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Cell cycle-dependent Rho GTPase activity dynamically regulates cancer cell motility and invasion in vivo

Authors :
Junichi Kikuta
Sakae Maeda
Masaru Ishii
Taeko Ishii
Tsunekazu Mizushima
Naohiro Nishida
Mitsugu Sekimoto
Shinji Matsumoto
Atsushi Naito
Koshi Mimori
Naotsugu Haraguchi
Yuji Kamioka
Daisuke Okuzaki
Michiyuki Matsuda
Masataka Ikeda
Masaki Mori
Junichi Nishimura
Keizo Nishikawa
Yoko Naito
Akira Kikuchi
Hideshi Ishii
Yoshinori Kagawa
Yuichiro Doki
Hirofumi Yamamoto
Ichiro Takemasa
Source :
PLoS ONE, Vol 8, Iss 12, p e83629 (2013), PLoS ONE
Publication Year :
2013
Publisher :
Public Library of Science (PLoS), 2013.

Abstract

The mechanism behind the spatiotemporal control of cancer cell dynamics and its possible association with cell proliferation has not been well established. By exploiting the intravital imaging technique, we found that cancer cell motility and invasive properties were closely associated with the cell cycle. In vivo inoculation of human colon cancer cells bearing fluorescence ubiquitination-based cell cycle indicator (Fucci) demonstrated an unexpected phenomenon: S/G2/M cells were more motile and invasive than G1 cells. Microarray analyses showed that Arhgap11a, an uncharacterized Rho GTPase-activating protein (RhoGAP), was expressed in a cell-cycle-dependent fashion. Expression of ARHGAP11A in cancer cells suppressed RhoA-dependent mechanisms, such as stress fiber formation and focal adhesion, which made the cells more prone to migrate. We also demonstrated that RhoA suppression by ARHGAP11A induced augmentation of relative Rac1 activity, leading to an increase in the invasive properties. RNAi-based inhibition of Arhgap11a reduced the invasion and in vivo expansion of cancers. Additionally, analysis of human specimens showed the significant up-regulation of Arhgap11a in colon cancers, which was correlated with clinical invasion status. The present study suggests that ARHGAP11A, a cell cycle-dependent RhoGAP, is a critical regulator of cancer cell mobility and is thus a promising therapeutic target in invasive cancers.

Details

Language :
English
ISSN :
19326203
Volume :
8
Issue :
12
Database :
OpenAIRE
Journal :
PLoS ONE
Accession number :
edsair.doi.dedup.....03b9c7127eeb3c07c494d4df6d5d8f12