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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.
Abstract:
The common participation of oncogenic KRAS proteins in many of the most lethal human cancers, together with the ease of detecting somatic KRAS mutant alleles in patient samples, has spurred persistent and intensive efforts to develop drugs that inhibit KRAS activity. However, advances have been hindered by the pervasive inter- and intra-lineage diversity in the targetable mechanisms that underlie KRAS-driven cancers, limited pharmacological accessibility of many candidate synthetic-lethal interactions and the swift emergence of unanticipated resistance mechanisms to otherwise effective targeted therapies. Here we demonstrate the acute and specific cell-autonomous addiction of KRAS-mutant non-small-cell lung cancer cells to receptor-dependent nuclear export. A multi-genomic, data-driven approach, utilizing 106 human non-small-cell lung cancer cell lines, was used to interrogate 4,725 biological processes with 39,760 short interfering RNA pools for those selectively required for the survival of KRAS-mutant cells that harbour a broad spectrum of phenotypic variation. Nuclear transport machinery was the sole process-level discriminator of statistical significance. Chemical perturbation of the nuclear export receptor XPO1 (also known as CRM1), with a clinically available drug, revealed a robust synthetic-lethal interaction with native or engineered oncogenic KRAS both in vitro and in vivo. The primary mechanism underpinning XPO1 inhibitor sensitivity was intolerance to the accumulation of nuclear IκBα (also known as NFKBIA), with consequent inhibition of NFκB transcription factor activity. Intrinsic resistance associated with concurrent FSTL5 mutations was detected and determined to be a consequence of YAP1 activation via a previously unappreciated FSTL5-Hippo pathway regulatory axis. This occurs in approximately 17% of KRAS-mutant lung cancers, and can be overcome with the co-administration of a YAP1-TEAD inhibitor. These findings indicate that clinically available XPO1 inhibitors are a promising therapeutic strategy for a considerable cohort of patients with lung cancer when coupled to genomics-guided patient selection and observation.
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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