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Evaluation of Chemical Strategies for Improving the Stability and Oral Toxicity of Insecticidal Peptides

Spider venoms are a rich source of insecticidal peptide toxins. Their development as bioinsecticides has, however, been hampered due to concerns about potential lack of stability and oral bioactivity. We therefore systematically evaluated several synthetic strategies to increase the stability and or...

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Autores principales: Herzig, Volker, de Araujo, Aline Dantas, Greenwood, Kathryn P., Chin, Yanni K.-Y., Windley, Monique J., Chong, Youmie, Muttenthaler, Markus, Mobli, Mehdi, Audsley, Neil, Nicholson, Graham M., Alewood, Paul F., King, Glenn F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6164231/
https://www.ncbi.nlm.nih.gov/pubmed/30154370
http://dx.doi.org/10.3390/biomedicines6030090
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author Herzig, Volker
de Araujo, Aline Dantas
Greenwood, Kathryn P.
Chin, Yanni K.-Y.
Windley, Monique J.
Chong, Youmie
Muttenthaler, Markus
Mobli, Mehdi
Audsley, Neil
Nicholson, Graham M.
Alewood, Paul F.
King, Glenn F.
author_facet Herzig, Volker
de Araujo, Aline Dantas
Greenwood, Kathryn P.
Chin, Yanni K.-Y.
Windley, Monique J.
Chong, Youmie
Muttenthaler, Markus
Mobli, Mehdi
Audsley, Neil
Nicholson, Graham M.
Alewood, Paul F.
King, Glenn F.
author_sort Herzig, Volker
collection PubMed
description Spider venoms are a rich source of insecticidal peptide toxins. Their development as bioinsecticides has, however, been hampered due to concerns about potential lack of stability and oral bioactivity. We therefore systematically evaluated several synthetic strategies to increase the stability and oral potency of the potent insecticidal spider-venom peptide ω-HXTX-Hv1a (Hv1a). Selective chemical replacement of disulfide bridges with diselenide bonds and N- to C-terminal cyclization were anticipated to improve Hv1a resistance to proteolytic digestion, and thereby its activity when delivered orally. We found that native Hv1a is orally active in blowflies, but 91-fold less potent than when administered by injection. Introduction of a single diselenide bond had no effect on the susceptibility to scrambling or the oral activity of Hv1a. N- to C-terminal cyclization of the peptide backbone did not significantly improve the potency of Hv1a when injected into blowflies and it led to a significant decrease in oral activity. We show that this is likely due to a dramatically reduced rate of translocation of cyclic Hv1a across the insect midgut, highlighting the importance of testing bioavailability in addition to toxin stability.
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spelling pubmed-61642312018-10-11 Evaluation of Chemical Strategies for Improving the Stability and Oral Toxicity of Insecticidal Peptides Herzig, Volker de Araujo, Aline Dantas Greenwood, Kathryn P. Chin, Yanni K.-Y. Windley, Monique J. Chong, Youmie Muttenthaler, Markus Mobli, Mehdi Audsley, Neil Nicholson, Graham M. Alewood, Paul F. King, Glenn F. Biomedicines Article Spider venoms are a rich source of insecticidal peptide toxins. Their development as bioinsecticides has, however, been hampered due to concerns about potential lack of stability and oral bioactivity. We therefore systematically evaluated several synthetic strategies to increase the stability and oral potency of the potent insecticidal spider-venom peptide ω-HXTX-Hv1a (Hv1a). Selective chemical replacement of disulfide bridges with diselenide bonds and N- to C-terminal cyclization were anticipated to improve Hv1a resistance to proteolytic digestion, and thereby its activity when delivered orally. We found that native Hv1a is orally active in blowflies, but 91-fold less potent than when administered by injection. Introduction of a single diselenide bond had no effect on the susceptibility to scrambling or the oral activity of Hv1a. N- to C-terminal cyclization of the peptide backbone did not significantly improve the potency of Hv1a when injected into blowflies and it led to a significant decrease in oral activity. We show that this is likely due to a dramatically reduced rate of translocation of cyclic Hv1a across the insect midgut, highlighting the importance of testing bioavailability in addition to toxin stability. MDPI 2018-08-28 /pmc/articles/PMC6164231/ /pubmed/30154370 http://dx.doi.org/10.3390/biomedicines6030090 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
Herzig, Volker
de Araujo, Aline Dantas
Greenwood, Kathryn P.
Chin, Yanni K.-Y.
Windley, Monique J.
Chong, Youmie
Muttenthaler, Markus
Mobli, Mehdi
Audsley, Neil
Nicholson, Graham M.
Alewood, Paul F.
King, Glenn F.
Evaluation of Chemical Strategies for Improving the Stability and Oral Toxicity of Insecticidal Peptides
title Evaluation of Chemical Strategies for Improving the Stability and Oral Toxicity of Insecticidal Peptides
title_full Evaluation of Chemical Strategies for Improving the Stability and Oral Toxicity of Insecticidal Peptides
title_fullStr Evaluation of Chemical Strategies for Improving the Stability and Oral Toxicity of Insecticidal Peptides
title_full_unstemmed Evaluation of Chemical Strategies for Improving the Stability and Oral Toxicity of Insecticidal Peptides
title_short Evaluation of Chemical Strategies for Improving the Stability and Oral Toxicity of Insecticidal Peptides
title_sort evaluation of chemical strategies for improving the stability and oral toxicity of insecticidal peptides
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6164231/
https://www.ncbi.nlm.nih.gov/pubmed/30154370
http://dx.doi.org/10.3390/biomedicines6030090
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