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Updated: Jun 7, 2025

Live Cell Imaging of Chromosome Segregation During Mitosis
Published on: March 14, 2018
Microtubule poleward flux as a target for modifying chromosome segregation errors
Patrik Risteski1, Jelena Martinčić1, Mihaela Jagrić1
1Laboratory of Cell Biophysics, Division of Molecular Biology, Ruđer Bošković Institute, Zagreb 10000, Croatia.
Abstract:
Cancer cells often display errors in chromosome segregation, some of which result from improper chromosome alignment at the spindle midplane. Chromosome alignment is facilitated by different rates of microtubule poleward flux between sister kinetochore fibers. However, the role of the poleward flux in supporting mitotic fidelity remains unknown. Here, we introduce the hypothesis that the finely tuned poleward flux safeguards against lagging chromosomes and micronuclei at mitotic exit by promoting chromosome alignment in metaphase. We used human untransformed RPE-1 cells depleted of KIF18A/kinesin-8 as a system with reduced mitotic fidelity, which we rescued by three mechanistically independent treatments, comprising low-dose taxol or codepletion of the spindle proteins HAUS8 or NuMA. The rescue of mitotic errors was due to shortening of the excessively long overlaps of antiparallel microtubules, serving as a platform for motor proteins that drive the flux, which in turn slowed down the overly fast flux and improved chromosome alignment. In contrast to the prevailing view, the rescue was not accompanied by reduction of overall microtubule growth rates. Instead, speckle microscopy revealed that the improved chromosome alignment in the rescue treatments was associated with slower growth and flux of kinetochore microtubules. In a similar manner, a low-dose taxol treatment rescued mitotic errors in a high-grade serous ovarian carcinoma cell line OVKATE. Collectively, our results highlight the potential of targeting microtubule poleward flux to modify chromosome instability and provide insight into the mechanism through which low doses of taxol rescue certain mitotic errors in cancer cells.
Insights
Fine-tuning microtubule poleward flux is crucial for accurate chromosome alignment, preventing errors during cell division. This study reveals how targeting this flux can correct mitotic errors in cancer cells.
Area of Science:
- Cell Biology
- Cancer Research
- Microscopy
Background:
- Cancer cells exhibit chromosome segregation errors, often due to misaligned chromosomes at the spindle midplane.
- Microtubule poleward flux differences between sister kinetochore fibers aid chromosome alignment, but its role in mitotic fidelity is unclear.
Purpose of the Study:
- To investigate the role of microtubule poleward flux in maintaining mitotic fidelity.
- To test the hypothesis that tuned poleward flux prevents lagging chromosomes and micronuclei by promoting metaphase chromosome alignment.
Main Methods:
- Used human RPE-1 cells with reduced mitotic fidelity (KIF18A/kinesin-8 depletion).
- Employed three rescue treatments: low-dose taxol, HAUS8, or NuMA codepletion.
- Utilized speckle microscopy to analyze microtubule dynamics and chromosome alignment.
Main Results:
- Rescue treatments shortened microtubule overlaps, slowed flux, and improved chromosome alignment.
- Mitotic error correction was not linked to reduced overall microtubule growth rates.
- Low-dose taxol also rescued errors in ovarian cancer cells (OVKATE).
Conclusions:
- Precisely regulated microtubule poleward flux is essential for preventing chromosome instability.
- Targeting microtubule poleward flux offers a potential strategy to combat chromosome instability in cancer.
- Low-dose taxol rescues specific mitotic errors in cancer cells by modulating microtubule dynamics.
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