Cargando…

Fluorinated synthetic anion carriers: experimental and computational insights into transmembrane chloride transport

A series of fluorinated tripodal tris-thioureas function as highly active anion transporters across lipid bilayers and cell membranes. Here, we investigate their mechanism of action using anion transport assays in cells and synthetic vesicles and molecular modelling of transporter–lipid interactions...

Descripción completa

Detalles Bibliográficos
Autores principales: Spooner, Michael J., Li, Hongyu, Marques, Igor, Costa, Pedro M. R., Wu, Xin, Howe, Ethan N. W., Busschaert, Nathalie, Moore, Stephen J., Light, Mark E., Sheppard, David N., Félix, Vítor, Gale, Philip A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6381411/
https://www.ncbi.nlm.nih.gov/pubmed/30881627
http://dx.doi.org/10.1039/c8sc05155k
_version_ 1783396487511670784
author Spooner, Michael J.
Li, Hongyu
Marques, Igor
Costa, Pedro M. R.
Wu, Xin
Howe, Ethan N. W.
Busschaert, Nathalie
Moore, Stephen J.
Light, Mark E.
Sheppard, David N.
Félix, Vítor
Gale, Philip A.
author_facet Spooner, Michael J.
Li, Hongyu
Marques, Igor
Costa, Pedro M. R.
Wu, Xin
Howe, Ethan N. W.
Busschaert, Nathalie
Moore, Stephen J.
Light, Mark E.
Sheppard, David N.
Félix, Vítor
Gale, Philip A.
author_sort Spooner, Michael J.
collection PubMed
description A series of fluorinated tripodal tris-thioureas function as highly active anion transporters across lipid bilayers and cell membranes. Here, we investigate their mechanism of action using anion transport assays in cells and synthetic vesicles and molecular modelling of transporter–lipid interactions. When compared with non-fluorinated analogues, fluorinated compounds demonstrate a different mechanism of membrane transport because the free transporter cannot effectively diffuse through the membrane. As a result, in H(+)/Cl(–) cotransport assays, fluorinated transporters require the presence of oleic acid to form anionic oleate complexes for recycling of the transporter, whereas non-fluorinated analogues readily diffuse through the membrane as free transporters and show synergistic transport with the proton transporter gramicidin. Molecular dynamics simulations revealed markedly stronger transporter–lipid interactions for fluorinated compounds compared with non-fluorinated analogues and hence, higher energy barriers for fluorinated compounds to cross the membrane as free transporters. With use of appropriate proton transporters to ensure measurement of the correct rate-limiting steps, the transport rates determined in synthetic vesicle assays show excellent agreement with the anion transport rates determined in cell-based assays. We conclude that integration of computational and experimental methods provides a strategy to optimise transmembrane anion transporter design for biomedical applications.
format Online
Article
Text
id pubmed-6381411
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-63814112019-03-15 Fluorinated synthetic anion carriers: experimental and computational insights into transmembrane chloride transport Spooner, Michael J. Li, Hongyu Marques, Igor Costa, Pedro M. R. Wu, Xin Howe, Ethan N. W. Busschaert, Nathalie Moore, Stephen J. Light, Mark E. Sheppard, David N. Félix, Vítor Gale, Philip A. Chem Sci Chemistry A series of fluorinated tripodal tris-thioureas function as highly active anion transporters across lipid bilayers and cell membranes. Here, we investigate their mechanism of action using anion transport assays in cells and synthetic vesicles and molecular modelling of transporter–lipid interactions. When compared with non-fluorinated analogues, fluorinated compounds demonstrate a different mechanism of membrane transport because the free transporter cannot effectively diffuse through the membrane. As a result, in H(+)/Cl(–) cotransport assays, fluorinated transporters require the presence of oleic acid to form anionic oleate complexes for recycling of the transporter, whereas non-fluorinated analogues readily diffuse through the membrane as free transporters and show synergistic transport with the proton transporter gramicidin. Molecular dynamics simulations revealed markedly stronger transporter–lipid interactions for fluorinated compounds compared with non-fluorinated analogues and hence, higher energy barriers for fluorinated compounds to cross the membrane as free transporters. With use of appropriate proton transporters to ensure measurement of the correct rate-limiting steps, the transport rates determined in synthetic vesicle assays show excellent agreement with the anion transport rates determined in cell-based assays. We conclude that integration of computational and experimental methods provides a strategy to optimise transmembrane anion transporter design for biomedical applications. Royal Society of Chemistry 2018-12-14 /pmc/articles/PMC6381411/ /pubmed/30881627 http://dx.doi.org/10.1039/c8sc05155k Text en This journal is © The Royal Society of Chemistry 2019 http://creativecommons.org/licenses/by/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (CC BY 3.0)
spellingShingle Chemistry
Spooner, Michael J.
Li, Hongyu
Marques, Igor
Costa, Pedro M. R.
Wu, Xin
Howe, Ethan N. W.
Busschaert, Nathalie
Moore, Stephen J.
Light, Mark E.
Sheppard, David N.
Félix, Vítor
Gale, Philip A.
Fluorinated synthetic anion carriers: experimental and computational insights into transmembrane chloride transport
title Fluorinated synthetic anion carriers: experimental and computational insights into transmembrane chloride transport
title_full Fluorinated synthetic anion carriers: experimental and computational insights into transmembrane chloride transport
title_fullStr Fluorinated synthetic anion carriers: experimental and computational insights into transmembrane chloride transport
title_full_unstemmed Fluorinated synthetic anion carriers: experimental and computational insights into transmembrane chloride transport
title_short Fluorinated synthetic anion carriers: experimental and computational insights into transmembrane chloride transport
title_sort fluorinated synthetic anion carriers: experimental and computational insights into transmembrane chloride transport
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6381411/
https://www.ncbi.nlm.nih.gov/pubmed/30881627
http://dx.doi.org/10.1039/c8sc05155k
work_keys_str_mv AT spoonermichaelj fluorinatedsyntheticanioncarriersexperimentalandcomputationalinsightsintotransmembranechloridetransport
AT lihongyu fluorinatedsyntheticanioncarriersexperimentalandcomputationalinsightsintotransmembranechloridetransport
AT marquesigor fluorinatedsyntheticanioncarriersexperimentalandcomputationalinsightsintotransmembranechloridetransport
AT costapedromr fluorinatedsyntheticanioncarriersexperimentalandcomputationalinsightsintotransmembranechloridetransport
AT wuxin fluorinatedsyntheticanioncarriersexperimentalandcomputationalinsightsintotransmembranechloridetransport
AT howeethannw fluorinatedsyntheticanioncarriersexperimentalandcomputationalinsightsintotransmembranechloridetransport
AT busschaertnathalie fluorinatedsyntheticanioncarriersexperimentalandcomputationalinsightsintotransmembranechloridetransport
AT moorestephenj fluorinatedsyntheticanioncarriersexperimentalandcomputationalinsightsintotransmembranechloridetransport
AT lightmarke fluorinatedsyntheticanioncarriersexperimentalandcomputationalinsightsintotransmembranechloridetransport
AT shepparddavidn fluorinatedsyntheticanioncarriersexperimentalandcomputationalinsightsintotransmembranechloridetransport
AT felixvitor fluorinatedsyntheticanioncarriersexperimentalandcomputationalinsightsintotransmembranechloridetransport
AT galephilipa fluorinatedsyntheticanioncarriersexperimentalandcomputationalinsightsintotransmembranechloridetransport