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Published on: May 16, 2020
Targeting mitosis for anti-cancer therapy
Valery Sudakin1, Timothy J Yen
1Department of Oncology Research, GlaxoSmithKline, Collegeville, Pennsylvania, USA.
Abstract:
Basic research that has focused on achieving a mechanistic understanding of mitosis has provided unprecedented molecular and biochemical insights into this highly complex phase of the cell cycle. The discovery process has uncovered an ever-expanding list of novel proteins that orchestrate and coordinate spindle formation and chromosome dynamics during mitosis. That many of these proteins appear to function solely in mitosis makes them ideal targets for the development of mitosis-specific cancer drugs. The clinical successes seen with anti-microtubule drugs such as taxanes and the vinca alkaloids have also encouraged the development of drugs that specifically target mitosis. Drugs that selectively inhibit mitotic kinesins involved in spindle and kinetochore functions, as well as kinases that regulate these activities, are currently in various stages of clinical trials. Our increased understanding of mitosis has also revealed that this process is targeted by inhibitors of farnesyl transferase, histone deacetylase, and Hsp90. Although these drugs were originally designed to block cell proliferation by inhibiting signaling pathways and altering gene expression, it is clear now that these drugs can also directly interfere with the mitotic process. The increased attention to mitosis as a chemotherapeutic target has also raised an important issue regarding the cellular determinants that specify drug sensitivity. One likely contribution is the mitotic checkpoint, a failsafe mechanism that delays mitotic exit so that cells whose chromosomes are not properly attached to the spindle have extra time to correct their errors. As the biochemical activity of the mitotic checkpoint is finite, cells cannot indefinitely sustain the delay, as in cases where cells are treated with anti-mitotic drugs. When the mitotic checkpoint activity is eventually lost, cells will exit mitosis and become aneuploid. While many of the aneuploid cells may die because of massive chromosome imbalance, survivors that continue to proliferate will no doubt be selected. This is clearly an undesirable outcome, thus efforts to obtain fundamental insights into why some cells that arrest in mitosis die without exiting mitosis will be exceedingly important in enhancing our understanding of the drug sensitivity of cancer cells.
Insights
Understanding mitosis is key to developing new cancer drugs. Research reveals mitotic proteins and checkpoints as targets, influencing cancer cell drug sensitivity and aneuploidy outcomes.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Therapeutics
Background:
- Mitosis research provides molecular insights into cell cycle regulation.
- Novel proteins orchestrating spindle formation and chromosome dynamics in mitosis have been discovered.
Purpose of the Study:
- To explore mitosis as a target for cancer drug development.
- To understand the role of mitotic processes and checkpoints in cancer drug sensitivity.
Main Methods:
- Review of basic research on mitosis.
- Analysis of clinical trials for novel mitotic inhibitors.
- Investigation of the mitotic checkpoint's role in drug response.
Main Results:
- Mitotic proteins are ideal targets for cancer drugs.
- Drugs targeting mitotic kinesins, kinases, farnesyl transferase, histone deacetylase, and Hsp90 are in clinical trials.
- The mitotic checkpoint influences drug sensitivity, with its failure leading to aneuploidy.
Conclusions:
- Targeting mitosis offers a promising avenue for cancer therapy.
- Understanding the mitotic checkpoint is crucial for predicting and enhancing cancer drug efficacy.
- Further research into why some cells die during mitotic arrest is needed to improve cancer treatment outcomes.
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