Aurora kinase A is a synthetic lethal target in FANCA-deficient cancers

Dilara Akhoundova1,2,3, Martín González-Fernández4,5,6, Aavash Baral4

  • 1Department of Medical Oncology, Inselspital, University Hospital of Bern, University of Bern, Bern, Switzerland. dilara.akhoundovasanoyan@insel.ch.

Insights

Loss-of-function genomic alterations in FANCA present a vulnerability. Targeting Aurora kinase A (AURKA) shows promise as a synthetic lethal therapy for FANCA-deficient cancers, inducing genomic instability and offering a precision treatment strategy.

Area of Science:

  • Genomic instability and cancer therapeutics
  • Synthetic lethality in oncology
  • DNA repair pathways and cancer vulnerabilities

Background:

  • Loss-of-function mutations in FANCA are common across many cancer types.
  • No targeted therapies currently exploit FANCA deficiency as a vulnerability.

Purpose of the Study:

  • To identify molecularly targeted therapies for FANCA-deficient cancers.
  • To investigate Aurora kinase A (AURKA) as a synthetic lethal target.

Main Methods:

  • Genome-wide CRISPR/Cas9 loss-of-function screens
  • High-throughput drug screens in isogenic cell models
  • Analysis of large-scale cancer genomics datasets (>650,000 tumors)

Main Results:

  • Aurora kinase A (AURKA) identified as a synthetic lethal target in FANCA-deficient cancers.
  • AURKA inhibition induces chromosomal instability and micronucleation.
  • FANCA deficiency correlates with elevated AURKA expression and altered mitotic gene signatures.
  • FANCA-defective tumors show increased tumor mutational burden and genomic instability.

Conclusions:

  • AURKA inhibition represents a promising precision treatment strategy for FANCA-deficient cancers.
  • These findings provide a strong rationale for clinical investigation of AURKA inhibitors in this patient population.

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