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Targeting the EGF receptor family in non-small cell lung cancer-increased complexity and future perspectives
Tobias Boch1,2,3, Jens Köhler1,2,3, Melanie Janning1,2,3
1DKFZ-Hector Cancer Institute at the University Medical Center Mannheim, Mannheim 68135, Germany.
Abstract:
Lung cancer remains the leading cause of cancer-associated mortality worldwide, but with the emergence of oncogene targeted therapies, treatment options have tremendously improved. Owing to their biological relevance, members of the ERBB receptor family, including the EGF receptor (EGFR), HER2, HER3 and HER4, are among the best studied oncogenic drivers. Activating EGFR mutations are frequently observed in non-small cell lung cancer (NSCLC), and small molecule tyrosine kinase inhibitors (TKIs) are the established first line treatment option for patients whose tumors bear "typical/classical" EGFR mutations (exon 19 deletions, L858R point mutations). Additionally, new TKIs are rapidly evolving with better efficacy to overcome primary and secondary treatment resistance (e.g., that due to T790M or C797S resistance mutations). Some atypical EGFR mutations, such as the most frequent exon 20 insertions, exhibit relative resistance to earlier generation TKIs through steric hindrance. In this subgroup, newer TKIs, such as mobocertinib and the bi-specific antibody amivantamab have recently been approved, whereas less frequent atypical EGFR mutations remain understudied. In contrast to EGFR, HER2 has long remained a challenging target, but better structural understanding has led to the development of newer generations of TKIs. The recent FDA approval of the antibody-drug conjugate trastuzumab-deruxtecan for pretreated patients with HER2 mutant NSCLC has been an important therapeutic breakthrough. HER3 and HER4 also exert oncogenic potential, and targeted treatment approaches are being developed, particularly for HER3. Overall, strategies to inhibit the oncogenic function of ERBB receptors in NSCLC are currently evolving at an unprecedented pace; therefore, this review summarizes current treatment standards and discusses the outlook for future developments.
Insights
Targeted therapies are revolutionizing non-small cell lung cancer (NSCLC) treatment by inhibiting oncogenic drivers like the Epidermal Growth Factor Receptor (EGFR) and Human Epidermal growth factor Receptor 2 (HER2). Newer drugs offer improved efficacy against resistance mutations and atypical alterations.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Lung cancer is a leading cause of cancer mortality globally.
- The Epidermal Growth Factor Receptor (EGFR) family, including EGFR, HER2, HER3, and HER4, are key oncogenic drivers in non-small cell lung cancer (NSCLC).
- Targeted therapies and tyrosine kinase inhibitors (TKIs) have significantly improved treatment options for NSCLC patients with specific mutations.
Purpose of the Study:
- To review current treatment standards for ERBB receptor-driven NSCLC.
- To discuss the evolving landscape of targeted therapies, including TKIs and antibodies.
- To explore future developments and challenges in targeting ERBB family members in NSCLC.
Main Methods:
- Review of current literature on targeted therapies for NSCLC.
- Analysis of treatment efficacy for typical and atypical EGFR mutations.
- Examination of emerging therapies for HER2, HER3, and HER4 mutations.
Main Results:
- Established first-line TKIs are effective for classical EGFR mutations (exon 19 deletions, L858R).
- Newer TKIs and bispecific antibodies show promise for resistance mutations (T790M, C797S) and atypical EGFR exon 20 insertions.
- The antibody-drug conjugate trastuzumab-deruxtecan represents a breakthrough for HER2-mutant NSCLC; targeted approaches for HER3/HER4 are under development.
Conclusions:
- Targeted inhibition of ERBB receptors is rapidly advancing NSCLC treatment.
- Continuous development of novel therapies is crucial to overcome resistance and address understudied mutations.
- The future of NSCLC treatment lies in personalized strategies targeting specific oncogenic drivers within the ERBB family.
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