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Updated: Jun 11, 2026

Directly Measuring Forces Within Reconstituted Active Microtubule Bundles
Published on: May 10, 2022
Expression levels of a kinesin-13 microtubule depolymerase modulates the effectiveness of anti-microtubule agents
Gregory V Schimizzi1, Joshua D Currie, Stephen L Rogers
1Department of Biology, The University of North Carolina at Chapel Hill, Chapel Hill, North Carolina, United States of America.
Background:
Chemotherapeutic drugs often target the microtubule cytoskeleton as a means to disrupt cancer cell mitosis and proliferation. Anti-microtubule drugs inhibit microtubule dynamics, thereby triggering apoptosis when dividing cells activate the mitotic checkpoint. Microtubule dynamics are regulated by microtubule-associated proteins (MAPs); however, we lack a comprehensive understanding about how anti-microtubule agents functionally interact with MAPs. In this report, we test the hypothesis that the cellular levels of microtubule depolymerases, in this case kinesin-13 s, modulate the effectiveness of the microtubule disrupting drug colchicine.
Methodology/Principal Findings:
We used a combination of RNA interference (RNAi), high-throughput microscopy, and time-lapse video microscopy in Drosophila S2 cells to identify a specific MAP, kinesin-like protein 10A (KLP10A), that contributes to the efficacy of the anti-microtubule drug colchicine. KLP10A is an essential microtubule depolymerase throughout the cell cycle. We find that depletion of KLP10A in S2 cells confers resistance to colchicine-induced microtubule depolymerization to a much greater extent than depletion of several other destabilizing MAPs. Using image-based assays, we determined that control cells retained 58% (+/-2%SEM) of microtubule polymer when after treatment with 2 microM colchicine for 1 hour, while cells depleted of KLP10A by RNAi retained 74% (+/-1%SEM). Likewise, overexpression of KLP10A-GFP results in increased susceptibility to microtubule depolymerization by colchicine.
Conclusions/Significance:
Our results demonstrate that the efficacy of microtubule destabilization by a pharmacological agent is dependent upon the cellular expression of a microtubule depolymerase. These findings suggest that expression levels of Kif2A, the human kinesin-13 family member, may be an attractive biomarker to assess the effectiveness of anti-microtubule chemotherapies. Knowledge of how MAP expression levels affect the action of anti-microtubule drugs may prove useful for evaluating possible modes of cancer treatment.
Insights
The efficacy of anti-cancer drugs like colchicine depends on microtubule depolymerase levels. Targeting kinesin-13s, such as KLP10A, could enhance chemotherapy effectiveness.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Chemotherapeutic drugs targeting microtubules disrupt cancer cell mitosis.
- Microtubule-associated proteins (MAPs) regulate microtubule dynamics, but their interaction with anti-cancer drugs is not fully understood.
- This study investigates the role of microtubule depolymerases in modulating the effectiveness of colchicine.
Purpose of the Study:
- To test if cellular levels of microtubule depolymerases, specifically kinesin-13s, affect colchicine's efficacy.
- To identify specific MAPs that influence the response to microtubule-disrupting drugs.
Main Methods:
- Utilized RNA interference (RNAi) in Drosophila S2 cells.
- Employed high-throughput microscopy and time-lapse video microscopy.
- Quantified microtubule polymer levels after drug treatment in cells with varying KLP10A levels.
Main Results:
- Identified kinesin-like protein 10A (KLP10A) as a key MAP influencing colchicine efficacy.
- Depletion of KLP10A significantly increased resistance to colchicine-induced microtubule depolymerization.
- Overexpression of KLP10A enhanced susceptibility to colchicine.
Conclusions:
- Drug-induced microtubule destabilization efficacy is dependent on cellular depolymerase expression.
- Kinesin-13 family member Kif2A expression may serve as a biomarker for anti-microtubule chemotherapy effectiveness.
- Understanding MAPs' role in drug action can inform cancer treatment strategies.
Related Concept Videos
Destabilization of Microtubules
Drugs that Stabilize Microtubules
Microtubule Formation
Drugs that Destabilize Microtubules
The Movement of Organelles and Vesicles
Microtubule Associated Motor Proteins

