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Updated: May 3, 2026

RhoC GTPase Activation Assay
Published on: August 22, 2010
Genistein induces cytokinesis failure through RhoA delocalization and anaphase chromosome bridging
Yuji Nakayama1, Youhei Saito, Shuhei Soeda
1Department of Biochemistry and Molecular Biology, Kyoto Pharmaceutical University, Kyoto, 607-8414, Japan; Department of Molecular Cell Biology, Graduate School of Pharmaceutical Sciences, Chiba University, Chiba, 260-8675, Japan.
Abstract:
Genistein, an isoflavone abundantly present in soybeans, possesses anticancer properties and induces growth inhibition including cell cycle arrest and apoptosis. Although abnormal cell division, such as defects in chromosome segregation and spindle formation, and polyploidization have been described, the mechanisms underlying the induction of abnormal cell division are unknown. In this study, we examined the effect of genistein on cell division in cells that are synchronized in M phase, since genistein treatment delays mitotic entry in asynchronous cells. HeLa S3 cells were arrested at the G2 phase and subsequently released into the M phase in presence of genistein. Immunofluorescence staining showed that genistein treatment delays M phase progression. Time-lapse analysis revealed that the delay occurs until anaphase onset. In addition, genistein treatment induces cleavage furrow regression, resulting in the generation of binucleated cells. Central spindle formation, which is essential for cytokinesis, is partially disrupted in genistein-treated cells. Moreover, aberrant chromosome segregation, such as a chromosome bridge and lagging chromosome, occurs through progression of cytokinesis. RhoA, which plays a role in the assembly and constriction of an actomyosin contractile ring, is delocalized from the cortex of the ingressing cleavage furrow. These results suggest that genistein treatment induces binucleated cell formation through cleavage furrow regression, which is accompanied by chromosome bridge formation and RhoA delocalization. Our results provide the mechanism that underlies genistein-induced polyploidization, which may be involved in genistein-induced growth inhibition.
Insights
Genistein, a soy isoflavone, causes abnormal cell division by disrupting cytokinesis and chromosome segregation. This leads to binucleated cells and polyploidization, potentially explaining its anticancer effects.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Genistein, an isoflavone from soybeans, exhibits anticancer properties by inhibiting cell growth, inducing cell cycle arrest, and promoting apoptosis.
- Previous studies noted genistein's role in abnormal cell division, including defects in chromosome segregation and polyploidization, but the underlying mechanisms remained unclear.
Purpose of the Study:
- To elucidate the mechanisms by which genistein induces abnormal cell division.
- To investigate the effects of genistein on cell division progression, focusing on M phase.
- To determine how genistein treatment leads to polyploidization.
Main Methods:
- Synchronized HeLa S3 cells were arrested in G2 phase and released into M phase with genistein treatment.
- Immunofluorescence staining and time-lapse microscopy were used to analyze cell division.
- Analysis included M phase progression, cleavage furrow formation, chromosome segregation, and RhoA localization.
Main Results:
- Genistein treatment delayed M phase progression until anaphase onset.
- Cleavage furrow regression and binucleated cell formation were observed.
- Central spindle formation was partially disrupted, leading to chromosome bridges and lagging chromosomes.
- RhoA delocalized from the cell cortex, impairing contractile ring function.
Conclusions:
- Genistein induces binucleated cell formation via cleavage furrow regression, associated with chromosome segregation errors and RhoA delocalization.
- These findings reveal the mechanism of genistein-induced polyploidization.
- The study suggests genistein-induced polyploidization contributes to its growth inhibitory effects in cancer cells.
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