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Selective and irreversible cell cycle inhibition by diphenyleneiodonium
1Laboratory for Cancer Medicine, Western Australian Institute for Medical Research, Centre for Medical Research, The University of Western Australia. rscaife@cyllene.uwa.edu.au
Abstract:
Because cell proliferation is subject to checkpoint-mediated regulation of the cell cycle, pharmacophores that target cell cycle checkpoints have been used clinically to treat human hyperproliferative disorders. It is shown here that the flavoprotein inhibitor diphenyleneiodionium can block cell proliferation by targeting of cell cycle checkpoints. Brief exposure of mitotically arrested cells to diphenyleneiodonium induces a loss of the mitotic cell morphology, and this corresponds with a decrease in the levels of the mitotic markers MPM2 and phospho-histone H3, as well as a loss of centrosome maturation, spindle disassembly, and redistribution of the chromatin remodeling helicase ATRX. Surprisingly, this mitotic exit resulted in a tetraploidization that persisted long after drug release. Analogously, brief exposure to diphenyleneiodonium also caused prolonged arrest in G(1) phase. By contrast, diphenyleneiodonium exposure did not abrogate S phase, although it did result in a subsequent block of G(2) cell cycle progression. This indicates that diphenyleneiodonium selectively targets components of the cell cycle, thereby either causing cell cycle arrest, or checkpoint override followed by cell cycle arrest. These irreversible effects of diphenyleneiodonium on the cell cycle may underlie its potent antiproliferative activity.
Insights
Diphenyleneiodonium, a cell cycle inhibitor, blocks cell proliferation by targeting cell cycle checkpoints. This compound causes irreversible cell cycle arrest and tetraploidization, suggesting potent antiproliferative activity.
Area of Science:
- Cell Biology
- Pharmacology
- Cancer Research
Background:
- Cell proliferation is tightly regulated by cell cycle checkpoints.
- Pharmacophores targeting cell cycle checkpoints are used to treat hyperproliferative disorders.
Purpose of the Study:
- To investigate the effects of diphenyleneiodonium (DPI) on cell proliferation and cell cycle regulation.
- To determine if DPI targets cell cycle checkpoints.
Main Methods:
- Treatment of mitotically arrested cells with diphenyleneiodonium.
- Analysis of cell morphology, mitotic markers (MPM2, phospho-histone H3), centrosome maturation, spindle assembly, and ATRX localization.
- Assessment of cell cycle progression (G1, S, G2 phases) and ploidy after drug exposure.
Main Results:
- Diphenyleneiodonium induced loss of mitotic morphology, decreased mitotic markers, and disrupted centrosome/spindle function.
- Brief DPI exposure led to persistent tetraploidization and prolonged G1 arrest.
- DPI did not affect S phase but caused a subsequent G2 block, indicating selective cell cycle targeting.
Conclusions:
- Diphenyleneiodonium selectively targets cell cycle components, leading to arrest or checkpoint override.
- The irreversible effects of DPI on the cell cycle underpin its potent antiproliferative activity.
- DPI shows potential as a therapeutic agent for hyperproliferative disorders.
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