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Activation of GPR30 inhibits growth of prostate cancer cells via sustained activation of Erk1/2, c-jun/c-fos-dependent upregulation of p21, and induction of G2 cell-cycle arrest

G protein–coupled receptor 30 (GPR30) exhibits estrogen-binding affinity and mediates nongenomic signaling of estrogen to regulate cell growth. We here demonstrated for the first time, in contrast to the reported promoting action of GPR30 on the growth of breast and ovarian cancer cells, that activa...

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Autores principales: Chan, Queeny K.Y., Lam, Hung-Ming, Ng, Chi-Fai, Lee, Amy Y.Y., Chan, Eddie S.Y., Ng, Ho-Keung, Ho, Shuk-Mei, Lau, Kin-Mang
Formato: Texto
Lenguaje:English
Publicado: 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2897932/
https://www.ncbi.nlm.nih.gov/pubmed/20203690
http://dx.doi.org/10.1038/cdd.2010.20
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author Chan, Queeny K.Y.
Lam, Hung-Ming
Ng, Chi-Fai
Lee, Amy Y.Y.
Chan, Eddie S.Y.
Ng, Ho-Keung
Ho, Shuk-Mei
Lau, Kin-Mang
author_facet Chan, Queeny K.Y.
Lam, Hung-Ming
Ng, Chi-Fai
Lee, Amy Y.Y.
Chan, Eddie S.Y.
Ng, Ho-Keung
Ho, Shuk-Mei
Lau, Kin-Mang
author_sort Chan, Queeny K.Y.
collection PubMed
description G protein–coupled receptor 30 (GPR30) exhibits estrogen-binding affinity and mediates nongenomic signaling of estrogen to regulate cell growth. We here demonstrated for the first time, in contrast to the reported promoting action of GPR30 on the growth of breast and ovarian cancer cells, that activation of GPR30 by the receptor-specific, non-estrogenic ligand G-1 inhibited growth of androgen-dependent and -independent prostate cancer (PCa) cells in vitro and PC-3 xenografts in vivo. However, G-1 elicited no growth or histological changes in the prostates of intact mice and did not inhibit growth in quiescent BPH-1, an immortalized benign prostatic epithelial cell line. Treatment of PC-3 cells with G-1-induced cell-cycle arrest at the G2 phase and reduced the expression of G2-checkpoint regulators (cyclin A2, cyclin B1, cdc25c, and cdc2) and the phosphorylation of their common transcriptional regulator NF-YA in PC-3 cells. With the extensive use of siRNA knockdown experiments and the MEK inhibitor PD98059 in the present study, we dissected the mechanism underlying G-1–induced inhibition of PC-3 cell growth, which was mediated through GPR30, followed by a sustained activation of Erk1/2 and a c-jun/c-fos-dependent upregulation of p21, resulting in the arrest of PC-3 growth at the G2 phase. The discovery of this signaling pathway lays the foundation for future development of GPR30-based therapies for PCa.
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spelling pubmed-28979322011-03-01 Activation of GPR30 inhibits growth of prostate cancer cells via sustained activation of Erk1/2, c-jun/c-fos-dependent upregulation of p21, and induction of G2 cell-cycle arrest Chan, Queeny K.Y. Lam, Hung-Ming Ng, Chi-Fai Lee, Amy Y.Y. Chan, Eddie S.Y. Ng, Ho-Keung Ho, Shuk-Mei Lau, Kin-Mang Cell Death Differ Article G protein–coupled receptor 30 (GPR30) exhibits estrogen-binding affinity and mediates nongenomic signaling of estrogen to regulate cell growth. We here demonstrated for the first time, in contrast to the reported promoting action of GPR30 on the growth of breast and ovarian cancer cells, that activation of GPR30 by the receptor-specific, non-estrogenic ligand G-1 inhibited growth of androgen-dependent and -independent prostate cancer (PCa) cells in vitro and PC-3 xenografts in vivo. However, G-1 elicited no growth or histological changes in the prostates of intact mice and did not inhibit growth in quiescent BPH-1, an immortalized benign prostatic epithelial cell line. Treatment of PC-3 cells with G-1-induced cell-cycle arrest at the G2 phase and reduced the expression of G2-checkpoint regulators (cyclin A2, cyclin B1, cdc25c, and cdc2) and the phosphorylation of their common transcriptional regulator NF-YA in PC-3 cells. With the extensive use of siRNA knockdown experiments and the MEK inhibitor PD98059 in the present study, we dissected the mechanism underlying G-1–induced inhibition of PC-3 cell growth, which was mediated through GPR30, followed by a sustained activation of Erk1/2 and a c-jun/c-fos-dependent upregulation of p21, resulting in the arrest of PC-3 growth at the G2 phase. The discovery of this signaling pathway lays the foundation for future development of GPR30-based therapies for PCa. 2010-03-05 2010-09 /pmc/articles/PMC2897932/ /pubmed/20203690 http://dx.doi.org/10.1038/cdd.2010.20 Text en Users may view, print, copy, download and text and data- mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Chan, Queeny K.Y.
Lam, Hung-Ming
Ng, Chi-Fai
Lee, Amy Y.Y.
Chan, Eddie S.Y.
Ng, Ho-Keung
Ho, Shuk-Mei
Lau, Kin-Mang
Activation of GPR30 inhibits growth of prostate cancer cells via sustained activation of Erk1/2, c-jun/c-fos-dependent upregulation of p21, and induction of G2 cell-cycle arrest
title Activation of GPR30 inhibits growth of prostate cancer cells via sustained activation of Erk1/2, c-jun/c-fos-dependent upregulation of p21, and induction of G2 cell-cycle arrest
title_full Activation of GPR30 inhibits growth of prostate cancer cells via sustained activation of Erk1/2, c-jun/c-fos-dependent upregulation of p21, and induction of G2 cell-cycle arrest
title_fullStr Activation of GPR30 inhibits growth of prostate cancer cells via sustained activation of Erk1/2, c-jun/c-fos-dependent upregulation of p21, and induction of G2 cell-cycle arrest
title_full_unstemmed Activation of GPR30 inhibits growth of prostate cancer cells via sustained activation of Erk1/2, c-jun/c-fos-dependent upregulation of p21, and induction of G2 cell-cycle arrest
title_short Activation of GPR30 inhibits growth of prostate cancer cells via sustained activation of Erk1/2, c-jun/c-fos-dependent upregulation of p21, and induction of G2 cell-cycle arrest
title_sort activation of gpr30 inhibits growth of prostate cancer cells via sustained activation of erk1/2, c-jun/c-fos-dependent upregulation of p21, and induction of g2 cell-cycle arrest
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2897932/
https://www.ncbi.nlm.nih.gov/pubmed/20203690
http://dx.doi.org/10.1038/cdd.2010.20
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