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GABARAPL1 suppresses metastasis by counteracting PI3K/Akt pathway in prostate cancer

Metastasis remains the primary cause of prostate cancer (CaP)-related death. Using a genome wide shRNA screen, we identified GABARAPL1 as a potential CaP metastasis suppressor. GABARAPL1 mRNA levels inversely correlate with the invasive potential of a panel of human CaP cell lines. Lower mRNA levels...

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Autores principales: Su, Wei, Li, Shibao, Chen, Xiaofan, Yin, Lingyu, Ma, Ping, Ma, Yingyu, Su, Bing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5354845/
https://www.ncbi.nlm.nih.gov/pubmed/27966458
http://dx.doi.org/10.18632/oncotarget.13879
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author Su, Wei
Li, Shibao
Chen, Xiaofan
Yin, Lingyu
Ma, Ping
Ma, Yingyu
Su, Bing
author_facet Su, Wei
Li, Shibao
Chen, Xiaofan
Yin, Lingyu
Ma, Ping
Ma, Yingyu
Su, Bing
author_sort Su, Wei
collection PubMed
description Metastasis remains the primary cause of prostate cancer (CaP)-related death. Using a genome wide shRNA screen, we identified GABARAPL1 as a potential CaP metastasis suppressor. GABARAPL1 mRNA levels inversely correlate with the invasive potential of a panel of human CaP cell lines. Lower mRNA levels correlate with higher Gleason scores in clinical CaP tumor samples. Moreover, Kaplan-Meier curves analysis showed that GABARAPL1 down-regulation in cancer tissues is associated with decreased disease-free survival in CaP patients. Knockdown of GABARAPL1 in human LNCaP cells results in increased invasion in vitro and lymph node metastasis in vivo. Vice versa, ectopic expression of GABARAPL1 decreases the invasiveness of CWR22Rv1 cells. Our previous in vitro shRNA screening identified FOXO4, a PI3K/Akt-inactivating downstream target, as a potential CaP metastasis suppressor. We show here that silencing FOXOs leads to reduced GABARAPL1 expression and enhanced invasion in LNCaP cells. Transfection of constitutively-activated Akt (myr-Akt) increased the invasion of LNCaP cells, which is associated with the inactivation of FOXOs and decreased GABARAPL1 expression. Indeed, forced expression of GABARAPL1 reversed the increased invasiveness of LNCaP/myr-Akt cells. Finally, immunohistochemistry analysis shows that Akt phosphorylation is negatively correlated with GABARAPL1 expression in human CaP tissues. Taken together, our data indicate that the suppression of FOXOs-GABARAPL1 signaling by Akt is an important mechanism for CaP progression and metastasis.
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spelling pubmed-53548452017-04-24 GABARAPL1 suppresses metastasis by counteracting PI3K/Akt pathway in prostate cancer Su, Wei Li, Shibao Chen, Xiaofan Yin, Lingyu Ma, Ping Ma, Yingyu Su, Bing Oncotarget Research Paper Metastasis remains the primary cause of prostate cancer (CaP)-related death. Using a genome wide shRNA screen, we identified GABARAPL1 as a potential CaP metastasis suppressor. GABARAPL1 mRNA levels inversely correlate with the invasive potential of a panel of human CaP cell lines. Lower mRNA levels correlate with higher Gleason scores in clinical CaP tumor samples. Moreover, Kaplan-Meier curves analysis showed that GABARAPL1 down-regulation in cancer tissues is associated with decreased disease-free survival in CaP patients. Knockdown of GABARAPL1 in human LNCaP cells results in increased invasion in vitro and lymph node metastasis in vivo. Vice versa, ectopic expression of GABARAPL1 decreases the invasiveness of CWR22Rv1 cells. Our previous in vitro shRNA screening identified FOXO4, a PI3K/Akt-inactivating downstream target, as a potential CaP metastasis suppressor. We show here that silencing FOXOs leads to reduced GABARAPL1 expression and enhanced invasion in LNCaP cells. Transfection of constitutively-activated Akt (myr-Akt) increased the invasion of LNCaP cells, which is associated with the inactivation of FOXOs and decreased GABARAPL1 expression. Indeed, forced expression of GABARAPL1 reversed the increased invasiveness of LNCaP/myr-Akt cells. Finally, immunohistochemistry analysis shows that Akt phosphorylation is negatively correlated with GABARAPL1 expression in human CaP tissues. Taken together, our data indicate that the suppression of FOXOs-GABARAPL1 signaling by Akt is an important mechanism for CaP progression and metastasis. Impact Journals LLC 2016-12-10 /pmc/articles/PMC5354845/ /pubmed/27966458 http://dx.doi.org/10.18632/oncotarget.13879 Text en Copyright: © 2017 Su et al. http://creativecommons.org/licenses/by/3.0/ 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 credited.
spellingShingle Research Paper
Su, Wei
Li, Shibao
Chen, Xiaofan
Yin, Lingyu
Ma, Ping
Ma, Yingyu
Su, Bing
GABARAPL1 suppresses metastasis by counteracting PI3K/Akt pathway in prostate cancer
title GABARAPL1 suppresses metastasis by counteracting PI3K/Akt pathway in prostate cancer
title_full GABARAPL1 suppresses metastasis by counteracting PI3K/Akt pathway in prostate cancer
title_fullStr GABARAPL1 suppresses metastasis by counteracting PI3K/Akt pathway in prostate cancer
title_full_unstemmed GABARAPL1 suppresses metastasis by counteracting PI3K/Akt pathway in prostate cancer
title_short GABARAPL1 suppresses metastasis by counteracting PI3K/Akt pathway in prostate cancer
title_sort gabarapl1 suppresses metastasis by counteracting pi3k/akt pathway in prostate cancer
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5354845/
https://www.ncbi.nlm.nih.gov/pubmed/27966458
http://dx.doi.org/10.18632/oncotarget.13879
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