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Updated: May 17, 2026

Live Cell Imaging of Chromosome Segregation During Mitosis
Published on: March 14, 2018
A screen for selective killing of cells with chromosomal instability induced by a spindle checkpoint defect
Zeeshan Shaukat1, Heidi W S Wong, Shannon Nicolson
1School of Molecular and Biomedical Sciences, University of Adelaide, Adelaide, South Australia, Australia.
Background:
The spindle assembly checkpoint is crucial for the maintenance of a stable chromosome number. Defects in the checkpoint lead to Chromosomal INstability (CIN), which is linked to the progression of tumors with poor clinical outcomes such as drug resistance and metastasis. As CIN is not found in normal cells, it offers a cancer-specific target for therapy, which may be particularly valuable because CIN is common in advanced tumours that are resistant to conventional therapy.
Principal Findings:
Here we identify genes that are required for the viability of cells with a CIN phenotype. We have used RNAi knockdown of the spindle assembly checkpoint to induce CIN in Drosophila and then screened the set of kinase and phosphatase genes by RNAi knockdown to identify those that induce apoptosis only in the CIN cells. Genes identified include those involved in JNK signaling pathways and mitotic cytoskeletal regulation.
Conclusions/Significance:
The screen demonstrates that it is feasible to selectively kill cells with CIN induced by spindle checkpoint defects. It has identified candidates that are currently being pursued as cancer therapy targets (e.g. Nek2: NIMA related kinase 2), confirming that the screen is able to identify promising drug targets of clinical significance. In addition, several other candidates were identified that have no previous connection with mitosis or apoptosis. Further screening and detailed characterization of the candidates could potentially lead to the therapies that specifically target advanced cancers that exhibit CIN.
Insights
Researchers identified genes essential for cancer cell survival by inducing chromosomal instability (CIN). This discovery offers a new strategy for targeting advanced tumors resistant to conventional therapies.
Area of Science:
- Cell Biology
- Genetics
- Cancer Research
Background:
- The spindle assembly checkpoint (SAC) maintains chromosome stability; its defects cause chromosomal instability (CIN).
- CIN is prevalent in advanced cancers, correlating with poor outcomes like drug resistance and metastasis.
- CIN presents a cancer-specific therapeutic target, especially for drug-resistant tumors.
Purpose of the Study:
- To identify genes critical for the viability of cells exhibiting chromosomal instability.
- To explore therapeutic strategies targeting CIN in cancer.
Main Methods:
- Induced CIN in Drosophila by RNA interference (RNAi) knockdown of the spindle assembly checkpoint.
- Screened kinase and phosphatase genes using RNAi to find those inducing apoptosis specifically in CIN cells.
Main Results:
- Identified genes involved in JNK signaling pathways and mitotic cytoskeletal regulation as essential for CIN cell viability.
- Demonstrated the feasibility of selectively eliminating CIN cells.
- Discovered potential therapeutic targets, including Nek2 (NIMA-related kinase 2).
Conclusions:
- The study validates a screening approach for identifying cancer-specific therapeutic targets.
- Identified novel candidates for cancer therapies targeting CIN.
- Further research into these candidates may lead to treatments for advanced, CIN-positive cancers.
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