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Updated: Nov 1, 2025

Testing Targeted Therapies in Cancer using Structural DNA Alteration Analysis and Patient-Derived Xenografts
Published on: July 25, 2020
Co-occurring gain-of-function mutations in HER2 and HER3 modulate HER2/HER3 activation, oncogenesis, and HER2
Ariella B Hanker1, Benjamin P Brown2, Jens Meiler3
1UTSW Simmons Comprehensive Cancer Center, Dallas, 5323 Harry Hines Boulevard, TX 75390, USA; Department of Internal Medicine, UT Southwestern Medical Center, Dallas, TX 75390, USA.
Abstract:
Activating mutations in HER2 (ERBB2) drive the growth of a subset of breast and other cancers and tend to co-occur with HER3 (ERBB3) missense mutations. The HER2 tyrosine kinase inhibitor neratinib has shown clinical activity against HER2-mutant tumors. To characterize the role of HER3 mutations in HER2-mutant tumors, we integrate computational structural modeling with biochemical and cell biological analyses. Computational modeling predicts that the frequent HER3E928G kinase domain mutation enhances the affinity of HER2/HER3 and reduces binding of HER2 to its inhibitor neratinib. Co-expression of mutant HER2/HER3 enhances HER2/HER3 co-immunoprecipitation and ligand-independent activation of HER2/HER3 and PI3K/AKT, resulting in enhanced growth, invasiveness, and resistance to HER2-targeted therapies, which can be reversed by combined treatment with PI3Kα inhibitors. Our results provide a mechanistic rationale for the evolutionary selection of co-occurring HER2/HER3 mutations and the recent clinical observations that HER3 mutations are associated with a poor response to neratinib in HER2-mutant cancers.
Insights
Activating HER2 (ERBB2) and HER3 (ERBB3) mutations in cancer promote tumor growth and resistance to therapies like neratinib. Targeting PI3Kα may overcome this resistance.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Activating mutations in HER2 (ERBB2) drive cancer growth and often co-occur with HER3 (ERBB3) mutations.
- The HER2 inhibitor neratinib shows clinical efficacy in HER2-mutant tumors.
Purpose of the Study:
- To elucidate the functional role of HER3 mutations in HER2-mutant cancers.
- To understand the molecular mechanisms underlying resistance to HER2-targeted therapies.
Main Methods:
- Computational structural modeling.
- Biochemical assays.
- Cell biological analyses.
Main Results:
- HER3E928G mutation enhances HER2/HER3 binding affinity and reduces neratinib binding to HER2.
- Co-expression of mutant HER2/HER3 leads to ligand-independent activation, promoting tumor growth, invasiveness, and therapy resistance.
- Combined treatment with PI3Kα inhibitors reversed resistance to HER2-targeted therapies.
Conclusions:
- Provides a mechanistic basis for co-occurring HER2/HER3 mutations.
- Explains poor response to neratinib in HER2-mutant cancers with HER3 mutations.
- Suggests PI3Kα inhibition as a potential therapeutic strategy for overcoming resistance.
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