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An engineered scorpion toxin analogue with improved Kv1.3 selectivity displays reduced conformational flexibility

The voltage-gated Kv1.3 K(+) channel plays a key role in the activation of T lymphocytes. Kv1.3 blockers selectively suppress immune responses mediated by effector memory T cells, which indicates the great potential of selective Kv1.3 inhibitors in the therapy of certain autoimmune diseases. Anuroct...

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Autores principales: Bartok, Adam, Fehér, Krisztina, Bodor, Andrea, Rákosi, Kinga, Tóth, Gábor K., Kövér, Katalin E., Panyi, Gyorgy, Varga, Zoltan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4686915/
https://www.ncbi.nlm.nih.gov/pubmed/26689143
http://dx.doi.org/10.1038/srep18397
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author Bartok, Adam
Fehér, Krisztina
Bodor, Andrea
Rákosi, Kinga
Tóth, Gábor K.
Kövér, Katalin E.
Panyi, Gyorgy
Varga, Zoltan
author_facet Bartok, Adam
Fehér, Krisztina
Bodor, Andrea
Rákosi, Kinga
Tóth, Gábor K.
Kövér, Katalin E.
Panyi, Gyorgy
Varga, Zoltan
author_sort Bartok, Adam
collection PubMed
description The voltage-gated Kv1.3 K(+) channel plays a key role in the activation of T lymphocytes. Kv1.3 blockers selectively suppress immune responses mediated by effector memory T cells, which indicates the great potential of selective Kv1.3 inhibitors in the therapy of certain autoimmune diseases. Anuroctoxin (AnTx), a 35-amino-acid scorpion toxin is a high affinity blocker of Kv1.3, but also blocks Kv1.2 with similar potency. We designed and produced three AnTx variants: ([F32T]-AnTx, [N17A]-AnTx, [N17A/F32T]-AnTx) using solid-phase synthesis with the goal of improving the selectivity of the toxin for Kv1.3 over Kv1.2 while keeping the high affinity for Kv1.3. We used the patch-clamp technique to determine the blocking potency of the synthetic toxins on hKv1.3, mKv1.1, hKv1.2 and hKCa3.1 channels. Of the three variants [N17A/F32T]-AnTx maintained the high affinity of the natural peptide for Kv1.3 but became more than 16000-fold selective over Kv1.2. NMR data and molecular dynamics simulations suggest that the more rigid structure with restricted conformational space of the double substituted toxin compared to the flexible wild-type one is an important determinant of toxin selectivity. Our results provide the foundation for the possibility of the production and future therapeutic application of additional, even more selective toxins targeting various ion channels.
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spelling pubmed-46869152015-12-31 An engineered scorpion toxin analogue with improved Kv1.3 selectivity displays reduced conformational flexibility Bartok, Adam Fehér, Krisztina Bodor, Andrea Rákosi, Kinga Tóth, Gábor K. Kövér, Katalin E. Panyi, Gyorgy Varga, Zoltan Sci Rep Article The voltage-gated Kv1.3 K(+) channel plays a key role in the activation of T lymphocytes. Kv1.3 blockers selectively suppress immune responses mediated by effector memory T cells, which indicates the great potential of selective Kv1.3 inhibitors in the therapy of certain autoimmune diseases. Anuroctoxin (AnTx), a 35-amino-acid scorpion toxin is a high affinity blocker of Kv1.3, but also blocks Kv1.2 with similar potency. We designed and produced three AnTx variants: ([F32T]-AnTx, [N17A]-AnTx, [N17A/F32T]-AnTx) using solid-phase synthesis with the goal of improving the selectivity of the toxin for Kv1.3 over Kv1.2 while keeping the high affinity for Kv1.3. We used the patch-clamp technique to determine the blocking potency of the synthetic toxins on hKv1.3, mKv1.1, hKv1.2 and hKCa3.1 channels. Of the three variants [N17A/F32T]-AnTx maintained the high affinity of the natural peptide for Kv1.3 but became more than 16000-fold selective over Kv1.2. NMR data and molecular dynamics simulations suggest that the more rigid structure with restricted conformational space of the double substituted toxin compared to the flexible wild-type one is an important determinant of toxin selectivity. Our results provide the foundation for the possibility of the production and future therapeutic application of additional, even more selective toxins targeting various ion channels. Nature Publishing Group 2015-12-22 /pmc/articles/PMC4686915/ /pubmed/26689143 http://dx.doi.org/10.1038/srep18397 Text en Copyright © 2015, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Bartok, Adam
Fehér, Krisztina
Bodor, Andrea
Rákosi, Kinga
Tóth, Gábor K.
Kövér, Katalin E.
Panyi, Gyorgy
Varga, Zoltan
An engineered scorpion toxin analogue with improved Kv1.3 selectivity displays reduced conformational flexibility
title An engineered scorpion toxin analogue with improved Kv1.3 selectivity displays reduced conformational flexibility
title_full An engineered scorpion toxin analogue with improved Kv1.3 selectivity displays reduced conformational flexibility
title_fullStr An engineered scorpion toxin analogue with improved Kv1.3 selectivity displays reduced conformational flexibility
title_full_unstemmed An engineered scorpion toxin analogue with improved Kv1.3 selectivity displays reduced conformational flexibility
title_short An engineered scorpion toxin analogue with improved Kv1.3 selectivity displays reduced conformational flexibility
title_sort engineered scorpion toxin analogue with improved kv1.3 selectivity displays reduced conformational flexibility
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4686915/
https://www.ncbi.nlm.nih.gov/pubmed/26689143
http://dx.doi.org/10.1038/srep18397
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