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TRPV1 activation power can switch an action mode for its polypeptide ligands

TRPV1 (vanilloid) receptors are activated by different types of stimuli including capsaicin, acidification and heat. Various ligands demonstrate stimulus-dependent action on TRPV1. In the present work we studied the action of polypeptides isolated from sea anemone Heteractis crispa (APHC1, APHC2 and...

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Autores principales: Nikolaev, Maxim V., Dorofeeva, Natalia A., Komarova, Margarita S., Korolkova, Yuliya V., Andreev, Yaroslav A., Mosharova, Irina V., Grishin, Eugene V., Tikhonov, Denis B., Kozlov, Sergey A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5419573/
https://www.ncbi.nlm.nih.gov/pubmed/28475608
http://dx.doi.org/10.1371/journal.pone.0177077
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author Nikolaev, Maxim V.
Dorofeeva, Natalia A.
Komarova, Margarita S.
Korolkova, Yuliya V.
Andreev, Yaroslav A.
Mosharova, Irina V.
Grishin, Eugene V.
Tikhonov, Denis B.
Kozlov, Sergey A.
author_facet Nikolaev, Maxim V.
Dorofeeva, Natalia A.
Komarova, Margarita S.
Korolkova, Yuliya V.
Andreev, Yaroslav A.
Mosharova, Irina V.
Grishin, Eugene V.
Tikhonov, Denis B.
Kozlov, Sergey A.
author_sort Nikolaev, Maxim V.
collection PubMed
description TRPV1 (vanilloid) receptors are activated by different types of stimuli including capsaicin, acidification and heat. Various ligands demonstrate stimulus-dependent action on TRPV1. In the present work we studied the action of polypeptides isolated from sea anemone Heteractis crispa (APHC1, APHC2 and APHC3) on rat TRPV1 receptors stably expressed in CHO cells using electrophysiological recordings, fluorescent Ca(2+) measurements and molecular modeling. The APHCs potentiated TRPV1 responses to low (3–300 nM) concentrations of capsaicin but inhibited responses to high (>3.0 μM) concentrations. The activity-dependent action was also found for TRPV1 responses to 2APB and acidification. Thus the action mode of APHCs is bimodal and depended on the activation stimuli strength—potentiation of low-amplitude responses and no effect/inhibition of high-amplitude responses. The double-gate model of TRPV1 activation suggests that APHC-polypeptides may stabilize an intermediate state during the receptor activation. Molecular modeling revealed putative binding site at the outer loops of TRPV1. Binding to this site can directly affect activation by protons and can be allosterically coupled with capsaicin site. The results are important for further investigations of both TRPV1 and its ligands for potential therapeutic use.
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spelling pubmed-54195732017-05-14 TRPV1 activation power can switch an action mode for its polypeptide ligands Nikolaev, Maxim V. Dorofeeva, Natalia A. Komarova, Margarita S. Korolkova, Yuliya V. Andreev, Yaroslav A. Mosharova, Irina V. Grishin, Eugene V. Tikhonov, Denis B. Kozlov, Sergey A. PLoS One Research Article TRPV1 (vanilloid) receptors are activated by different types of stimuli including capsaicin, acidification and heat. Various ligands demonstrate stimulus-dependent action on TRPV1. In the present work we studied the action of polypeptides isolated from sea anemone Heteractis crispa (APHC1, APHC2 and APHC3) on rat TRPV1 receptors stably expressed in CHO cells using electrophysiological recordings, fluorescent Ca(2+) measurements and molecular modeling. The APHCs potentiated TRPV1 responses to low (3–300 nM) concentrations of capsaicin but inhibited responses to high (>3.0 μM) concentrations. The activity-dependent action was also found for TRPV1 responses to 2APB and acidification. Thus the action mode of APHCs is bimodal and depended on the activation stimuli strength—potentiation of low-amplitude responses and no effect/inhibition of high-amplitude responses. The double-gate model of TRPV1 activation suggests that APHC-polypeptides may stabilize an intermediate state during the receptor activation. Molecular modeling revealed putative binding site at the outer loops of TRPV1. Binding to this site can directly affect activation by protons and can be allosterically coupled with capsaicin site. The results are important for further investigations of both TRPV1 and its ligands for potential therapeutic use. Public Library of Science 2017-05-05 /pmc/articles/PMC5419573/ /pubmed/28475608 http://dx.doi.org/10.1371/journal.pone.0177077 Text en © 2017 Nikolaev 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Nikolaev, Maxim V.
Dorofeeva, Natalia A.
Komarova, Margarita S.
Korolkova, Yuliya V.
Andreev, Yaroslav A.
Mosharova, Irina V.
Grishin, Eugene V.
Tikhonov, Denis B.
Kozlov, Sergey A.
TRPV1 activation power can switch an action mode for its polypeptide ligands
title TRPV1 activation power can switch an action mode for its polypeptide ligands
title_full TRPV1 activation power can switch an action mode for its polypeptide ligands
title_fullStr TRPV1 activation power can switch an action mode for its polypeptide ligands
title_full_unstemmed TRPV1 activation power can switch an action mode for its polypeptide ligands
title_short TRPV1 activation power can switch an action mode for its polypeptide ligands
title_sort trpv1 activation power can switch an action mode for its polypeptide ligands
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5419573/
https://www.ncbi.nlm.nih.gov/pubmed/28475608
http://dx.doi.org/10.1371/journal.pone.0177077
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