Cargando…

A heteromeric Texas coral snake toxin targets acid-sensing ion channels to produce pain

Natural products that elicit discomfort or pain represent invaluable tools for probing molecular mechanisms underlying pain sensation(1). Plant-derived irritants have predominated in this regard, but animal venoms have also evolved to avert predators by targeting neurons and receptors whose activati...

Descripción completa

Detalles Bibliográficos
Autores principales: Bohlen, Christopher J., Chesler, Alexander T., Sharif-Naeini, Reza, Medzihradszky, Katalin F., Zhou, Sharleen, King, David, Sánchez, Elda E., Burlingame, Alma L., Basbaum, Allan I., Julius, David
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3226747/
https://www.ncbi.nlm.nih.gov/pubmed/22094702
http://dx.doi.org/10.1038/nature10607
_version_ 1782217673176776704
author Bohlen, Christopher J.
Chesler, Alexander T.
Sharif-Naeini, Reza
Medzihradszky, Katalin F.
Zhou, Sharleen
King, David
Sánchez, Elda E.
Burlingame, Alma L.
Basbaum, Allan I.
Julius, David
author_facet Bohlen, Christopher J.
Chesler, Alexander T.
Sharif-Naeini, Reza
Medzihradszky, Katalin F.
Zhou, Sharleen
King, David
Sánchez, Elda E.
Burlingame, Alma L.
Basbaum, Allan I.
Julius, David
author_sort Bohlen, Christopher J.
collection PubMed
description Natural products that elicit discomfort or pain represent invaluable tools for probing molecular mechanisms underlying pain sensation(1). Plant-derived irritants have predominated in this regard, but animal venoms have also evolved to avert predators by targeting neurons and receptors whose activation produces noxious sensations(2-6). As such, venoms provide a rich and varied source of small molecule and protein pharmacophores(7,8) that can be exploited to characterize and manipulate key components of the pain-signaling pathway. With this in mind, we carried out an unbiased in vitro screen to identify snake venoms capable of activating somatosensory neurons. Venom from the Texas coral snake (Micrurus tener tener), whose bite produces intense and unremitting pain(9), excited a large cohort of sensory neurons. The purified active species (MitTx) consists of a heteromeric complex between Kunitz- and phospholipase A2-like proteins that together function as a potent, persistent, and selective agonist for acid-sensing ion channels (ASICs), showing equal or greater efficacy when compared with acidic pH. MitTx is highly selective for the ASIC1 subtype at neutral pH; under more acidic conditions (pH < 6.5), MitTx massively potentiates (>100-fold) proton-evoked activation of ASIC2a channels. These observations raise the possibility that ASIC channels function as coincidence detectors for extracellular protons and other, as yet unidentified, endogenous factors. Purified MitTx elicits robust pain-related behavior in mice via activation of ASIC1 channels on capsaicin-sensitive nerve fibers. These findings reveal a mechanism whereby snake venoms produce pain, and highlight an unexpected contribution of ASIC1 channels to nociception.
format Online
Article
Text
id pubmed-3226747
institution National Center for Biotechnology Information
language English
publishDate 2011
record_format MEDLINE/PubMed
spelling pubmed-32267472012-05-17 A heteromeric Texas coral snake toxin targets acid-sensing ion channels to produce pain Bohlen, Christopher J. Chesler, Alexander T. Sharif-Naeini, Reza Medzihradszky, Katalin F. Zhou, Sharleen King, David Sánchez, Elda E. Burlingame, Alma L. Basbaum, Allan I. Julius, David Nature Article Natural products that elicit discomfort or pain represent invaluable tools for probing molecular mechanisms underlying pain sensation(1). Plant-derived irritants have predominated in this regard, but animal venoms have also evolved to avert predators by targeting neurons and receptors whose activation produces noxious sensations(2-6). As such, venoms provide a rich and varied source of small molecule and protein pharmacophores(7,8) that can be exploited to characterize and manipulate key components of the pain-signaling pathway. With this in mind, we carried out an unbiased in vitro screen to identify snake venoms capable of activating somatosensory neurons. Venom from the Texas coral snake (Micrurus tener tener), whose bite produces intense and unremitting pain(9), excited a large cohort of sensory neurons. The purified active species (MitTx) consists of a heteromeric complex between Kunitz- and phospholipase A2-like proteins that together function as a potent, persistent, and selective agonist for acid-sensing ion channels (ASICs), showing equal or greater efficacy when compared with acidic pH. MitTx is highly selective for the ASIC1 subtype at neutral pH; under more acidic conditions (pH < 6.5), MitTx massively potentiates (>100-fold) proton-evoked activation of ASIC2a channels. These observations raise the possibility that ASIC channels function as coincidence detectors for extracellular protons and other, as yet unidentified, endogenous factors. Purified MitTx elicits robust pain-related behavior in mice via activation of ASIC1 channels on capsaicin-sensitive nerve fibers. These findings reveal a mechanism whereby snake venoms produce pain, and highlight an unexpected contribution of ASIC1 channels to nociception. 2011-11-16 /pmc/articles/PMC3226747/ /pubmed/22094702 http://dx.doi.org/10.1038/nature10607 Text en Users may view, print, copy, download and text and data- mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Bohlen, Christopher J.
Chesler, Alexander T.
Sharif-Naeini, Reza
Medzihradszky, Katalin F.
Zhou, Sharleen
King, David
Sánchez, Elda E.
Burlingame, Alma L.
Basbaum, Allan I.
Julius, David
A heteromeric Texas coral snake toxin targets acid-sensing ion channels to produce pain
title A heteromeric Texas coral snake toxin targets acid-sensing ion channels to produce pain
title_full A heteromeric Texas coral snake toxin targets acid-sensing ion channels to produce pain
title_fullStr A heteromeric Texas coral snake toxin targets acid-sensing ion channels to produce pain
title_full_unstemmed A heteromeric Texas coral snake toxin targets acid-sensing ion channels to produce pain
title_short A heteromeric Texas coral snake toxin targets acid-sensing ion channels to produce pain
title_sort heteromeric texas coral snake toxin targets acid-sensing ion channels to produce pain
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3226747/
https://www.ncbi.nlm.nih.gov/pubmed/22094702
http://dx.doi.org/10.1038/nature10607
work_keys_str_mv AT bohlenchristopherj aheteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT chesleralexandert aheteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT sharifnaeinireza aheteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT medzihradszkykatalinf aheteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT zhousharleen aheteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT kingdavid aheteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT sanchezeldae aheteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT burlingamealmal aheteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT basbaumallani aheteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT juliusdavid aheteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT bohlenchristopherj heteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT chesleralexandert heteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT sharifnaeinireza heteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT medzihradszkykatalinf heteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT zhousharleen heteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT kingdavid heteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT sanchezeldae heteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT burlingamealmal heteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT basbaumallani heteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain
AT juliusdavid heteromerictexascoralsnaketoxintargetsacidsensingionchannelstoproducepain