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K(2P)2.1(TREK-1):activator complexes reveal a cryptic selectivity filter binding site

Polymodal K(2P) (KCNK) thermo- and mechanosensitive TREK(1) potassium channels, generate ‘leak’ currents that regulate neuronal excitability, respond to lipids, temperature, and mechanical stretch, and influence pain, temperature perception, and anesthetic responses(1–3). These dimeric voltage-gated...

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Autores principales: Lolicato, Marco, Arrigoni, Cristina, Mori, Takahiro, Sekioka, Yoko, Bryant, Clifford, Clark, Kimberly A., Minor, Daniel L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5778891/
https://www.ncbi.nlm.nih.gov/pubmed/28693035
http://dx.doi.org/10.1038/nature22988
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author Lolicato, Marco
Arrigoni, Cristina
Mori, Takahiro
Sekioka, Yoko
Bryant, Clifford
Clark, Kimberly A.
Minor, Daniel L.
author_facet Lolicato, Marco
Arrigoni, Cristina
Mori, Takahiro
Sekioka, Yoko
Bryant, Clifford
Clark, Kimberly A.
Minor, Daniel L.
author_sort Lolicato, Marco
collection PubMed
description Polymodal K(2P) (KCNK) thermo- and mechanosensitive TREK(1) potassium channels, generate ‘leak’ currents that regulate neuronal excitability, respond to lipids, temperature, and mechanical stretch, and influence pain, temperature perception, and anesthetic responses(1–3). These dimeric voltage-gated ion channel (VGIC) superfamily members have a unique topology comprising two pore forming regions per subunit(4–6). Contrasting other potassium channels, K(2P)s use a selectivity filter ‘C-type’ gate(7–10) as the principal gating site. Despite recent advances(3,11,12), K(2P)s suffer from a poor pharmacologic profile limiting mechanistic and biological studies. Here, we describe a new small molecule TREK activator class that directly stimulates the C-type gate by acting as molecular wedges that restrict interdomain interface movement behind the selectivity filter. Structures of K(2P)2.1(TREK-1) alone with two selective K(2P)2.1(TREK-1) and K(2P)10.1(TREK-2) activators, an N-aryl-sulfonamide, ML335, and a thiophene-carboxamide, ML402, define a cryptic binding pocket unlike other ion channel small molecule binding sites and, together with functional studies, identify a cation-π interaction that controls selectivity. Together, our data unveil a previously unknown, druggable K(2P) site that stabilizes the C-type gate ‘leak mode’ and provide direct evidence for K(2P) selectivity filter gating.
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spelling pubmed-57788912018-01-23 K(2P)2.1(TREK-1):activator complexes reveal a cryptic selectivity filter binding site Lolicato, Marco Arrigoni, Cristina Mori, Takahiro Sekioka, Yoko Bryant, Clifford Clark, Kimberly A. Minor, Daniel L. Nature Article Polymodal K(2P) (KCNK) thermo- and mechanosensitive TREK(1) potassium channels, generate ‘leak’ currents that regulate neuronal excitability, respond to lipids, temperature, and mechanical stretch, and influence pain, temperature perception, and anesthetic responses(1–3). These dimeric voltage-gated ion channel (VGIC) superfamily members have a unique topology comprising two pore forming regions per subunit(4–6). Contrasting other potassium channels, K(2P)s use a selectivity filter ‘C-type’ gate(7–10) as the principal gating site. Despite recent advances(3,11,12), K(2P)s suffer from a poor pharmacologic profile limiting mechanistic and biological studies. Here, we describe a new small molecule TREK activator class that directly stimulates the C-type gate by acting as molecular wedges that restrict interdomain interface movement behind the selectivity filter. Structures of K(2P)2.1(TREK-1) alone with two selective K(2P)2.1(TREK-1) and K(2P)10.1(TREK-2) activators, an N-aryl-sulfonamide, ML335, and a thiophene-carboxamide, ML402, define a cryptic binding pocket unlike other ion channel small molecule binding sites and, together with functional studies, identify a cation-π interaction that controls selectivity. Together, our data unveil a previously unknown, druggable K(2P) site that stabilizes the C-type gate ‘leak mode’ and provide direct evidence for K(2P) selectivity filter gating. 2017-07-10 2017-07-20 /pmc/articles/PMC5778891/ /pubmed/28693035 http://dx.doi.org/10.1038/nature22988 Text en Users may view, print, copy, and download 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
Lolicato, Marco
Arrigoni, Cristina
Mori, Takahiro
Sekioka, Yoko
Bryant, Clifford
Clark, Kimberly A.
Minor, Daniel L.
K(2P)2.1(TREK-1):activator complexes reveal a cryptic selectivity filter binding site
title K(2P)2.1(TREK-1):activator complexes reveal a cryptic selectivity filter binding site
title_full K(2P)2.1(TREK-1):activator complexes reveal a cryptic selectivity filter binding site
title_fullStr K(2P)2.1(TREK-1):activator complexes reveal a cryptic selectivity filter binding site
title_full_unstemmed K(2P)2.1(TREK-1):activator complexes reveal a cryptic selectivity filter binding site
title_short K(2P)2.1(TREK-1):activator complexes reveal a cryptic selectivity filter binding site
title_sort k(2p)2.1(trek-1):activator complexes reveal a cryptic selectivity filter binding site
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5778891/
https://www.ncbi.nlm.nih.gov/pubmed/28693035
http://dx.doi.org/10.1038/nature22988
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