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Knockdown of the small conductance Ca(2+)‐activated K(+) channels is potently cytotoxic in breast cancer cell lines

BACKGROUND AND PURPOSE: Small conductance calcium‐activated potassium (K(Ca)2.x) channels have a widely accepted canonical function in regulating cellular excitability. In this study, we address a potential non‐canonical function of K(Ca)2.x channels in breast cancer cell survival, using in vitro mo...

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Autores principales: Abdulkareem, Zana Azeez, Gee, Julia MW, Cox, Charles D, Wann, Kenneth T
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4737296/
https://www.ncbi.nlm.nih.gov/pubmed/26454020
http://dx.doi.org/10.1111/bph.13357
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author Abdulkareem, Zana Azeez
Gee, Julia MW
Cox, Charles D
Wann, Kenneth T
author_facet Abdulkareem, Zana Azeez
Gee, Julia MW
Cox, Charles D
Wann, Kenneth T
author_sort Abdulkareem, Zana Azeez
collection PubMed
description BACKGROUND AND PURPOSE: Small conductance calcium‐activated potassium (K(Ca)2.x) channels have a widely accepted canonical function in regulating cellular excitability. In this study, we address a potential non‐canonical function of K(Ca)2.x channels in breast cancer cell survival, using in vitro models. EXPERIMENTAL APPROACH: The expression of all K(Ca)2.x channel isoforms was initially probed using RT‐PCR, Western blotting and microarray analysis in five widely studied breast cancer cell lines. In order to assess the effect of pharmacological blockade and siRNA‐mediated knockdown of K(Ca)2.x channels on these cell lines, we utilized MTS proliferation assays and also followed the corresponding expression of apoptotic markers. KEY RESULTS: All of the breast cancer cell lines, regardless of their lineage or endocrine responsiveness, were highly sensitive to K(Ca)2.x channel blockade. UCL1684 caused cytotoxicity, with LD(50) values in the low nanomolar range, in all cell lines. The role of K(Ca)2.x channels was confirmed using pharmacological inhibition and siRNA‐mediated knockdown. This reduced cell viability and also reduced expression of Bcl‐2 but increased expression of active caspase‐7 and caspase‐9. Complementary to these results, a variety of cell lines can be protected from apoptosis induced by staurosporine using the K(Ca)2.x channel activator CyPPA. CONCLUSIONS AND IMPLICATIONS: In addition to a well‐established role for K(Ca)2.x channels in migration, blockade of these channels was potently cytotoxic in breast cancer cell lines, pointing to modulation of K(Ca)2.x channels as a potential therapeutic approach to breast cancer.
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spelling pubmed-47372962016-02-12 Knockdown of the small conductance Ca(2+)‐activated K(+) channels is potently cytotoxic in breast cancer cell lines Abdulkareem, Zana Azeez Gee, Julia MW Cox, Charles D Wann, Kenneth T Br J Pharmacol Research Papers BACKGROUND AND PURPOSE: Small conductance calcium‐activated potassium (K(Ca)2.x) channels have a widely accepted canonical function in regulating cellular excitability. In this study, we address a potential non‐canonical function of K(Ca)2.x channels in breast cancer cell survival, using in vitro models. EXPERIMENTAL APPROACH: The expression of all K(Ca)2.x channel isoforms was initially probed using RT‐PCR, Western blotting and microarray analysis in five widely studied breast cancer cell lines. In order to assess the effect of pharmacological blockade and siRNA‐mediated knockdown of K(Ca)2.x channels on these cell lines, we utilized MTS proliferation assays and also followed the corresponding expression of apoptotic markers. KEY RESULTS: All of the breast cancer cell lines, regardless of their lineage or endocrine responsiveness, were highly sensitive to K(Ca)2.x channel blockade. UCL1684 caused cytotoxicity, with LD(50) values in the low nanomolar range, in all cell lines. The role of K(Ca)2.x channels was confirmed using pharmacological inhibition and siRNA‐mediated knockdown. This reduced cell viability and also reduced expression of Bcl‐2 but increased expression of active caspase‐7 and caspase‐9. Complementary to these results, a variety of cell lines can be protected from apoptosis induced by staurosporine using the K(Ca)2.x channel activator CyPPA. CONCLUSIONS AND IMPLICATIONS: In addition to a well‐established role for K(Ca)2.x channels in migration, blockade of these channels was potently cytotoxic in breast cancer cell lines, pointing to modulation of K(Ca)2.x channels as a potential therapeutic approach to breast cancer. John Wiley and Sons Inc. 2015-12-05 2016-01 /pmc/articles/PMC4737296/ /pubmed/26454020 http://dx.doi.org/10.1111/bph.13357 Text en © 2015 The Authors. British Journal of Pharmacology published by John Wiley & Sons Ltd on behalf of British Pharmacological Society. This is an open access article under the terms of the Creative Commons Attribution‐NonCommercial (http://creativecommons.org/licenses/by-nc/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited and is not used for commercial purposes.
spellingShingle Research Papers
Abdulkareem, Zana Azeez
Gee, Julia MW
Cox, Charles D
Wann, Kenneth T
Knockdown of the small conductance Ca(2+)‐activated K(+) channels is potently cytotoxic in breast cancer cell lines
title Knockdown of the small conductance Ca(2+)‐activated K(+) channels is potently cytotoxic in breast cancer cell lines
title_full Knockdown of the small conductance Ca(2+)‐activated K(+) channels is potently cytotoxic in breast cancer cell lines
title_fullStr Knockdown of the small conductance Ca(2+)‐activated K(+) channels is potently cytotoxic in breast cancer cell lines
title_full_unstemmed Knockdown of the small conductance Ca(2+)‐activated K(+) channels is potently cytotoxic in breast cancer cell lines
title_short Knockdown of the small conductance Ca(2+)‐activated K(+) channels is potently cytotoxic in breast cancer cell lines
title_sort knockdown of the small conductance ca(2+)‐activated k(+) channels is potently cytotoxic in breast cancer cell lines
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4737296/
https://www.ncbi.nlm.nih.gov/pubmed/26454020
http://dx.doi.org/10.1111/bph.13357
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