p65BTK is a novel potential actionable target in KRAS-mutated/EGFR-wild type lung adenocarcinoma

Federica Giordano1, Valentina Vaira2,3, Diego Cortinovis4

  • 1Department of Medicine and Surgery, University of Milano-Bicocca, Monza, Italy.

Abstract

Insights

p65BTK is a potential new target for non-small cell lung cancer (NSCLC). Inhibiting p65BTK with BTK inhibitors can overcome resistance to existing therapies, offering new hope for patients with advanced NSCLC.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cancer Therapeutics

Background:

  • Lung cancer remains a leading cause of cancer mortality globally.
  • Drug resistance and tumor heterogeneity limit current treatments like targeted therapies and immune-checkpoint inhibitors.
  • p65BTK, a novel Bruton Tyrosine Kinase isoform, presents a potential new therapeutic target in non-small cell lung cancer (NSCLC).

Purpose of the Study:

  • To investigate the role of p65BTK as a therapeutic target in NSCLC.
  • To evaluate the efficacy of p65BTK inhibition using Bruton Tyrosine Kinase Inhibitors (BTK-TKIs).
  • To explore the potential of combining BTK-TKIs with other therapies to overcome drug resistance in NSCLC.

Main Methods:

  • p65BTK expression was assessed via immunohistochemistry in 382 NSCLC patients and 30 metastatic lymph nodes.
  • Preclinical models included NSCLC cell lines with p53/RAS/MAPK pathway mutations and primary lung cancer cells from Kras/Trp53 null mice.
  • The effects of BTK-TKIs and EGFR-TKIs on cell viability, proliferation, and clonogenicity were evaluated using MTT, crystal violet, and colony assays.
  • Combination toxicity assays assessed BTK-TKIs with EGFR-TKIs and standard-of-care chemotherapy.

Main Results:

  • p65BTK was over-expressed in EGFR-wild type (wt) adenocarcinomas from non-smokers and at metastatic sites.
  • Over-expression was also observed in KRAS-mutated cell lines and tumors from Kras/Trp53 null mice.
  • BTK-TKIs demonstrated superior efficacy over EGFR-TKIs in reducing cancer cell viability, proliferation, and clonogenicity.
  • BTK-TKIs re-sensitized drug-resistant NSCLC cell lines to targeted and standard therapies, irrespective of EGFR/KRAS status.

Conclusions:

  • p65BTK is an actionable target in non-smoking, EGFR-wt NSCLC, including advanced stages.
  • BTK-TKIs combined with EGFR-TKIs show cytotoxicity in EGFR-wt/KRAS-mutant/p53-null tumors.
  • BTK-TKIs resensitize resistant NSCLC to standard chemotherapy.
  • Combining BTK-TKIs with standard chemotherapy and EGFR-targeted therapy may offer new clinical trial opportunities for currently untreatable NSCLC.

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