Cargando…

Palmitoylation of the S0-S1 Linker Regulates Cell Surface Expression of Voltage- and Calcium-activated Potassium (BK) Channels

S-Palmitoylation is rapidly emerging as an important post-translational mechanism to regulate ion channels. We have previously demonstrated that large conductance calcium- and voltage-activated potassium (BK) channels are palmitoylated within an alternatively spliced (STREX) insert. However, these s...

Descripción completa

Detalles Bibliográficos
Autores principales: Jeffries, Owen, Geiger, Nina, Rowe, Iain C. M., Tian, Lijun, McClafferty, Heather, Chen, Lie, Bi, Danlei, Knaus, Hans Guenther, Ruth, Peter, Shipston, Michael J.
Formato: Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2963414/
https://www.ncbi.nlm.nih.gov/pubmed/20693285
http://dx.doi.org/10.1074/jbc.M110.153940
_version_ 1782189271451435008
author Jeffries, Owen
Geiger, Nina
Rowe, Iain C. M.
Tian, Lijun
McClafferty, Heather
Chen, Lie
Bi, Danlei
Knaus, Hans Guenther
Ruth, Peter
Shipston, Michael J.
author_facet Jeffries, Owen
Geiger, Nina
Rowe, Iain C. M.
Tian, Lijun
McClafferty, Heather
Chen, Lie
Bi, Danlei
Knaus, Hans Guenther
Ruth, Peter
Shipston, Michael J.
author_sort Jeffries, Owen
collection PubMed
description S-Palmitoylation is rapidly emerging as an important post-translational mechanism to regulate ion channels. We have previously demonstrated that large conductance calcium- and voltage-activated potassium (BK) channels are palmitoylated within an alternatively spliced (STREX) insert. However, these studies also revealed that additional site(s) for palmitoylation must exist outside of the STREX insert, although the identity or the functional significance of these palmitoylated cysteine residues are unknown. Here, we demonstrate that BK channels are palmitoylated at a cluster of evolutionary conserved cysteine residues (Cys-53, Cys-54, and Cys-56) within the intracellular linker between the S0 and S1 transmembrane domains. Mutation of Cys-53, Cys-54, and Cys-56 completely abolished palmitoylation of BK channels lacking the STREX insert (ZERO variant). Palmitoylation allows the S0-S1 linker to associate with the plasma membrane but has no effect on single channel conductance or the calcium/voltage sensitivity. Rather, S0-S1 linker palmitoylation is a critical determinant of cell surface expression of BK channels, as steady state surface expression levels are reduced by ∼55% in the C53:54:56A mutant. STREX variant channels that could not be palmitoylated in the S0-S1 linker also displayed significantly reduced cell surface expression even though STREX insert palmitoylation was unaffected. Thus our work reveals the functional independence of two distinct palmitoylation-dependent membrane interaction domains within the same channel protein and demonstrates the critical role of S0-S1 linker palmitoylation in the control of BK channel cell surface expression.
format Text
id pubmed-2963414
institution National Center for Biotechnology Information
language English
publishDate 2010
publisher American Society for Biochemistry and Molecular Biology
record_format MEDLINE/PubMed
spelling pubmed-29634142010-10-25 Palmitoylation of the S0-S1 Linker Regulates Cell Surface Expression of Voltage- and Calcium-activated Potassium (BK) Channels Jeffries, Owen Geiger, Nina Rowe, Iain C. M. Tian, Lijun McClafferty, Heather Chen, Lie Bi, Danlei Knaus, Hans Guenther Ruth, Peter Shipston, Michael J. J Biol Chem Membrane Biology S-Palmitoylation is rapidly emerging as an important post-translational mechanism to regulate ion channels. We have previously demonstrated that large conductance calcium- and voltage-activated potassium (BK) channels are palmitoylated within an alternatively spliced (STREX) insert. However, these studies also revealed that additional site(s) for palmitoylation must exist outside of the STREX insert, although the identity or the functional significance of these palmitoylated cysteine residues are unknown. Here, we demonstrate that BK channels are palmitoylated at a cluster of evolutionary conserved cysteine residues (Cys-53, Cys-54, and Cys-56) within the intracellular linker between the S0 and S1 transmembrane domains. Mutation of Cys-53, Cys-54, and Cys-56 completely abolished palmitoylation of BK channels lacking the STREX insert (ZERO variant). Palmitoylation allows the S0-S1 linker to associate with the plasma membrane but has no effect on single channel conductance or the calcium/voltage sensitivity. Rather, S0-S1 linker palmitoylation is a critical determinant of cell surface expression of BK channels, as steady state surface expression levels are reduced by ∼55% in the C53:54:56A mutant. STREX variant channels that could not be palmitoylated in the S0-S1 linker also displayed significantly reduced cell surface expression even though STREX insert palmitoylation was unaffected. Thus our work reveals the functional independence of two distinct palmitoylation-dependent membrane interaction domains within the same channel protein and demonstrates the critical role of S0-S1 linker palmitoylation in the control of BK channel cell surface expression. American Society for Biochemistry and Molecular Biology 2010-10-22 2010-08-06 /pmc/articles/PMC2963414/ /pubmed/20693285 http://dx.doi.org/10.1074/jbc.M110.153940 Text en © 2010 by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version full access. Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) applies to Author Choice Articles
spellingShingle Membrane Biology
Jeffries, Owen
Geiger, Nina
Rowe, Iain C. M.
Tian, Lijun
McClafferty, Heather
Chen, Lie
Bi, Danlei
Knaus, Hans Guenther
Ruth, Peter
Shipston, Michael J.
Palmitoylation of the S0-S1 Linker Regulates Cell Surface Expression of Voltage- and Calcium-activated Potassium (BK) Channels
title Palmitoylation of the S0-S1 Linker Regulates Cell Surface Expression of Voltage- and Calcium-activated Potassium (BK) Channels
title_full Palmitoylation of the S0-S1 Linker Regulates Cell Surface Expression of Voltage- and Calcium-activated Potassium (BK) Channels
title_fullStr Palmitoylation of the S0-S1 Linker Regulates Cell Surface Expression of Voltage- and Calcium-activated Potassium (BK) Channels
title_full_unstemmed Palmitoylation of the S0-S1 Linker Regulates Cell Surface Expression of Voltage- and Calcium-activated Potassium (BK) Channels
title_short Palmitoylation of the S0-S1 Linker Regulates Cell Surface Expression of Voltage- and Calcium-activated Potassium (BK) Channels
title_sort palmitoylation of the s0-s1 linker regulates cell surface expression of voltage- and calcium-activated potassium (bk) channels
topic Membrane Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2963414/
https://www.ncbi.nlm.nih.gov/pubmed/20693285
http://dx.doi.org/10.1074/jbc.M110.153940
work_keys_str_mv AT jeffriesowen palmitoylationofthes0s1linkerregulatescellsurfaceexpressionofvoltageandcalciumactivatedpotassiumbkchannels
AT geigernina palmitoylationofthes0s1linkerregulatescellsurfaceexpressionofvoltageandcalciumactivatedpotassiumbkchannels
AT roweiaincm palmitoylationofthes0s1linkerregulatescellsurfaceexpressionofvoltageandcalciumactivatedpotassiumbkchannels
AT tianlijun palmitoylationofthes0s1linkerregulatescellsurfaceexpressionofvoltageandcalciumactivatedpotassiumbkchannels
AT mcclaffertyheather palmitoylationofthes0s1linkerregulatescellsurfaceexpressionofvoltageandcalciumactivatedpotassiumbkchannels
AT chenlie palmitoylationofthes0s1linkerregulatescellsurfaceexpressionofvoltageandcalciumactivatedpotassiumbkchannels
AT bidanlei palmitoylationofthes0s1linkerregulatescellsurfaceexpressionofvoltageandcalciumactivatedpotassiumbkchannels
AT knaushansguenther palmitoylationofthes0s1linkerregulatescellsurfaceexpressionofvoltageandcalciumactivatedpotassiumbkchannels
AT ruthpeter palmitoylationofthes0s1linkerregulatescellsurfaceexpressionofvoltageandcalciumactivatedpotassiumbkchannels
AT shipstonmichaelj palmitoylationofthes0s1linkerregulatescellsurfaceexpressionofvoltageandcalciumactivatedpotassiumbkchannels