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Cell Death Associated with Abnormal Mitosis Observed by Confocal Imaging in Live Cancer Cells
Published on: August 21, 2013
Arsenic trioxide induces abnormal mitotic spindles through a PIP4KIIγ/Rho pathway
Ling-Huei Yih1, Yi-Chen Wu, Nai-Chi Hsu
1Institute of Cellular and Organismic Biology, Academia Sinica, Taipei 115, Taiwan, Republic of China. lhyih@gate.sinica.edu.tw
Abstract:
Arsenite-induced spindle abnormalities result in mitotic cell apoptosis in several cancer cell lines, but how arsenite induces these effects is not known. Evidence to date has revealed that arsenite activates Rho guanosine triphosphatases (GTPases). Because Rho GTPases regulate spindle orientation, chromosome congression, and cytokinesis, we therefore examined the involvement of Rho GTPases and their modulators in arsenite-induced mitotic abnormalities. We demonstrated that arsenic trioxide (ATO) disrupted the positioning of bipolar mitotic spindles and induced centrosome and spindle abnormalities. ATO increased the level of the active guanosine triphosphate-bound form of Rho. Inhibition of Rho-associated protein kinases (ROCKs) by Y-27632 ameliorated ATO-induced spindle defects, mitotic arrest, and cell death. These results indicate that ATO may induce spindle abnormalities and mitotic cell death through a Rho/ROCK pathway. In addition, screening of a human kinase and phosphatase shRNA library to select genes that mediate ATO induction of spindle abnormalities resulted in the identification of phosphatidylinositol-5-phosphate 4-kinase type-2 gamma (PIP4KIIγ), a phosphatidylinositol 4,5-biphosphate (PIP2) synthesis enzyme that belongs to the phosphatidylinositol phosphate kinase (PIPK) family. Sequestration of PIP2 by ectopic overexpression of the pleckstrin homology domain of phospholipase C-δ1 protected cells from ATO-induced cell death. Furthermore, depletion of PIP4KIIγ, but not other isoforms of the PIPK family, not only reduced Rho GTPase activation in ATO-treated cells but also alleviated ATO-induced spindle defects, mitotic arrest, and mitotic cell apoptosis. Thus, our results imply that ATO induces abnormalities in mitotic spindles through a PIP4KIIγ/Rho pathway, leading to apoptosis of mitotic cells.
Insights
Arsenic trioxide (ATO) causes cancer cell death by disrupting mitotic spindles via the Rho/ROCK pathway. It also involves PIP4KIIγ in regulating Rho GTPase activation, leading to spindle abnormalities and apoptosis.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Arsenite exposure is known to induce mitotic cell apoptosis, but the underlying mechanisms remain unclear.
- Rho guanosine triphosphatases (GTPases) are involved in regulating key mitotic processes like spindle orientation and chromosome congression.
Purpose of the Study:
- To investigate the role of Rho GTPases and their modulators in arsenite-induced mitotic abnormalities.
- To identify specific molecular pathways involved in arsenic trioxide (ATO)-induced mitotic defects and cell death.
Main Methods:
- Treatment of cancer cell lines with arsenic trioxide (ATO).
- Assay of Rho GTPase activation and Rho-associated protein kinases (ROCKs) activity.
- Utilized a kinase and phosphatase shRNA library to identify mediating genes.
- Manipulated phosphatidylinositol-5-phosphate 4-kinase type-2 gamma (PIP4KIIγ) and phosphatidylinositol 4,5-biphosphate (PIP2) levels.
Main Results:
- ATO disrupted mitotic spindle positioning and induced centrosome abnormalities.
- ATO increased active Rho GTPase levels; inhibition of ROCKs ameliorated ATO-induced defects.
- PIP4KIIγ was identified as a key mediator, and its depletion reduced Rho activation and ATO-induced apoptosis.
- PIP2 sequestration protected cells from ATO-induced death, highlighting its role in the pathway.
Conclusions:
- ATO induces mitotic spindle abnormalities and cell apoptosis through a Rho/ROCK pathway.
- The PIP4KIIγ/Rho pathway is crucial for ATO's effects on mitotic spindles and subsequent apoptosis in cancer cells.
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