Spindle Assembly Checkpoint Competency Determines Sensitivity to KIF18A Inhibition in Small-Cell Lung Cancer

Abstract

Insights

Sensitivity to KIF18A inhibition in small-cell lung cancer (SCLC) depends on spindle assembly checkpoint (SAC) integrity, not expression levels. Intact SAC leads to cell death, while defective SAC allows survival, offering a biomarker for targeted therapies.

Area of Science:

  • Oncology
  • Molecular Biology
  • Genetics

Background:

  • Small-cell lung cancer (SCLC) exhibits high chromosomal instability (CIN) and resistance to therapies.
  • KIF18A, a mitotic motor protein, is a potential target in CIN-high cancers.
  • Biomarkers for KIF18A inhibitor response in SCLC are currently lacking.

Purpose of the Study:

  • To investigate KIF18A dependency in SCLC.
  • To identify determinants of response to KIF18A inhibition.
  • To discover predictive biomarkers for KIF18A-targeted therapies in SCLC.

Main Methods:

  • Integrated analysis of patient tumors, SCLC cell lines, and functional models.
  • Assessed CIN metrics, gene expression, mitotic dynamics, and spindle assembly checkpoint (SAC) function.
  • Utilized genomic profiling, live-cell imaging, genetic, and pharmacologic perturbations.

Main Results:

  • KIF18A expression correlated with CIN and neuroendocrine status but did not predict sensitivity.
  • Spindle assembly checkpoint (SAC) competency was the key determinant of response.
  • SAC-proficient cells underwent mitotic arrest and apoptosis; SAC-defective cells survived.
  • Impaired kinetochore recruitment of SAC components (MAD1, BUBR1) characterized resistant cells.
  • Transient MPS1 inhibition partially restored sensitivity in resistant models.

Conclusions:

  • SAC competency is the primary determinant of KIF18A dependency in SCLC.
  • Identified SAC integrity as a predictive biomarker for KIF18A inhibitors.
  • Established a framework for patient stratification and combination strategies for SCLC treatment.

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