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Updated: Jun 3, 2026

Through the Looking Glass: Time-lapse Microscopy and Longitudinal Tracking of Single Cells to Study Anti-cancer Therapeutics
Published on: May 14, 2016
Cell cycle-dependent cytotoxicity and mitotic spindle checkpoint dependency of investigational and approved
Martina Birk1, Alexander Bürkle, Klaus Pekari
1Nycomed GmbH, Discovery to Development Research, Byk-Gulden-Str 2, D-78467 Konstanz, Germany.
Abstract:
The mitotic spindle checkpoint (SPC) is a highly regulated mechanism in eukaryotic cells that ensures the even distribution of the duplicated genome between daughter cells. Malfunction of the SPC or deregulated expression of SPC regulatory proteins is frequently associated with a poor response to chemotherapeutic agents. We investigated various approved and investigational mitosis-specific agents, including spindle poisons, an Eg5 kinesin inhibitor, inhibitors of polo-like kinase 1 (Plk1) or Aurora-B kinase, a benzamide class HDAC inhibitor and compounds identified in a chemical genetics screen for their cell cycle-dependent cytotoxicities and for their activities toward SPC deficient (HT29, Caco-2, T47D) and SPC proficient human cell lines (A2780, HCT116, SW480). Using the RKOp27 cell system that allows inducible cell cycle arrest by the tunable expression of the cdk inhibitor p27Kip1, we found an exquisite proliferation-dependent cytotoxicity for all compounds except the aurora kinase inhibitor VX-680. Cytotoxicity of the antimitotic compounds was in general higher on SPC proficient than on deficient cells. We found two exceptions, a benzamide HDAC inhibitor which was effective on SPC proficient and deficient cells and an investigational compound, BYK72767, with a yet unknown mode of action. The degree of increased mitotic index was no predictor of cytotoxicity of the compounds nor was the phosphorylation of BubR1. However, SPC deficient cell lines were able to tolerate mitotic arrest for far longer times than SPC proficient cells. We conclude that targeting of SPC deficient cancers with novel antimitotic principles remains a challenge but certain drug classes may be equally efficacious regardless of SPC status.
Insights
The mitotic spindle checkpoint (SPC) ensures accurate genome distribution. Certain antimitotic drugs show varying efficacy based on SPC status, posing challenges for targeting deficient cancers.
Area of Science:
- Cell Biology
- Molecular Oncology
- Pharmacology
Background:
- The mitotic spindle checkpoint (SPC) is crucial for eukaryotic genome stability.
- SPC dysfunction is linked to poor chemotherapy response.
- Antimitotic agents target cell division but their efficacy varies with SPC status.
Purpose of the Study:
- To evaluate the cell cycle-dependent cytotoxicity of various antimitotic agents.
- To compare drug activity in SPC-proficient versus SPC-deficient human cell lines.
- To identify potential drug classes effective against SPC-deficient cancers.
Main Methods:
- Utilized the RKOp27 cell system for inducible cell cycle arrest.
- Tested approved and investigational mitosis-specific agents (spindle poisons, Eg5, Plk1, Aurora-B kinase inhibitors, HDAC inhibitor, chemical genetics screen compounds).
- Assessed cytotoxicity and mitotic index in SPC-proficient and SPC-deficient cell lines.
Main Results:
- Most compounds exhibited proliferation-dependent cytotoxicity, except the Aurora kinase inhibitor VX-680.
- Antimitotic compounds were generally more cytotoxic to SPC-proficient cells.
- A benzamide HDAC inhibitor and investigational compound BYK72767 showed efficacy in both SPC-proficient and deficient cells.
- SPC-deficient cells tolerated mitotic arrest longer than SPC-proficient cells.
Conclusions:
- Targeting SPC-deficient cancers with novel antimitotics presents challenges.
- Certain drug classes, like specific HDAC inhibitors, may be effective irrespective of SPC status.
- Further research is needed to develop effective antimitotic strategies for SPC-deficient cancers.
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