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ATG7 Overexpression Is Crucial for Tumorigenic Growth of Bladder Cancer In Vitro and In Vivo by Targeting the ETS2/miRNA196b/FOXO1/p27 Axis

Human bladder cancer (BC) is the fourth most common cancer in the United States. Investigation of the strategies aiming to elucidate the tumor growth and metastatic pathways in BC is critical for the management of this disease. Here we found that ATG7 expression was remarkably elevated in human blad...

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Autores principales: Zhu, Junlan, Li, Yang, Tian, Zhongxian, Hua, Xiaohui, Gu, Jiayan, Li, Jingxia, Liu, Claire, Jin, Honglei, Wang, Yulei, Jiang, Guosong, Huang, Haishan, Huang, Chuanshu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society of Gene & Cell Therapy 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5415961/
https://www.ncbi.nlm.nih.gov/pubmed/28624205
http://dx.doi.org/10.1016/j.omtn.2017.04.012
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author Zhu, Junlan
Li, Yang
Tian, Zhongxian
Hua, Xiaohui
Gu, Jiayan
Li, Jingxia
Liu, Claire
Jin, Honglei
Wang, Yulei
Jiang, Guosong
Huang, Haishan
Huang, Chuanshu
author_facet Zhu, Junlan
Li, Yang
Tian, Zhongxian
Hua, Xiaohui
Gu, Jiayan
Li, Jingxia
Liu, Claire
Jin, Honglei
Wang, Yulei
Jiang, Guosong
Huang, Haishan
Huang, Chuanshu
author_sort Zhu, Junlan
collection PubMed
description Human bladder cancer (BC) is the fourth most common cancer in the United States. Investigation of the strategies aiming to elucidate the tumor growth and metastatic pathways in BC is critical for the management of this disease. Here we found that ATG7 expression was remarkably elevated in human bladder urothelial carcinoma and N-butyl-N-(4-hydroxybutyl)nitrosamine (BBN)-induced mouse invasive BC. Knockdown of ATG7 resulted in a significant inhibitory effect on tumorigenic growth of human BC cells both in vitro and in vivo by promoting p27 expression and inducing cell cycle arrest at G2/M phase. We further demonstrated that knockdown of ATG7 upregulated FOXO1 (forkhead box protein O 1) expression, which specifically promoted p27 transcription. Moreover, mechanistic studies revealed that inhibition of ATG7 stabilized ETS2 mRNA and, in turn, reduced miR-196b transcription and expression of miR-196b, which was able to bind to the 3′ UTR of FOXO1 mRNA, consequently stabilizing FOXO1 mRNA and finally promoting p27 transcription and attenuating BC tumorigenic growth. The identification of the ATG7/FOXO1/p27 mechanism for promoting BC cell growth provides significant insights into understanding the nature of BC tumorigenesis. Together with our most recent discovery of the crucial role of ATG7 in promoting BC invasion, it raises the potential for developing an ATG7-based specific therapeutic strategy for treatment of human BC patients.
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spelling pubmed-54159612017-05-05 ATG7 Overexpression Is Crucial for Tumorigenic Growth of Bladder Cancer In Vitro and In Vivo by Targeting the ETS2/miRNA196b/FOXO1/p27 Axis Zhu, Junlan Li, Yang Tian, Zhongxian Hua, Xiaohui Gu, Jiayan Li, Jingxia Liu, Claire Jin, Honglei Wang, Yulei Jiang, Guosong Huang, Haishan Huang, Chuanshu Mol Ther Nucleic Acids Original Article Human bladder cancer (BC) is the fourth most common cancer in the United States. Investigation of the strategies aiming to elucidate the tumor growth and metastatic pathways in BC is critical for the management of this disease. Here we found that ATG7 expression was remarkably elevated in human bladder urothelial carcinoma and N-butyl-N-(4-hydroxybutyl)nitrosamine (BBN)-induced mouse invasive BC. Knockdown of ATG7 resulted in a significant inhibitory effect on tumorigenic growth of human BC cells both in vitro and in vivo by promoting p27 expression and inducing cell cycle arrest at G2/M phase. We further demonstrated that knockdown of ATG7 upregulated FOXO1 (forkhead box protein O 1) expression, which specifically promoted p27 transcription. Moreover, mechanistic studies revealed that inhibition of ATG7 stabilized ETS2 mRNA and, in turn, reduced miR-196b transcription and expression of miR-196b, which was able to bind to the 3′ UTR of FOXO1 mRNA, consequently stabilizing FOXO1 mRNA and finally promoting p27 transcription and attenuating BC tumorigenic growth. The identification of the ATG7/FOXO1/p27 mechanism for promoting BC cell growth provides significant insights into understanding the nature of BC tumorigenesis. Together with our most recent discovery of the crucial role of ATG7 in promoting BC invasion, it raises the potential for developing an ATG7-based specific therapeutic strategy for treatment of human BC patients. American Society of Gene & Cell Therapy 2017-04-14 /pmc/articles/PMC5415961/ /pubmed/28624205 http://dx.doi.org/10.1016/j.omtn.2017.04.012 Text en © 2017 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Original Article
Zhu, Junlan
Li, Yang
Tian, Zhongxian
Hua, Xiaohui
Gu, Jiayan
Li, Jingxia
Liu, Claire
Jin, Honglei
Wang, Yulei
Jiang, Guosong
Huang, Haishan
Huang, Chuanshu
ATG7 Overexpression Is Crucial for Tumorigenic Growth of Bladder Cancer In Vitro and In Vivo by Targeting the ETS2/miRNA196b/FOXO1/p27 Axis
title ATG7 Overexpression Is Crucial for Tumorigenic Growth of Bladder Cancer In Vitro and In Vivo by Targeting the ETS2/miRNA196b/FOXO1/p27 Axis
title_full ATG7 Overexpression Is Crucial for Tumorigenic Growth of Bladder Cancer In Vitro and In Vivo by Targeting the ETS2/miRNA196b/FOXO1/p27 Axis
title_fullStr ATG7 Overexpression Is Crucial for Tumorigenic Growth of Bladder Cancer In Vitro and In Vivo by Targeting the ETS2/miRNA196b/FOXO1/p27 Axis
title_full_unstemmed ATG7 Overexpression Is Crucial for Tumorigenic Growth of Bladder Cancer In Vitro and In Vivo by Targeting the ETS2/miRNA196b/FOXO1/p27 Axis
title_short ATG7 Overexpression Is Crucial for Tumorigenic Growth of Bladder Cancer In Vitro and In Vivo by Targeting the ETS2/miRNA196b/FOXO1/p27 Axis
title_sort atg7 overexpression is crucial for tumorigenic growth of bladder cancer in vitro and in vivo by targeting the ets2/mirna196b/foxo1/p27 axis
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5415961/
https://www.ncbi.nlm.nih.gov/pubmed/28624205
http://dx.doi.org/10.1016/j.omtn.2017.04.012
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