Cargando…

Synthesis and Analgesic Effects of μ-TRTX-Hhn1b on Models of Inflammatory and Neuropathic Pain

μ-TRTX-Hhn1b (HNTX-IV) is a 35-amino acid peptide isolated from the venom of the spider, Ornithoctonus hainana. It inhibits voltage-gated sodium channel Nav1.7, which has been considered as a therapeutic target for pain. The goal of the present study is to elucidate the analgesic effects of syntheti...

Descripción completa

Detalles Bibliográficos
Autores principales: Liu, Yu, Tang, Jianguang, Zhang, Yunxiao, Xun, Xiaohong, Tang, Dongfang, Peng, Dezheng, Yi, Jianming, Liu, Zhonghua, Shi, Xiaoliu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4147587/
https://www.ncbi.nlm.nih.gov/pubmed/25123556
http://dx.doi.org/10.3390/toxins6082363
_version_ 1782332478289084416
author Liu, Yu
Tang, Jianguang
Zhang, Yunxiao
Xun, Xiaohong
Tang, Dongfang
Peng, Dezheng
Yi, Jianming
Liu, Zhonghua
Shi, Xiaoliu
author_facet Liu, Yu
Tang, Jianguang
Zhang, Yunxiao
Xun, Xiaohong
Tang, Dongfang
Peng, Dezheng
Yi, Jianming
Liu, Zhonghua
Shi, Xiaoliu
author_sort Liu, Yu
collection PubMed
description μ-TRTX-Hhn1b (HNTX-IV) is a 35-amino acid peptide isolated from the venom of the spider, Ornithoctonus hainana. It inhibits voltage-gated sodium channel Nav1.7, which has been considered as a therapeutic target for pain. The goal of the present study is to elucidate the analgesic effects of synthetic μ-TRTX-Hhn1b on animal models of pain. The peptide was first synthesized and then successfully refolded/oxidized. The synthetic peptide had the same inhibitory effect on human Nav1.7 current transiently expressed in HEK 293 cells as the native toxin. Furthermore, the analgesic potentials of the synthetic peptide were examined on models of inflammatory pain and neuropathic pain. μ-TRTX-Hhn1b produced an efficient reversal of acute nociceptive pain in the abdominal constriction model, and significantly reduced the pain scores over the 40-min period in the formalin model. The efficiency of μ-TRTX-Hhn1b on both models was equivalent to that of morphine. In the spinal nerve model, the reversal effect of μ-TRTX-Hhn1b on allodynia was longer and higher than mexiletine. These results demonstrated that μ-TRTX-Hhn1b efficiently alleviated acute inflammatory pain and chronic neuropathic pain in animals and provided an attractive template for further clinical analgesic drug design.
format Online
Article
Text
id pubmed-4147587
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-41475872014-08-28 Synthesis and Analgesic Effects of μ-TRTX-Hhn1b on Models of Inflammatory and Neuropathic Pain Liu, Yu Tang, Jianguang Zhang, Yunxiao Xun, Xiaohong Tang, Dongfang Peng, Dezheng Yi, Jianming Liu, Zhonghua Shi, Xiaoliu Toxins (Basel) Article μ-TRTX-Hhn1b (HNTX-IV) is a 35-amino acid peptide isolated from the venom of the spider, Ornithoctonus hainana. It inhibits voltage-gated sodium channel Nav1.7, which has been considered as a therapeutic target for pain. The goal of the present study is to elucidate the analgesic effects of synthetic μ-TRTX-Hhn1b on animal models of pain. The peptide was first synthesized and then successfully refolded/oxidized. The synthetic peptide had the same inhibitory effect on human Nav1.7 current transiently expressed in HEK 293 cells as the native toxin. Furthermore, the analgesic potentials of the synthetic peptide were examined on models of inflammatory pain and neuropathic pain. μ-TRTX-Hhn1b produced an efficient reversal of acute nociceptive pain in the abdominal constriction model, and significantly reduced the pain scores over the 40-min period in the formalin model. The efficiency of μ-TRTX-Hhn1b on both models was equivalent to that of morphine. In the spinal nerve model, the reversal effect of μ-TRTX-Hhn1b on allodynia was longer and higher than mexiletine. These results demonstrated that μ-TRTX-Hhn1b efficiently alleviated acute inflammatory pain and chronic neuropathic pain in animals and provided an attractive template for further clinical analgesic drug design. MDPI 2014-08-13 /pmc/articles/PMC4147587/ /pubmed/25123556 http://dx.doi.org/10.3390/toxins6082363 Text en © 2014 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 license (http://creativecommons.org/licenses/by/3.0/).
spellingShingle Article
Liu, Yu
Tang, Jianguang
Zhang, Yunxiao
Xun, Xiaohong
Tang, Dongfang
Peng, Dezheng
Yi, Jianming
Liu, Zhonghua
Shi, Xiaoliu
Synthesis and Analgesic Effects of μ-TRTX-Hhn1b on Models of Inflammatory and Neuropathic Pain
title Synthesis and Analgesic Effects of μ-TRTX-Hhn1b on Models of Inflammatory and Neuropathic Pain
title_full Synthesis and Analgesic Effects of μ-TRTX-Hhn1b on Models of Inflammatory and Neuropathic Pain
title_fullStr Synthesis and Analgesic Effects of μ-TRTX-Hhn1b on Models of Inflammatory and Neuropathic Pain
title_full_unstemmed Synthesis and Analgesic Effects of μ-TRTX-Hhn1b on Models of Inflammatory and Neuropathic Pain
title_short Synthesis and Analgesic Effects of μ-TRTX-Hhn1b on Models of Inflammatory and Neuropathic Pain
title_sort synthesis and analgesic effects of μ-trtx-hhn1b on models of inflammatory and neuropathic pain
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4147587/
https://www.ncbi.nlm.nih.gov/pubmed/25123556
http://dx.doi.org/10.3390/toxins6082363
work_keys_str_mv AT liuyu synthesisandanalgesiceffectsofmtrtxhhn1bonmodelsofinflammatoryandneuropathicpain
AT tangjianguang synthesisandanalgesiceffectsofmtrtxhhn1bonmodelsofinflammatoryandneuropathicpain
AT zhangyunxiao synthesisandanalgesiceffectsofmtrtxhhn1bonmodelsofinflammatoryandneuropathicpain
AT xunxiaohong synthesisandanalgesiceffectsofmtrtxhhn1bonmodelsofinflammatoryandneuropathicpain
AT tangdongfang synthesisandanalgesiceffectsofmtrtxhhn1bonmodelsofinflammatoryandneuropathicpain
AT pengdezheng synthesisandanalgesiceffectsofmtrtxhhn1bonmodelsofinflammatoryandneuropathicpain
AT yijianming synthesisandanalgesiceffectsofmtrtxhhn1bonmodelsofinflammatoryandneuropathicpain
AT liuzhonghua synthesisandanalgesiceffectsofmtrtxhhn1bonmodelsofinflammatoryandneuropathicpain
AT shixiaoliu synthesisandanalgesiceffectsofmtrtxhhn1bonmodelsofinflammatoryandneuropathicpain