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CENP-E Inhibition Induces Chromosomal Instability and Synergizes with Diverse Microtubule-Targeting Agents in Breast
John B Tucker1, Caleb L Carlsen2, Christina M Scribano3
1Cancer Biology Graduate Training Program, University of Wisconsin-Madison, Madison, Wisconsin.
Abstract:
Drugs that perturb microtubules are commonly used to treat breast cancers of all subtypes in both early stage and metastatic disease, but they are effective in only approximately 50% of patients. High concentrations of microtubule-targeting agents can elicit mitotic arrest in cell culture models; however, recent evidence from primary and metastatic breast cancers has revealed that these agents only accumulate at intratumoral levels capable of inducing abnormal multipolar mitotic spindles, not mitotic arrest. Although the maintenance of multipolar spindles can generate cytotoxic rates of chromosomal instability (CIN), focusing of aberrant multipolar spindles into normal bipolar spindles can dramatically reduce CIN and confer resistance to microtubule poisons. Here, we showed that inhibition of the mitotic kinesin centromeric-associated protein-E (CENP-E) overcomes resistance caused by focusing multipolar spindles. Clinically relevant microtubule-targeting agents used a mechanistically conserved pathway to induce multipolar spindles without requiring centrosome amplification. Focusing could occur at any point in mitosis, with earlier focusing conferring greater resistance to antimicrotubule agents. CENP-E inhibition increased CIN on focused spindles by generating chromosomes that remained misaligned at spindle poles during anaphase, which substantially increased death in the resulting daughter cells. CENP-E inhibition synergized with diverse, clinically relevant microtubule poisons to potentiate cell death in cell lines and suppress tumor growth in orthotopic tumor models. These results suggest that primary resistance to microtubule-targeting drugs can be overcome by simultaneous inhibition of CENP-E. Significance: The increased incidence of polar chromosomes induced by inhibition of the mitotic kinesin CENP-E exacerbates chromosomal instability, reduces daughter cell viability, and improves sensitivity to microtubule-targeting therapies.
Insights
Inhibiting centromeric-associated protein-E (CENP-E) overcomes resistance to microtubule-targeting drugs in breast cancer by increasing chromosomal instability. This approach synergizes with existing therapies to improve treatment efficacy.
Area of Science:
- Oncology
- Cell Biology
- Cancer Therapeutics
Background:
- Microtubule-targeting drugs are standard breast cancer treatments but are effective in only ~50% of patients.
- These agents induce multipolar mitotic spindles, not mitotic arrest, in tumors.
- Tumor cells can resist these drugs by focusing multipolar spindles, reducing chromosomal instability (CIN).
Purpose of the Study:
- To investigate if inhibiting centromeric-associated protein-E (CENP-E) can overcome resistance to microtubule-targeting drugs.
- To determine the mechanism by which CENP-E inhibition affects cancer cell viability and sensitivity to these drugs.
Main Methods:
- Inhibition of CENP-E in cancer cell lines and orthotopic tumor models.
- Assessment of mitotic spindle abnormalities, chromosomal instability (CIN), and cell death.
- Combination therapy studies with clinically relevant microtubule poisons.
Main Results:
- CENP-E inhibition overcomes resistance mediated by focusing of multipolar spindles.
- CENP-E inhibition increases CIN by causing misaligned chromosomes during anaphase.
- This leads to increased daughter cell death and potentiates cell death induced by microtubule poisons.
- CENP-E inhibition synergized with microtubule poisons to suppress tumor growth in vivo.
Conclusions:
- Simultaneous inhibition of CENP-E with microtubule-targeting drugs can overcome primary resistance.
- Targeting CENP-E enhances the efficacy of existing breast cancer therapies by increasing CIN and reducing daughter cell viability.
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