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Molecular mechanisms underlying the pilsicainide-induced stabilization of hERG proteins in transfected mammalian cells

BACKGROUND: Pilsicainide, classified as a relatively selective Na(+) channel blocker, also has an inhibitory action on the rapidly-activating delayed-rectifier K(+) current (I(Kr)) through human ether-a-go-go-related gene (hERG) channels. We studied the effects of chronic exposure to pilsicainide on...

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Autores principales: Onohara, Takeshi, Hisatome, Ichiro, Kurata, Yasutaka, Li, Peili, Notsu, Tomomi, Morikawa, Kumi, Otani, Naoyuki, Yoshida, Akio, Iitsuka, Kazuhiko, Kato, Masaru, Miake, Junichiro, Ninomiya, Haruaki, Higaki, Katsumi, Shirayoshi, Yasuaki, Nishihara, Takashi, Itoh, Toshiyuki, Nakamura, Yoshinobu, Nishimura, Motonobu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5459418/
https://www.ncbi.nlm.nih.gov/pubmed/28607619
http://dx.doi.org/10.1016/j.joa.2016.09.003
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author Onohara, Takeshi
Hisatome, Ichiro
Kurata, Yasutaka
Li, Peili
Notsu, Tomomi
Morikawa, Kumi
Otani, Naoyuki
Yoshida, Akio
Iitsuka, Kazuhiko
Kato, Masaru
Miake, Junichiro
Ninomiya, Haruaki
Higaki, Katsumi
Shirayoshi, Yasuaki
Nishihara, Takashi
Itoh, Toshiyuki
Nakamura, Yoshinobu
Nishimura, Motonobu
author_facet Onohara, Takeshi
Hisatome, Ichiro
Kurata, Yasutaka
Li, Peili
Notsu, Tomomi
Morikawa, Kumi
Otani, Naoyuki
Yoshida, Akio
Iitsuka, Kazuhiko
Kato, Masaru
Miake, Junichiro
Ninomiya, Haruaki
Higaki, Katsumi
Shirayoshi, Yasuaki
Nishihara, Takashi
Itoh, Toshiyuki
Nakamura, Yoshinobu
Nishimura, Motonobu
author_sort Onohara, Takeshi
collection PubMed
description BACKGROUND: Pilsicainide, classified as a relatively selective Na(+) channel blocker, also has an inhibitory action on the rapidly-activating delayed-rectifier K(+) current (I(Kr)) through human ether-a-go-go-related gene (hERG) channels. We studied the effects of chronic exposure to pilsicainide on the expression of wild-type (WT) hERG proteins and WT-hERG channel currents, as well as on the expression of mutant hERG proteins, in a heterologous expression system. METHODS: HEK293 cells stably expressing WT or mutant hERG proteins were subjected to Western blotting, immunofluorescence microscopy and patch-clamp experiments. RESULTS: Acute exposure to pilsicainide at 0.03–10 μM influenced neither the expression of WT-hERG proteins nor WT-hERG channel currents. Chronic treatment with 0.03–10 μM pilsicainide for 48 h, however, increased the expression of WT-hERG proteins and channel currents in a concentration-dependent manner. Chronic treatment with 3 μM pilsicainide for 48 h delayed degradation of WT-hERG proteins and increased the channels expressed on the plasma membrane. A cell membrane-impermeant pilsicainide derivative did not influence the expression of WT-hERG, indicating that pilsicainide stabilized the protein inside the cell. Pilsicainide did not influence phosphorylation of Akt (protein kinase B) or expression of heat shock protein families such as HSF-1, hsp70 and hsp90. E4031, a chemical chaperone for hERG, abolished the pilsicainide effect on hERG. Chronic treatment with pilsicainide could also increase the protein expression of trafficking-defective mutant hERG, G601S and R752W. CONCLUSIONS: Pilsicainide penetrates the plasma membrane, stabilizes WT-hERG proteins by acting as a chemical chaperone, and enhances WT-hERG channel currents. This mechanism could also be applicable to modulations of certain mutant-hERG proteins.
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spelling pubmed-54594182017-06-12 Molecular mechanisms underlying the pilsicainide-induced stabilization of hERG proteins in transfected mammalian cells Onohara, Takeshi Hisatome, Ichiro Kurata, Yasutaka Li, Peili Notsu, Tomomi Morikawa, Kumi Otani, Naoyuki Yoshida, Akio Iitsuka, Kazuhiko Kato, Masaru Miake, Junichiro Ninomiya, Haruaki Higaki, Katsumi Shirayoshi, Yasuaki Nishihara, Takashi Itoh, Toshiyuki Nakamura, Yoshinobu Nishimura, Motonobu J Arrhythm Original Article BACKGROUND: Pilsicainide, classified as a relatively selective Na(+) channel blocker, also has an inhibitory action on the rapidly-activating delayed-rectifier K(+) current (I(Kr)) through human ether-a-go-go-related gene (hERG) channels. We studied the effects of chronic exposure to pilsicainide on the expression of wild-type (WT) hERG proteins and WT-hERG channel currents, as well as on the expression of mutant hERG proteins, in a heterologous expression system. METHODS: HEK293 cells stably expressing WT or mutant hERG proteins were subjected to Western blotting, immunofluorescence microscopy and patch-clamp experiments. RESULTS: Acute exposure to pilsicainide at 0.03–10 μM influenced neither the expression of WT-hERG proteins nor WT-hERG channel currents. Chronic treatment with 0.03–10 μM pilsicainide for 48 h, however, increased the expression of WT-hERG proteins and channel currents in a concentration-dependent manner. Chronic treatment with 3 μM pilsicainide for 48 h delayed degradation of WT-hERG proteins and increased the channels expressed on the plasma membrane. A cell membrane-impermeant pilsicainide derivative did not influence the expression of WT-hERG, indicating that pilsicainide stabilized the protein inside the cell. Pilsicainide did not influence phosphorylation of Akt (protein kinase B) or expression of heat shock protein families such as HSF-1, hsp70 and hsp90. E4031, a chemical chaperone for hERG, abolished the pilsicainide effect on hERG. Chronic treatment with pilsicainide could also increase the protein expression of trafficking-defective mutant hERG, G601S and R752W. CONCLUSIONS: Pilsicainide penetrates the plasma membrane, stabilizes WT-hERG proteins by acting as a chemical chaperone, and enhances WT-hERG channel currents. This mechanism could also be applicable to modulations of certain mutant-hERG proteins. Elsevier 2017-06 2016-10-19 /pmc/articles/PMC5459418/ /pubmed/28607619 http://dx.doi.org/10.1016/j.joa.2016.09.003 Text en © 2016 Japanese Heart Rhythm Society. Published by Elsevier B.V. http://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 Original Article
Onohara, Takeshi
Hisatome, Ichiro
Kurata, Yasutaka
Li, Peili
Notsu, Tomomi
Morikawa, Kumi
Otani, Naoyuki
Yoshida, Akio
Iitsuka, Kazuhiko
Kato, Masaru
Miake, Junichiro
Ninomiya, Haruaki
Higaki, Katsumi
Shirayoshi, Yasuaki
Nishihara, Takashi
Itoh, Toshiyuki
Nakamura, Yoshinobu
Nishimura, Motonobu
Molecular mechanisms underlying the pilsicainide-induced stabilization of hERG proteins in transfected mammalian cells
title Molecular mechanisms underlying the pilsicainide-induced stabilization of hERG proteins in transfected mammalian cells
title_full Molecular mechanisms underlying the pilsicainide-induced stabilization of hERG proteins in transfected mammalian cells
title_fullStr Molecular mechanisms underlying the pilsicainide-induced stabilization of hERG proteins in transfected mammalian cells
title_full_unstemmed Molecular mechanisms underlying the pilsicainide-induced stabilization of hERG proteins in transfected mammalian cells
title_short Molecular mechanisms underlying the pilsicainide-induced stabilization of hERG proteins in transfected mammalian cells
title_sort molecular mechanisms underlying the pilsicainide-induced stabilization of herg proteins in transfected mammalian cells
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5459418/
https://www.ncbi.nlm.nih.gov/pubmed/28607619
http://dx.doi.org/10.1016/j.joa.2016.09.003
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