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.

Cancer Research
|June 4, 2024
PubMed

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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