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High Yield Production and Refolding of the Double-Knot Toxin, an Activator of TRPV1 Channels

A unique peptide toxin, named double-knot toxin (DkTx), was recently purified from the venom of the tarantula Ornithoctonus huwena and was found to stably activate TRPV1 channels by targeting the outer pore domain. DkTx has been shown to consist of two inhibitory cysteine-knot (ICK) motifs, referred...

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Autores principales: Bae, Chanhyung, Kalia, Jeet, Song, Inhye, Yu, JeongHeon, Kim, Ha Hyung, Swartz, Kenton J., Kim, Jae Il
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3519854/
https://www.ncbi.nlm.nih.gov/pubmed/23240036
http://dx.doi.org/10.1371/journal.pone.0051516
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author Bae, Chanhyung
Kalia, Jeet
Song, Inhye
Yu, JeongHeon
Kim, Ha Hyung
Swartz, Kenton J.
Kim, Jae Il
author_facet Bae, Chanhyung
Kalia, Jeet
Song, Inhye
Yu, JeongHeon
Kim, Ha Hyung
Swartz, Kenton J.
Kim, Jae Il
author_sort Bae, Chanhyung
collection PubMed
description A unique peptide toxin, named double-knot toxin (DkTx), was recently purified from the venom of the tarantula Ornithoctonus huwena and was found to stably activate TRPV1 channels by targeting the outer pore domain. DkTx has been shown to consist of two inhibitory cysteine-knot (ICK) motifs, referred to as K1 and K2, each containing six cysteine residues. Beyond this initial characterization, however, the structural and functional details about DkTx remains elusive in large part due to the lack of a high yielding methodology for the synthesis and folding of this cysteine-rich peptide. Here, we overcome this obstacle by generating pure DkTx in quantities sufficient for structural and functional analyses. Our methodology entails expression of DkTx in E. coli followed by oxidative folding of the isolated linear peptide. Upon screening of various oxidative conditions for optimizing the folding yield of the toxin, we observed that detergents were required for efficient folding of the linear peptide. Our synthetic DkTx co-eluted with the native toxin on HPLC, and irreversibly activated TRPV1 in a manner identical to native DkTx. Interestingly, we find that DkTx has two interconvertible conformations present in a 1∶6 ratio at equilibrium. Kinetic analysis of DkTx folding suggests that the K1 and K2 domains influence each other during the folding process. Moreover, the CD spectra of the toxins shows that the secondary structures of K1 and K2 remains intact even after separating the two knots. These findings provide a starting point for detailed studies on the structural and functional characterization of DkTx and utilization of this toxin as a tool to explore the elusive mechanisms underlying the polymodal gating of TRPV1.
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spelling pubmed-35198542012-12-13 High Yield Production and Refolding of the Double-Knot Toxin, an Activator of TRPV1 Channels Bae, Chanhyung Kalia, Jeet Song, Inhye Yu, JeongHeon Kim, Ha Hyung Swartz, Kenton J. Kim, Jae Il PLoS One Research Article A unique peptide toxin, named double-knot toxin (DkTx), was recently purified from the venom of the tarantula Ornithoctonus huwena and was found to stably activate TRPV1 channels by targeting the outer pore domain. DkTx has been shown to consist of two inhibitory cysteine-knot (ICK) motifs, referred to as K1 and K2, each containing six cysteine residues. Beyond this initial characterization, however, the structural and functional details about DkTx remains elusive in large part due to the lack of a high yielding methodology for the synthesis and folding of this cysteine-rich peptide. Here, we overcome this obstacle by generating pure DkTx in quantities sufficient for structural and functional analyses. Our methodology entails expression of DkTx in E. coli followed by oxidative folding of the isolated linear peptide. Upon screening of various oxidative conditions for optimizing the folding yield of the toxin, we observed that detergents were required for efficient folding of the linear peptide. Our synthetic DkTx co-eluted with the native toxin on HPLC, and irreversibly activated TRPV1 in a manner identical to native DkTx. Interestingly, we find that DkTx has two interconvertible conformations present in a 1∶6 ratio at equilibrium. Kinetic analysis of DkTx folding suggests that the K1 and K2 domains influence each other during the folding process. Moreover, the CD spectra of the toxins shows that the secondary structures of K1 and K2 remains intact even after separating the two knots. These findings provide a starting point for detailed studies on the structural and functional characterization of DkTx and utilization of this toxin as a tool to explore the elusive mechanisms underlying the polymodal gating of TRPV1. Public Library of Science 2012-12-11 /pmc/articles/PMC3519854/ /pubmed/23240036 http://dx.doi.org/10.1371/journal.pone.0051516 Text en https://creativecommons.org/publicdomain/zero/1.0/ This is an open-access article distributed under the terms of the Creative Commons Public Domain declaration, which stipulates that, once placed in the public domain, this work may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose.
spellingShingle Research Article
Bae, Chanhyung
Kalia, Jeet
Song, Inhye
Yu, JeongHeon
Kim, Ha Hyung
Swartz, Kenton J.
Kim, Jae Il
High Yield Production and Refolding of the Double-Knot Toxin, an Activator of TRPV1 Channels
title High Yield Production and Refolding of the Double-Knot Toxin, an Activator of TRPV1 Channels
title_full High Yield Production and Refolding of the Double-Knot Toxin, an Activator of TRPV1 Channels
title_fullStr High Yield Production and Refolding of the Double-Knot Toxin, an Activator of TRPV1 Channels
title_full_unstemmed High Yield Production and Refolding of the Double-Knot Toxin, an Activator of TRPV1 Channels
title_short High Yield Production and Refolding of the Double-Knot Toxin, an Activator of TRPV1 Channels
title_sort high yield production and refolding of the double-knot toxin, an activator of trpv1 channels
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3519854/
https://www.ncbi.nlm.nih.gov/pubmed/23240036
http://dx.doi.org/10.1371/journal.pone.0051516
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