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Dynamic Telomerase Gene Suppression via Network Effects of GSK3 Inhibition

BACKGROUND: Telomerase controls telomere homeostasis and cell immortality and is a promising anti-cancer target, but few small molecule telomerase inhibitors have been developed. Reactivated transcription of the catalytic subunit hTERT in cancer cells controls telomerase expression. Better understan...

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Autores principales: Bilsland, Alan E., Hoare, Stacey, Stevenson, Katrina, Plumb, Jane, Gomez-Roman, Natividad, Cairney, Claire, Burns, Sharon, Lafferty-Whyte, Kyle, Roffey, Jon, Hammonds, Tim, Keith, W. Nicol
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2714081/
https://www.ncbi.nlm.nih.gov/pubmed/19649288
http://dx.doi.org/10.1371/journal.pone.0006459
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author Bilsland, Alan E.
Hoare, Stacey
Stevenson, Katrina
Plumb, Jane
Gomez-Roman, Natividad
Cairney, Claire
Burns, Sharon
Lafferty-Whyte, Kyle
Roffey, Jon
Hammonds, Tim
Keith, W. Nicol
author_facet Bilsland, Alan E.
Hoare, Stacey
Stevenson, Katrina
Plumb, Jane
Gomez-Roman, Natividad
Cairney, Claire
Burns, Sharon
Lafferty-Whyte, Kyle
Roffey, Jon
Hammonds, Tim
Keith, W. Nicol
author_sort Bilsland, Alan E.
collection PubMed
description BACKGROUND: Telomerase controls telomere homeostasis and cell immortality and is a promising anti-cancer target, but few small molecule telomerase inhibitors have been developed. Reactivated transcription of the catalytic subunit hTERT in cancer cells controls telomerase expression. Better understanding of upstream pathways is critical for effective anti-telomerase therapeutics and may reveal new targets to inhibit hTERT expression. METHODOLOGY/PRINCIPAL FINDINGS: In a focused promoter screen, several GSK3 inhibitors suppressed hTERT reporter activity. GSK3 inhibition using 6-bromoindirubin-3′-oxime suppressed hTERT expression, telomerase activity and telomere length in several cancer cell lines and growth and hTERT expression in ovarian cancer xenografts. Microarray analysis, network modelling and oligonucleotide binding assays suggested that multiple transcription factors were affected. Extensive remodelling involving Sp1, STAT3, c-Myc, NFκB, and p53 occurred at the endogenous hTERT promoter. RNAi screening of the hTERT promoter revealed multiple kinase genes which affect the hTERT promoter, potentially acting through these factors. Prolonged inhibitor treatments caused dynamic expression both of hTERT and of c-Jun, p53, STAT3, AR and c-Myc. CONCLUSIONS/SIGNIFICANCE: Our results indicate that GSK3 activates hTERT expression in cancer cells and contributes to telomere length homeostasis. GSK3 inhibition is a clinical strategy for several chronic diseases. These results imply that it may also be useful in cancer therapy. However, the complex network effects we show here have implications for either setting.
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spelling pubmed-27140812009-08-01 Dynamic Telomerase Gene Suppression via Network Effects of GSK3 Inhibition Bilsland, Alan E. Hoare, Stacey Stevenson, Katrina Plumb, Jane Gomez-Roman, Natividad Cairney, Claire Burns, Sharon Lafferty-Whyte, Kyle Roffey, Jon Hammonds, Tim Keith, W. Nicol PLoS One Research Article BACKGROUND: Telomerase controls telomere homeostasis and cell immortality and is a promising anti-cancer target, but few small molecule telomerase inhibitors have been developed. Reactivated transcription of the catalytic subunit hTERT in cancer cells controls telomerase expression. Better understanding of upstream pathways is critical for effective anti-telomerase therapeutics and may reveal new targets to inhibit hTERT expression. METHODOLOGY/PRINCIPAL FINDINGS: In a focused promoter screen, several GSK3 inhibitors suppressed hTERT reporter activity. GSK3 inhibition using 6-bromoindirubin-3′-oxime suppressed hTERT expression, telomerase activity and telomere length in several cancer cell lines and growth and hTERT expression in ovarian cancer xenografts. Microarray analysis, network modelling and oligonucleotide binding assays suggested that multiple transcription factors were affected. Extensive remodelling involving Sp1, STAT3, c-Myc, NFκB, and p53 occurred at the endogenous hTERT promoter. RNAi screening of the hTERT promoter revealed multiple kinase genes which affect the hTERT promoter, potentially acting through these factors. Prolonged inhibitor treatments caused dynamic expression both of hTERT and of c-Jun, p53, STAT3, AR and c-Myc. CONCLUSIONS/SIGNIFICANCE: Our results indicate that GSK3 activates hTERT expression in cancer cells and contributes to telomere length homeostasis. GSK3 inhibition is a clinical strategy for several chronic diseases. These results imply that it may also be useful in cancer therapy. However, the complex network effects we show here have implications for either setting. Public Library of Science 2009-07-31 /pmc/articles/PMC2714081/ /pubmed/19649288 http://dx.doi.org/10.1371/journal.pone.0006459 Text en Bilsland et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Bilsland, Alan E.
Hoare, Stacey
Stevenson, Katrina
Plumb, Jane
Gomez-Roman, Natividad
Cairney, Claire
Burns, Sharon
Lafferty-Whyte, Kyle
Roffey, Jon
Hammonds, Tim
Keith, W. Nicol
Dynamic Telomerase Gene Suppression via Network Effects of GSK3 Inhibition
title Dynamic Telomerase Gene Suppression via Network Effects of GSK3 Inhibition
title_full Dynamic Telomerase Gene Suppression via Network Effects of GSK3 Inhibition
title_fullStr Dynamic Telomerase Gene Suppression via Network Effects of GSK3 Inhibition
title_full_unstemmed Dynamic Telomerase Gene Suppression via Network Effects of GSK3 Inhibition
title_short Dynamic Telomerase Gene Suppression via Network Effects of GSK3 Inhibition
title_sort dynamic telomerase gene suppression via network effects of gsk3 inhibition
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2714081/
https://www.ncbi.nlm.nih.gov/pubmed/19649288
http://dx.doi.org/10.1371/journal.pone.0006459
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