XPO1-dependent nuclear export is a druggable vulnerability in KRAS-mutant lung cancer

Jimi Kim1, Elizabeth McMillan1, Hyun Seok Kim2

  • 1Department of Cell Biology, UTSW Medical Center, Dallas, Texas 75390, USA.

Nature
|September 30, 2016
PubMed

Insights

Targeting nuclear export in KRAS-mutant lung cancer shows promise. Inhibiting XPO1 (exportin 1) offers a synthetic-lethal strategy, overcoming resistance with YAP1-TEAD inhibitors for selected patients.

Area of Science:

  • Oncology
  • Molecular Biology
  • Drug Discovery

Background:

  • Oncogenic KRAS mutations drive lethal cancers, but therapeutic development is challenged by tumor heterogeneity and resistance.
  • Targeting KRAS-driven cancers requires understanding diverse mechanisms and overcoming limitations in synthetic-lethal interactions and drug resistance.

Purpose of the Study:

  • To identify specific vulnerabilities in KRAS-mutant non-small-cell lung cancer (NSCLC) cells.
  • To investigate the role of nuclear transport in KRAS-driven cancers and evaluate therapeutic targeting of XPO1.

Main Methods:

  • A multi-genomic, data-driven approach using 106 human NSCLC cell lines and 39,760 short interfering RNA pools.
  • Interrogation of 4,725 biological processes to find those essential for KRAS-mutant cell survival.
  • Chemical inhibition of the nuclear export receptor XPO1 (also known as CRM1) and analysis of resistance mechanisms involving FSTL5 and YAP1.

Main Results:

  • Nuclear transport machinery was identified as a key differentiator for KRAS-mutant cell survival.
  • Chemical perturbation of XPO1 revealed a synthetic-lethal interaction with oncogenic KRAS, mediated by IκBα nuclear accumulation and NFκB inhibition.
  • FSTL5 mutations confer intrinsic resistance via YAP1 activation, which can be overcome by YAP1-TEAD inhibitors in approximately 17% of KRAS-mutant lung cancers.

Conclusions:

  • Clinically available XPO1 inhibitors represent a promising therapeutic strategy for a significant subset of KRAS-mutant lung cancer patients.
  • Genomics-guided patient selection and combination therapy with YAP1-TEAD inhibitors are crucial for overcoming resistance and maximizing treatment efficacy.

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