôme, Lauzier, Benjamin, Ronjat, Michel, Béroud, Rémy, Lesage, Frédéric, Boturyn, Didier, De Waard, Michel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8879871/
https://www.ncbi.nlm.nih.gov/pubmed/35202107
http://dx.doi.org/10.3390/toxins14020079
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author Brun, Oliver
Zoukimian, Claude
Oliveira-Mendes, Barbara
Montnach, Jérôme
Lauzier, Benjamin
Ronjat, Michel
Béroud, Rémy
Lesage, Frédéric
Boturyn, Didier
De Waard, Michel
author_facet Brun, Oliver
Zoukimian, Claude
Oliveira-Mendes, Barbara
Montnach, Jérôme
Lauzier, Benjamin
Ronjat, Michel
Béroud, Rémy
Lesage, Frédéric
Boturyn, Didier
De Waard, Michel
author_sort Brun, Oliver
collection PubMed
description α-bungarotoxin is a large, 74 amino acid toxin containing five disulphide bridges, initially identified in the venom of Bungarus multicinctus snake. Like most large toxins, chemical synthesis of α-bungarotoxin is challenging, explaining why all previous reports use purified or recombinant α-bungarotoxin. However, only chemical synthesis allows easy insertion of non-natural amino acids or new chemical functionalities. Herein, we describe a procedure for the chemical synthesis of a fluorescent-tagged α-bungarotoxin. The full-length peptide was designed to include an alkyne function at the amino-terminus through the addition of a pentynoic acid linker. Chemical synthesis of α-bungarotoxin requires hydrazide-based coupling of three peptide fragments in successive steps. After completion of the oxidative folding, an azide-modified Cy5 fluorophore was coupled by click chemistry onto the toxin. Next, we determined the efficacy of the fluorescent-tagged α-bungarotoxin to block acetylcholine (ACh)-mediated currents in response to muscle nicotinic receptor activation in TE671 cells. Using automated patch-clamp recordings, we demonstrate that fluorescent synthetic α-bungarotoxin has the expected nanomolar affinity for the nicotinic receptor. The blocking effect of fluorescent α-bungarotoxin could be displaced by incubation with a 20-mer peptide mimicking the α-bungarotoxin binding site. In addition, TE671 cells could be labelled with fluorescent toxin, as witnessed by confocal microscopy, and this labelling was partially displaced by the 20-mer competitive peptide. We thus demonstrate that synthetic fluorescent-tagged α-bungarotoxin preserves excellent properties for binding onto muscle nicotinic receptors.
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spelling pubmed-88798712022-02-26 Chemical Synthesis of a Functional Fluorescent-Tagged α-Bungarotoxin Brun, Oliver Zoukimian, Claude Oliveira-Mendes, Barbara Montnach, Jérôme Lauzier, Benjamin Ronjat, Michel Béroud, Rémy Lesage, Frédéric Boturyn, Didier De Waard, Michel Toxins (Basel) Article α-bungarotoxin is a large, 74 amino acid toxin containing five disulphide bridges, initially identified in the venom of Bungarus multicinctus snake. Like most large toxins, chemical synthesis of α-bungarotoxin is challenging, explaining why all previous reports use purified or recombinant α-bungarotoxin. However, only chemical synthesis allows easy insertion of non-natural amino acids or new chemical functionalities. Herein, we describe a procedure for the chemical synthesis of a fluorescent-tagged α-bungarotoxin. The full-length peptide was designed to include an alkyne function at the amino-terminus through the addition of a pentynoic acid linker. Chemical synthesis of α-bungarotoxin requires hydrazide-based coupling of three peptide fragments in successive steps. After completion of the oxidative folding, an azide-modified Cy5 fluorophore was coupled by click chemistry onto the toxin. Next, we determined the efficacy of the fluorescent-tagged α-bungarotoxin to block acetylcholine (ACh)-mediated currents in response to muscle nicotinic receptor activation in TE671 cells. Using automated patch-clamp recordings, we demonstrate that fluorescent synthetic α-bungarotoxin has the expected nanomolar affinity for the nicotinic receptor. The blocking effect of fluorescent α-bungarotoxin could be displaced by incubation with a 20-mer peptide mimicking the α-bungarotoxin binding site. In addition, TE671 cells could be labelled with fluorescent toxin, as witnessed by confocal microscopy, and this labelling was partially displaced by the 20-mer competitive peptide. We thus demonstrate that synthetic fluorescent-tagged α-bungarotoxin preserves excellent properties for binding onto muscle nicotinic receptors. MDPI 2022-01-21 /pmc/articles/PMC8879871/ /pubmed/35202107 http://dx.doi.org/10.3390/toxins14020079 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Brun, Oliver
Zoukimian, Claude
Oliveira-Mendes, Barbara
Montnach, Jérôme
Lauzier, Benjamin
Ronjat, Michel
Béroud, Rémy
Lesage, Frédéric
Boturyn, Didier
De Waard, Michel
Chemical Synthesis of a Functional Fluorescent-Tagged α-Bungarotoxin
title Chemical Synthesis of a Functional Fluorescent-Tagged α-Bungarotoxin
title_full Chemical Synthesis of a Functional Fluorescent-Tagged α-Bungarotoxin
title_fullStr Chemical Synthesis of a Functional Fluorescent-Tagged α-Bungarotoxin
title_full_unstemmed Chemical Synthesis of a Functional Fluorescent-Tagged α-Bungarotoxin
title_short Chemical Synthesis of a Functional Fluorescent-Tagged α-Bungarotoxin
title_sort chemical synthesis of a functional fluorescent-tagged α-bungarotoxin
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8879871/
https://www.ncbi.nlm.nih.gov/pubmed/35202107
http://dx.doi.org/10.3390/toxins14020079
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