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Potent suppression of vascular smooth muscle cell migration and human neointimal hyperplasia by K(V)1.3 channel blockers

AIM: The aim of the study was to determine the potential for K(V)1 potassium channel blockers as inhibitors of human neoinitimal hyperplasia. METHODS AND RESULTS: Blood vessels were obtained from patients or mice and studied in culture. Reverse transcriptase–polymerase chain reaction and immunocytoc...

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Autores principales: Cheong, Alex, Li, Jing, Sukumar, Piruthivi, Kumar, Bhaskar, Zeng, Fanning, Riches, Kirsten, Munsch, Christopher, Wood, Ian C., Porter, Karen E., Beech, David J.
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3020133/
https://www.ncbi.nlm.nih.gov/pubmed/20884640
http://dx.doi.org/10.1093/cvr/cvq305
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author Cheong, Alex
Li, Jing
Sukumar, Piruthivi
Kumar, Bhaskar
Zeng, Fanning
Riches, Kirsten
Munsch, Christopher
Wood, Ian C.
Porter, Karen E.
Beech, David J.
author_facet Cheong, Alex
Li, Jing
Sukumar, Piruthivi
Kumar, Bhaskar
Zeng, Fanning
Riches, Kirsten
Munsch, Christopher
Wood, Ian C.
Porter, Karen E.
Beech, David J.
author_sort Cheong, Alex
collection PubMed
description AIM: The aim of the study was to determine the potential for K(V)1 potassium channel blockers as inhibitors of human neoinitimal hyperplasia. METHODS AND RESULTS: Blood vessels were obtained from patients or mice and studied in culture. Reverse transcriptase–polymerase chain reaction and immunocytochemistry were used to detect gene expression. Whole-cell patch-clamp, intracellular calcium measurement, cell migration assays, and organ culture were used to assess channel function. K(V)1.3 was unique among the K(V)1 channels in showing preserved and up-regulated expression when the vascular smooth muscle cells switched to the proliferating phenotype. There was strong expression in neointimal formations. Voltage-dependent potassium current in proliferating cells was sensitive to three different blockers of K(V)1.3 channels. Calcium entry was also inhibited. All three blockers reduced vascular smooth muscle cell migration and the effects were non-additive. One of the blockers (margatoxin) was highly potent, suppressing cell migration with an IC(50) of 85 pM. Two of the blockers were tested in organ-cultured human vein samples and both inhibited neointimal hyperplasia. CONCLUSION: K(V)1.3 potassium channels are functional in proliferating mouse and human vascular smooth muscle cells and have positive effects on cell migration. Blockers of the channels may be useful as inhibitors of neointimal hyperplasia and other unwanted vascular remodelling events.
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spelling pubmed-30201332011-01-12 Potent suppression of vascular smooth muscle cell migration and human neointimal hyperplasia by K(V)1.3 channel blockers Cheong, Alex Li, Jing Sukumar, Piruthivi Kumar, Bhaskar Zeng, Fanning Riches, Kirsten Munsch, Christopher Wood, Ian C. Porter, Karen E. Beech, David J. Cardiovasc Res Original Articles AIM: The aim of the study was to determine the potential for K(V)1 potassium channel blockers as inhibitors of human neoinitimal hyperplasia. METHODS AND RESULTS: Blood vessels were obtained from patients or mice and studied in culture. Reverse transcriptase–polymerase chain reaction and immunocytochemistry were used to detect gene expression. Whole-cell patch-clamp, intracellular calcium measurement, cell migration assays, and organ culture were used to assess channel function. K(V)1.3 was unique among the K(V)1 channels in showing preserved and up-regulated expression when the vascular smooth muscle cells switched to the proliferating phenotype. There was strong expression in neointimal formations. Voltage-dependent potassium current in proliferating cells was sensitive to three different blockers of K(V)1.3 channels. Calcium entry was also inhibited. All three blockers reduced vascular smooth muscle cell migration and the effects were non-additive. One of the blockers (margatoxin) was highly potent, suppressing cell migration with an IC(50) of 85 pM. Two of the blockers were tested in organ-cultured human vein samples and both inhibited neointimal hyperplasia. CONCLUSION: K(V)1.3 potassium channels are functional in proliferating mouse and human vascular smooth muscle cells and have positive effects on cell migration. Blockers of the channels may be useful as inhibitors of neointimal hyperplasia and other unwanted vascular remodelling events. Oxford University Press 2011-02-01 2010-09-29 /pmc/articles/PMC3020133/ /pubmed/20884640 http://dx.doi.org/10.1093/cvr/cvq305 Text en Published on behalf of the European Society of Cardiology. All rights reserved. © The Author 2010. For permissions please email: journals.permissions@oxfordjournals.org. http://creativecommons.org/licenses/by-nc/2.5/ The online version of this article has been published under an open access model. Users are entitled to use, reproduce, disseminate, or display the open access version of this article for non-commercial purposes provided that the original authorship is properly and fully attributed; the Journal, Learned Society and Oxford University Press are attributed as the original place of publication with correct citation details given; if an article is subsequently reproduced or disseminated not in its entirety but only in part or as a derivative work this must be clearly indicated. For commercial re-use, please contact journals.permissions@oxfordjournals.org.
spellingShingle Original Articles
Cheong, Alex
Li, Jing
Sukumar, Piruthivi
Kumar, Bhaskar
Zeng, Fanning
Riches, Kirsten
Munsch, Christopher
Wood, Ian C.
Porter, Karen E.
Beech, David J.
Potent suppression of vascular smooth muscle cell migration and human neointimal hyperplasia by K(V)1.3 channel blockers
title Potent suppression of vascular smooth muscle cell migration and human neointimal hyperplasia by K(V)1.3 channel blockers
title_full Potent suppression of vascular smooth muscle cell migration and human neointimal hyperplasia by K(V)1.3 channel blockers
title_fullStr Potent suppression of vascular smooth muscle cell migration and human neointimal hyperplasia by K(V)1.3 channel blockers
title_full_unstemmed Potent suppression of vascular smooth muscle cell migration and human neointimal hyperplasia by K(V)1.3 channel blockers
title_short Potent suppression of vascular smooth muscle cell migration and human neointimal hyperplasia by K(V)1.3 channel blockers
title_sort potent suppression of vascular smooth muscle cell migration and human neointimal hyperplasia by k(v)1.3 channel blockers
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3020133/
https://www.ncbi.nlm.nih.gov/pubmed/20884640
http://dx.doi.org/10.1093/cvr/cvq305
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