Cargando…

Antinociceptive Effects of AGAP, a Recombinant Neurotoxic Polypeptide: Possible Involvement of the Tetrodotoxin-Resistant Sodium Channels in Small Dorsal Root Ganglia Neurons

Antitumor-analgesic peptide (AGAP) is a novel recombinant polypeptide. The primary study showed that AGAP 1.0 mg/kg exhibited strong analgesic and antitumor effects. The tail vein administration of AGAP potently reduced pain behaviors in mice induced by intraplantar injection of formalin or intraper...

Descripción completa

Detalles Bibliográficos
Autores principales: Li, Chun-Li, Liu, Xi-Fang, Li, Gui-Xia, Ban, Meng-qi, Chen, Jian-Zhao, Cui, Yong, Zhang, Jing-Hai, Wu, Chun-Fu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5168466/
https://www.ncbi.nlm.nih.gov/pubmed/28066245
http://dx.doi.org/10.3389/fphar.2016.00496
_version_ 1782483348184104960
author Li, Chun-Li
Liu, Xi-Fang
Li, Gui-Xia
Ban, Meng-qi
Chen, Jian-Zhao
Cui, Yong
Zhang, Jing-Hai
Wu, Chun-Fu
author_facet Li, Chun-Li
Liu, Xi-Fang
Li, Gui-Xia
Ban, Meng-qi
Chen, Jian-Zhao
Cui, Yong
Zhang, Jing-Hai
Wu, Chun-Fu
author_sort Li, Chun-Li
collection PubMed
description Antitumor-analgesic peptide (AGAP) is a novel recombinant polypeptide. The primary study showed that AGAP 1.0 mg/kg exhibited strong analgesic and antitumor effects. The tail vein administration of AGAP potently reduced pain behaviors in mice induced by intraplantar injection of formalin or intraperitoneal injection of acetic acid, without affecting basal pain perception. To further assess the mechanisms of AGAP, the effects of AGAP on sodium channels were assessed using the whole-cell patch clamp recordings in dorsal root ganglia (DRG) neurons. The results showed that AGAP (3–1000 nM) inhibited the sodium currents in small-diameter DRG neurons in a dose-dependent manner. 1000 nM AGAP could inhibit the current density-voltage relationship curve of sodium channels in a voltage-dependent manner and negatively shift the activation curves. 1000 nM AGAP could reduce the tetrodotoxin-resistant (TTX-R) sodium currents by 42.8% in small-diameter DRG neurons. Further analysis revealed that AGAP potently inhibited Na(V)1.8 currents by 59.4%, and negatively shifted the activation and inactivation kinetics. 1000 nM AGAP also reduced the Na(V)1.9 currents by 33.7%, but had no significant effect on activation and inactivation kinetics. Thus, our results demonstrated that submicromolar concentrations of AGAP inhibited TTX-R sodium channel in rat small-diameter DRG neurons. It is concluded that these new results may better explain, at least in part, the analgesic properties of this polypeptide.
format Online
Article
Text
id pubmed-5168466
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-51684662017-01-06 Antinociceptive Effects of AGAP, a Recombinant Neurotoxic Polypeptide: Possible Involvement of the Tetrodotoxin-Resistant Sodium Channels in Small Dorsal Root Ganglia Neurons Li, Chun-Li Liu, Xi-Fang Li, Gui-Xia Ban, Meng-qi Chen, Jian-Zhao Cui, Yong Zhang, Jing-Hai Wu, Chun-Fu Front Pharmacol Pharmacology Antitumor-analgesic peptide (AGAP) is a novel recombinant polypeptide. The primary study showed that AGAP 1.0 mg/kg exhibited strong analgesic and antitumor effects. The tail vein administration of AGAP potently reduced pain behaviors in mice induced by intraplantar injection of formalin or intraperitoneal injection of acetic acid, without affecting basal pain perception. To further assess the mechanisms of AGAP, the effects of AGAP on sodium channels were assessed using the whole-cell patch clamp recordings in dorsal root ganglia (DRG) neurons. The results showed that AGAP (3–1000 nM) inhibited the sodium currents in small-diameter DRG neurons in a dose-dependent manner. 1000 nM AGAP could inhibit the current density-voltage relationship curve of sodium channels in a voltage-dependent manner and negatively shift the activation curves. 1000 nM AGAP could reduce the tetrodotoxin-resistant (TTX-R) sodium currents by 42.8% in small-diameter DRG neurons. Further analysis revealed that AGAP potently inhibited Na(V)1.8 currents by 59.4%, and negatively shifted the activation and inactivation kinetics. 1000 nM AGAP also reduced the Na(V)1.9 currents by 33.7%, but had no significant effect on activation and inactivation kinetics. Thus, our results demonstrated that submicromolar concentrations of AGAP inhibited TTX-R sodium channel in rat small-diameter DRG neurons. It is concluded that these new results may better explain, at least in part, the analgesic properties of this polypeptide. Frontiers Media S.A. 2016-12-20 /pmc/articles/PMC5168466/ /pubmed/28066245 http://dx.doi.org/10.3389/fphar.2016.00496 Text en Copyright © 2016 Li, Liu, Li, Ban, Chen, Cui, Zhang and Wu. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Pharmacology
Li, Chun-Li
Liu, Xi-Fang
Li, Gui-Xia
Ban, Meng-qi
Chen, Jian-Zhao
Cui, Yong
Zhang, Jing-Hai
Wu, Chun-Fu
Antinociceptive Effects of AGAP, a Recombinant Neurotoxic Polypeptide: Possible Involvement of the Tetrodotoxin-Resistant Sodium Channels in Small Dorsal Root Ganglia Neurons
title Antinociceptive Effects of AGAP, a Recombinant Neurotoxic Polypeptide: Possible Involvement of the Tetrodotoxin-Resistant Sodium Channels in Small Dorsal Root Ganglia Neurons
title_full Antinociceptive Effects of AGAP, a Recombinant Neurotoxic Polypeptide: Possible Involvement of the Tetrodotoxin-Resistant Sodium Channels in Small Dorsal Root Ganglia Neurons
title_fullStr Antinociceptive Effects of AGAP, a Recombinant Neurotoxic Polypeptide: Possible Involvement of the Tetrodotoxin-Resistant Sodium Channels in Small Dorsal Root Ganglia Neurons
title_full_unstemmed Antinociceptive Effects of AGAP, a Recombinant Neurotoxic Polypeptide: Possible Involvement of the Tetrodotoxin-Resistant Sodium Channels in Small Dorsal Root Ganglia Neurons
title_short Antinociceptive Effects of AGAP, a Recombinant Neurotoxic Polypeptide: Possible Involvement of the Tetrodotoxin-Resistant Sodium Channels in Small Dorsal Root Ganglia Neurons
title_sort antinociceptive effects of agap, a recombinant neurotoxic polypeptide: possible involvement of the tetrodotoxin-resistant sodium channels in small dorsal root ganglia neurons
topic Pharmacology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5168466/
https://www.ncbi.nlm.nih.gov/pubmed/28066245
http://dx.doi.org/10.3389/fphar.2016.00496
work_keys_str_mv AT lichunli antinociceptiveeffectsofagaparecombinantneurotoxicpolypeptidepossibleinvolvementofthetetrodotoxinresistantsodiumchannelsinsmalldorsalrootganglianeurons
AT liuxifang antinociceptiveeffectsofagaparecombinantneurotoxicpolypeptidepossibleinvolvementofthetetrodotoxinresistantsodiumchannelsinsmalldorsalrootganglianeurons
AT liguixia antinociceptiveeffectsofagaparecombinantneurotoxicpolypeptidepossibleinvolvementofthetetrodotoxinresistantsodiumchannelsinsmalldorsalrootganglianeurons
AT banmengqi antinociceptiveeffectsofagaparecombinantneurotoxicpolypeptidepossibleinvolvementofthetetrodotoxinresistantsodiumchannelsinsmalldorsalrootganglianeurons
AT chenjianzhao antinociceptiveeffectsofagaparecombinantneurotoxicpolypeptidepossibleinvolvementofthetetrodotoxinresistantsodiumchannelsinsmalldorsalrootganglianeurons
AT cuiyong antinociceptiveeffectsofagaparecombinantneurotoxicpolypeptidepossibleinvolvementofthetetrodotoxinresistantsodiumchannelsinsmalldorsalrootganglianeurons
AT zhangjinghai antinociceptiveeffectsofagaparecombinantneurotoxicpolypeptidepossibleinvolvementofthetetrodotoxinresistantsodiumchannelsinsmalldorsalrootganglianeurons
AT wuchunfu antinociceptiveeffectsofagaparecombinantneurotoxicpolypeptidepossibleinvolvementofthetetrodotoxinresistantsodiumchannelsinsmalldorsalrootganglianeurons