Cargando…

Proteoliposomes reconstituted with human aquaporin-1 reveal novel single-ion-channel properties

Human aquaporin 1 (hAQP1) forms homotetrameric channels that facilitate fluxes of water and small solutes across cell membranes. In addition to water channel activity, hAQP1 displays non-selective monovalent cation-channel activity gated by intracellular cyclic GMP. Dual water and ion-channel activi...

Descripción completa

Detalles Bibliográficos
Autores principales: Henderson, Sam W., Nakayama, Yoshitaka, Whitelaw, Murray L., Bruning, John B., Anderson, Peter A., Tyerman, Stephen D., Ramesh, Sunita A., Martinac, Boris, Yool, Andrea J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10025285/
https://www.ncbi.nlm.nih.gov/pubmed/36949749
http://dx.doi.org/10.1016/j.bpr.2023.100100
_version_ 1784909295014379520
author Henderson, Sam W.
Nakayama, Yoshitaka
Whitelaw, Murray L.
Bruning, John B.
Anderson, Peter A.
Tyerman, Stephen D.
Ramesh, Sunita A.
Martinac, Boris
Yool, Andrea J.
author_facet Henderson, Sam W.
Nakayama, Yoshitaka
Whitelaw, Murray L.
Bruning, John B.
Anderson, Peter A.
Tyerman, Stephen D.
Ramesh, Sunita A.
Martinac, Boris
Yool, Andrea J.
author_sort Henderson, Sam W.
collection PubMed
description Human aquaporin 1 (hAQP1) forms homotetrameric channels that facilitate fluxes of water and small solutes across cell membranes. In addition to water channel activity, hAQP1 displays non-selective monovalent cation-channel activity gated by intracellular cyclic GMP. Dual water and ion-channel activity of hAQP1, thought to regulate cell shape and volume, could offer a target for novel therapeutics relevant to controlling cancer cell invasiveness. This study probed properties of hAQP1 ion channels using proteoliposomes, which, unlike conventional cell-based systems such as Xenopus laevis oocytes, are relatively free of background ion channels. Histidine-tagged recombinant hAQP1 protein was synthesized and purified from the methylotrophic yeast, Pichia pastoris, and reconstituted into proteoliposomes for biophysical analyses. Osmotic water channel activity confirmed correct folding and channel assembly. Ion-channel activity of hAQP1-Myc-His(6) was recorded by patch-clamp electrophysiology with excised patches. In symmetrical potassium, the hAQP1-Myc-His(6) channels displayed coordinated gating, a single-channel conductance of approximately 75 pS, and multiple subconductance states. Applicability of this method for structure-function analyses was tested using hAQP1-Myc-His(6)(D48A/D185A) channels modified by site-directed mutations of charged Asp residues estimated to be adjacent to the central ion-conducting pore of the tetramer. No differences in conductance were detected between mutant and wild-type constructs, suggesting the open-state conformation could differ substantially from expectations based on crystal structures. Nonetheless, the method pioneered here for AQP1 demonstrates feasibility for future work defining structure-function relationships, screening pharmacological inhibitors, and testing other classes in the broad family of aquaporins for previously undiscovered ion-conducting capabilities.
format Online
Article
Text
id pubmed-10025285
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Elsevier
record_format MEDLINE/PubMed
spelling pubmed-100252852023-03-21 Proteoliposomes reconstituted with human aquaporin-1 reveal novel single-ion-channel properties Henderson, Sam W. Nakayama, Yoshitaka Whitelaw, Murray L. Bruning, John B. Anderson, Peter A. Tyerman, Stephen D. Ramesh, Sunita A. Martinac, Boris Yool, Andrea J. Biophys Rep (N Y) Article Human aquaporin 1 (hAQP1) forms homotetrameric channels that facilitate fluxes of water and small solutes across cell membranes. In addition to water channel activity, hAQP1 displays non-selective monovalent cation-channel activity gated by intracellular cyclic GMP. Dual water and ion-channel activity of hAQP1, thought to regulate cell shape and volume, could offer a target for novel therapeutics relevant to controlling cancer cell invasiveness. This study probed properties of hAQP1 ion channels using proteoliposomes, which, unlike conventional cell-based systems such as Xenopus laevis oocytes, are relatively free of background ion channels. Histidine-tagged recombinant hAQP1 protein was synthesized and purified from the methylotrophic yeast, Pichia pastoris, and reconstituted into proteoliposomes for biophysical analyses. Osmotic water channel activity confirmed correct folding and channel assembly. Ion-channel activity of hAQP1-Myc-His(6) was recorded by patch-clamp electrophysiology with excised patches. In symmetrical potassium, the hAQP1-Myc-His(6) channels displayed coordinated gating, a single-channel conductance of approximately 75 pS, and multiple subconductance states. Applicability of this method for structure-function analyses was tested using hAQP1-Myc-His(6)(D48A/D185A) channels modified by site-directed mutations of charged Asp residues estimated to be adjacent to the central ion-conducting pore of the tetramer. No differences in conductance were detected between mutant and wild-type constructs, suggesting the open-state conformation could differ substantially from expectations based on crystal structures. Nonetheless, the method pioneered here for AQP1 demonstrates feasibility for future work defining structure-function relationships, screening pharmacological inhibitors, and testing other classes in the broad family of aquaporins for previously undiscovered ion-conducting capabilities. Elsevier 2023-01-14 /pmc/articles/PMC10025285/ /pubmed/36949749 http://dx.doi.org/10.1016/j.bpr.2023.100100 Text en © 2023 The Author(s) https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Article
Henderson, Sam W.
Nakayama, Yoshitaka
Whitelaw, Murray L.
Bruning, John B.
Anderson, Peter A.
Tyerman, Stephen D.
Ramesh, Sunita A.
Martinac, Boris
Yool, Andrea J.
Proteoliposomes reconstituted with human aquaporin-1 reveal novel single-ion-channel properties
title Proteoliposomes reconstituted with human aquaporin-1 reveal novel single-ion-channel properties
title_full Proteoliposomes reconstituted with human aquaporin-1 reveal novel single-ion-channel properties
title_fullStr Proteoliposomes reconstituted with human aquaporin-1 reveal novel single-ion-channel properties
title_full_unstemmed Proteoliposomes reconstituted with human aquaporin-1 reveal novel single-ion-channel properties
title_short Proteoliposomes reconstituted with human aquaporin-1 reveal novel single-ion-channel properties
title_sort proteoliposomes reconstituted with human aquaporin-1 reveal novel single-ion-channel properties
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10025285/
https://www.ncbi.nlm.nih.gov/pubmed/36949749
http://dx.doi.org/10.1016/j.bpr.2023.100100
work_keys_str_mv AT hendersonsamw proteoliposomesreconstitutedwithhumanaquaporin1revealnovelsingleionchannelproperties
AT nakayamayoshitaka proteoliposomesreconstitutedwithhumanaquaporin1revealnovelsingleionchannelproperties
AT whitelawmurrayl proteoliposomesreconstitutedwithhumanaquaporin1revealnovelsingleionchannelproperties
AT bruningjohnb proteoliposomesreconstitutedwithhumanaquaporin1revealnovelsingleionchannelproperties
AT andersonpetera proteoliposomesreconstitutedwithhumanaquaporin1revealnovelsingleionchannelproperties
AT tyermanstephend proteoliposomesreconstitutedwithhumanaquaporin1revealnovelsingleionchannelproperties
AT rameshsunitaa proteoliposomesreconstitutedwithhumanaquaporin1revealnovelsingleionchannelproperties
AT martinacboris proteoliposomesreconstitutedwithhumanaquaporin1revealnovelsingleionchannelproperties
AT yoolandreaj proteoliposomesreconstitutedwithhumanaquaporin1revealnovelsingleionchannelproperties