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Updated: Jan 23, 2026

Network Pharmacology Prediction and Experimental Validation of Trichosanthes-Fritillaria thunbergii Action Mechanism Against Lung Adenocarcinoma
Published on: March 3, 2023
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.
Background:
Lung cancer is still the main cause of cancer death worldwide despite the availability of targeted therapies and immune-checkpoint inhibitors combined with chemotherapy. Cancer cell heterogeneity and primary or acquired resistance mechanisms cause the elusive behaviour of this cancer and new biomarkers and active drugs are urgently needed to overcome these limitations. p65BTK, a novel isoform of the Bruton Tyrosine Kinase may represent a new actionable target in non-small cell lung cancer (NSCLC).
Methods:
p65BTK expression was evaluated by immunohistochemistry in 382 NSCLC patients with complete clinico-pathological records including smoking habit, ALK and EGFR status, and in metastatic lymph nodes of 30 NSCLC patients. NSCLC cell lines mutated for p53 and/or a component of the RAS/MAPK pathway and primary lung cancer-derived cells from Kras/Trp53 null mice were used as a preclinical model. The effects of p65BTK inhibition by BTK Tyrosine Kinase Inhibitors (TKIs) (Ibrutinib, AVL-292, RN486) and first-generation EGFR-TKIs (Gefitinib, Erlotinib) on cell viability were evaluated by MTT. The effects of BTK-TKIs on cell growth and clonogenicity were assessed by crystal violet and colony assays, respectively. Cell toxicity assays were performed to study the effect of the combination of non-toxic concentrations of BTK-TKIs with EGFR-TKIs and standard-of-care (SOC) chemotherapy (Cisplatin, Gemcitabine, Pemetrexed).
Results:
p65BTK was significantly over-expressed in EGFR-wild type (wt) adenocarcinomas (AdC) from non-smoker patients and its expression was also preserved at the metastatic site. p65BTK was also over-expressed in cell lines mutated for KRAS or for a component of the RAS/MAPK pathway and in tumors from Kras/Trp53 null mice. BTK-TKIs were more effective than EGFR-TKIs in decreasing cancer cell viability and significantly impaired cell proliferation and clonogenicity. Moreover, non-toxic doses of BTK-TKIs re-sensitized drug-resistant NSCLC cell lines to both target- and SOC therapy, independently from EGFR/KRAS status.
Conclusions:
p65BTK results as an emerging actionable target in non-smoking EGFR-wt AdC, also at advanced stages of disease. Notably, these patients are not eligible for EGFR-TKIs-based therapy due to a lack of EGFR mutation. The combination of BTK-TKIs with EGFR-TKIs is cytotoxic for EGFR-wt/KRAS-mutant/p53-null tumors and BTK-TKIs re-sensitizes drug-resistant NSCLC to SOC chemotherapy. Therefore, our data suggest that adding BTK-TKIs to SOC chemotherapy and EGFR-targeted therapy may open new avenues for clinical trials in currently untreatable NSCLC.
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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