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Chemical Synthesis, Proper Folding, Na(v) Channel Selectivity Profile and Analgesic Properties of the Spider Peptide Phlotoxin 1

Phlotoxin-1 (PhlTx1) is a peptide previously identified in tarantula venom (Phlogius species) that belongs to the inhibitory cysteine-knot (ICK) toxin family. Like many ICK-based spider toxins, the synthesis of PhlTx1 appears particularly challenging, mostly for obtaining appropriate folding and con...

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Autores principales: Nicolas, Sébastien, Zoukimian, Claude, Bosmans, Frank, Montnach, Jérôme, Diochot, Sylvie, Cuypers, Eva, De Waard, Stephan, Béroud, Rémy, Mebs, Dietrich, Craik, David, Boturyn, Didier, Lazdunski, Michel, Tytgat, Jan, De Waard, Michel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6628435/
https://www.ncbi.nlm.nih.gov/pubmed/31234412
http://dx.doi.org/10.3390/toxins11060367
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author Nicolas, Sébastien
Zoukimian, Claude
Bosmans, Frank
Montnach, Jérôme
Diochot, Sylvie
Cuypers, Eva
De Waard, Stephan
Béroud, Rémy
Mebs, Dietrich
Craik, David
Boturyn, Didier
Lazdunski, Michel
Tytgat, Jan
De Waard, Michel
author_facet Nicolas, Sébastien
Zoukimian, Claude
Bosmans, Frank
Montnach, Jérôme
Diochot, Sylvie
Cuypers, Eva
De Waard, Stephan
Béroud, Rémy
Mebs, Dietrich
Craik, David
Boturyn, Didier
Lazdunski, Michel
Tytgat, Jan
De Waard, Michel
author_sort Nicolas, Sébastien
collection PubMed
description Phlotoxin-1 (PhlTx1) is a peptide previously identified in tarantula venom (Phlogius species) that belongs to the inhibitory cysteine-knot (ICK) toxin family. Like many ICK-based spider toxins, the synthesis of PhlTx1 appears particularly challenging, mostly for obtaining appropriate folding and concomitant suitable disulfide bridge formation. Herein, we describe a procedure for the chemical synthesis and the directed sequential disulfide bridge formation of PhlTx1 that allows for a straightforward production of this challenging peptide. We also performed extensive functional testing of PhlTx1 on 31 ion channel types and identified the voltage-gated sodium (Na(v)) channel Na(v)1.7 as the main target of this toxin. Moreover, we compared PhlTx1 activity to 10 other spider toxin activities on an automated patch-clamp system with Chinese Hamster Ovary (CHO) cells expressing human Na(v)1.7. Performing these analyses in reproducible conditions allowed for classification according to the potency of the best natural Na(v)1.7 peptide blockers. Finally, subsequent in vivo testing revealed that intrathecal injection of PhlTx1 reduces the response of mice to formalin in both the acute pain and inflammation phase without signs of neurotoxicity. PhlTx1 is thus an interesting toxin to investigate Na(v)1.7 involvement in cellular excitability and pain.
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spelling pubmed-66284352019-07-23 Chemical Synthesis, Proper Folding, Na(v) Channel Selectivity Profile and Analgesic Properties of the Spider Peptide Phlotoxin 1 Nicolas, Sébastien Zoukimian, Claude Bosmans, Frank Montnach, Jérôme Diochot, Sylvie Cuypers, Eva De Waard, Stephan Béroud, Rémy Mebs, Dietrich Craik, David Boturyn, Didier Lazdunski, Michel Tytgat, Jan De Waard, Michel Toxins (Basel) Article Phlotoxin-1 (PhlTx1) is a peptide previously identified in tarantula venom (Phlogius species) that belongs to the inhibitory cysteine-knot (ICK) toxin family. Like many ICK-based spider toxins, the synthesis of PhlTx1 appears particularly challenging, mostly for obtaining appropriate folding and concomitant suitable disulfide bridge formation. Herein, we describe a procedure for the chemical synthesis and the directed sequential disulfide bridge formation of PhlTx1 that allows for a straightforward production of this challenging peptide. We also performed extensive functional testing of PhlTx1 on 31 ion channel types and identified the voltage-gated sodium (Na(v)) channel Na(v)1.7 as the main target of this toxin. Moreover, we compared PhlTx1 activity to 10 other spider toxin activities on an automated patch-clamp system with Chinese Hamster Ovary (CHO) cells expressing human Na(v)1.7. Performing these analyses in reproducible conditions allowed for classification according to the potency of the best natural Na(v)1.7 peptide blockers. Finally, subsequent in vivo testing revealed that intrathecal injection of PhlTx1 reduces the response of mice to formalin in both the acute pain and inflammation phase without signs of neurotoxicity. PhlTx1 is thus an interesting toxin to investigate Na(v)1.7 involvement in cellular excitability and pain. MDPI 2019-06-21 /pmc/articles/PMC6628435/ /pubmed/31234412 http://dx.doi.org/10.3390/toxins11060367 Text en © 2019 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
Nicolas, Sébastien
Zoukimian, Claude
Bosmans, Frank
Montnach, Jérôme
Diochot, Sylvie
Cuypers, Eva
De Waard, Stephan
Béroud, Rémy
Mebs, Dietrich
Craik, David
Boturyn, Didier
Lazdunski, Michel
Tytgat, Jan
De Waard, Michel
Chemical Synthesis, Proper Folding, Na(v) Channel Selectivity Profile and Analgesic Properties of the Spider Peptide Phlotoxin 1
title Chemical Synthesis, Proper Folding, Na(v) Channel Selectivity Profile and Analgesic Properties of the Spider Peptide Phlotoxin 1
title_full Chemical Synthesis, Proper Folding, Na(v) Channel Selectivity Profile and Analgesic Properties of the Spider Peptide Phlotoxin 1
title_fullStr Chemical Synthesis, Proper Folding, Na(v) Channel Selectivity Profile and Analgesic Properties of the Spider Peptide Phlotoxin 1
title_full_unstemmed Chemical Synthesis, Proper Folding, Na(v) Channel Selectivity Profile and Analgesic Properties of the Spider Peptide Phlotoxin 1
title_short Chemical Synthesis, Proper Folding, Na(v) Channel Selectivity Profile and Analgesic Properties of the Spider Peptide Phlotoxin 1
title_sort chemical synthesis, proper folding, na(v) channel selectivity profile and analgesic properties of the spider peptide phlotoxin 1
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6628435/
https://www.ncbi.nlm.nih.gov/pubmed/31234412
http://dx.doi.org/10.3390/toxins11060367
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