Cargando…

A Derivate of Benzimidazole-Isoquinolinone Induces SKP2 Transcriptional Inhibition to Exert Anti-Tumor Activity in Glioblastoma Cells

We have previously shown that compound-7g inhibits colorectal cancer cell proliferation and survival by inducing cell cycle arrest and PI3K/AKT/mTOR pathway blockage. However, whether it has the ability to exert antitumor activity in other cancer cells and what is the exact molecular mechanism for i...

Descripción completa

Detalles Bibliográficos
Autores principales: Chen, He-ying, He, Liu-jun, Li, Shi-qiang, Zhang, Ya-jun, Huang, Jiu-hong, Qin, Hong-xia, Wang, Juan-li, Li, Qian-yin, Yang, Dong-lin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6695871/
https://www.ncbi.nlm.nih.gov/pubmed/31357480
http://dx.doi.org/10.3390/molecules24152722
_version_ 1783444136698839040
author Chen, He-ying
He, Liu-jun
Li, Shi-qiang
Zhang, Ya-jun
Huang, Jiu-hong
Qin, Hong-xia
Wang, Juan-li
Li, Qian-yin
Yang, Dong-lin
author_facet Chen, He-ying
He, Liu-jun
Li, Shi-qiang
Zhang, Ya-jun
Huang, Jiu-hong
Qin, Hong-xia
Wang, Juan-li
Li, Qian-yin
Yang, Dong-lin
author_sort Chen, He-ying
collection PubMed
description We have previously shown that compound-7g inhibits colorectal cancer cell proliferation and survival by inducing cell cycle arrest and PI3K/AKT/mTOR pathway blockage. However, whether it has the ability to exert antitumor activity in other cancer cells and what is the exact molecular mechanism for its antiproliferation effect remained to be determined. In the present study, compound-7g exhibited strong activity in suppressing proliferation and growth of glioblastoma cells. The inhibitor selectively downregulated F-box protein SKP2 expression and upregulated cell cycle inhibitor p27, and then resulted in G1 cell cycle arrest. Mechanism analysis revealed that compound-7g also provokes the down-regulation of E2F-1, which acts as a transcriptional factor of SKP2. Further results indicated that compound-7g induced an increase of LC3B-II and p62, which causes a suppression of fusion between autophagosome and lysosome. Moreover, compound-7g mediated autophagic flux blockage promoted accumulation of ubiquitinated proteins and then led to endoplasmic reticulum stress. Our study thus demonstrated that pharmacological inactivation of E2F-1-SKP2-p27 axis is a promising target for restricting cancer progression.
format Online
Article
Text
id pubmed-6695871
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-66958712019-09-05 A Derivate of Benzimidazole-Isoquinolinone Induces SKP2 Transcriptional Inhibition to Exert Anti-Tumor Activity in Glioblastoma Cells Chen, He-ying He, Liu-jun Li, Shi-qiang Zhang, Ya-jun Huang, Jiu-hong Qin, Hong-xia Wang, Juan-li Li, Qian-yin Yang, Dong-lin Molecules Article We have previously shown that compound-7g inhibits colorectal cancer cell proliferation and survival by inducing cell cycle arrest and PI3K/AKT/mTOR pathway blockage. However, whether it has the ability to exert antitumor activity in other cancer cells and what is the exact molecular mechanism for its antiproliferation effect remained to be determined. In the present study, compound-7g exhibited strong activity in suppressing proliferation and growth of glioblastoma cells. The inhibitor selectively downregulated F-box protein SKP2 expression and upregulated cell cycle inhibitor p27, and then resulted in G1 cell cycle arrest. Mechanism analysis revealed that compound-7g also provokes the down-regulation of E2F-1, which acts as a transcriptional factor of SKP2. Further results indicated that compound-7g induced an increase of LC3B-II and p62, which causes a suppression of fusion between autophagosome and lysosome. Moreover, compound-7g mediated autophagic flux blockage promoted accumulation of ubiquitinated proteins and then led to endoplasmic reticulum stress. Our study thus demonstrated that pharmacological inactivation of E2F-1-SKP2-p27 axis is a promising target for restricting cancer progression. MDPI 2019-07-26 /pmc/articles/PMC6695871/ /pubmed/31357480 http://dx.doi.org/10.3390/molecules24152722 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Chen, He-ying
He, Liu-jun
Li, Shi-qiang
Zhang, Ya-jun
Huang, Jiu-hong
Qin, Hong-xia
Wang, Juan-li
Li, Qian-yin
Yang, Dong-lin
A Derivate of Benzimidazole-Isoquinolinone Induces SKP2 Transcriptional Inhibition to Exert Anti-Tumor Activity in Glioblastoma Cells
title A Derivate of Benzimidazole-Isoquinolinone Induces SKP2 Transcriptional Inhibition to Exert Anti-Tumor Activity in Glioblastoma Cells
title_full A Derivate of Benzimidazole-Isoquinolinone Induces SKP2 Transcriptional Inhibition to Exert Anti-Tumor Activity in Glioblastoma Cells
title_fullStr A Derivate of Benzimidazole-Isoquinolinone Induces SKP2 Transcriptional Inhibition to Exert Anti-Tumor Activity in Glioblastoma Cells
title_full_unstemmed A Derivate of Benzimidazole-Isoquinolinone Induces SKP2 Transcriptional Inhibition to Exert Anti-Tumor Activity in Glioblastoma Cells
title_short A Derivate of Benzimidazole-Isoquinolinone Induces SKP2 Transcriptional Inhibition to Exert Anti-Tumor Activity in Glioblastoma Cells
title_sort derivate of benzimidazole-isoquinolinone induces skp2 transcriptional inhibition to exert anti-tumor activity in glioblastoma cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6695871/
https://www.ncbi.nlm.nih.gov/pubmed/31357480
http://dx.doi.org/10.3390/molecules24152722
work_keys_str_mv AT chenheying aderivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells
AT heliujun aderivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells
AT lishiqiang aderivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells
AT zhangyajun aderivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells
AT huangjiuhong aderivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells
AT qinhongxia aderivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells
AT wangjuanli aderivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells
AT liqianyin aderivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells
AT yangdonglin aderivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells
AT chenheying derivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells
AT heliujun derivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells
AT lishiqiang derivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells
AT zhangyajun derivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells
AT huangjiuhong derivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells
AT qinhongxia derivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells
AT wangjuanli derivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells
AT liqianyin derivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells
AT yangdonglin derivateofbenzimidazoleisoquinolinoneinducesskp2transcriptionalinhibitiontoexertantitumoractivityinglioblastomacells