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Updated: Oct 25, 2025

Testing Targeted Therapies in Cancer using Structural DNA Alteration Analysis and Patient-Derived Xenografts
Published on: July 25, 2020
Sensitivity to targeted therapy differs between HER2-amplified breast cancer cells harboring kinase and helical
Joseph P Garay1, Rebecca Smith1, Kaylyn Devlin1
1Department of Biomedical Engineering, Oregon Health & Science University, Portland, OR, USA.
Background:
HER2-amplified breast cancer is a clinically defined subtype of breast cancer for which there are multiple viable targeted therapies. Resistance to these targeted therapies is a common problem, but the mechanisms by which resistance occurs remain incompletely defined. One mechanism that has been proposed is through mutation of genes in the PI3-kinase pathway. Intracellular signaling from the HER2 pathway can occur through PI3-kinase, and mutations of the encoding gene PIK3CA are known to be oncogenic. Mutations in PIK3CA co-occur with HER2-amplification in ~ 20% of cases within the HER2-amplified subtype.
Methods:
We generated isogenic knockin mutants of each PIK3CA hotspot mutation in HER2-amplified breast cancer cells using adeno-associated virus-mediated gene targeting. Isogenic clones were analyzed using a combinatorial drug screen to determine differential responses to HER2-targeted therapy. Western blot analysis and immunofluorescence uncovered unique intracellular signaling dynamics in cells resistant to HER2-targeted therapy. Subsequent combinatorial drug screens were used to explore neuregulin-1-mediated resistance to HER2-targeted therapy. Finally, results from in vitro experiments were extrapolated to publicly available datasets.
Results:
Treatment with HER2-targeted therapy reveals that mutations in the kinase domain (H1047R) but not the helical domain (E545K) increase resistance to lapatinib. Mechanistically, sustained AKT signaling drives lapatinib resistance in cells with the kinase domain mutation, as demonstrated by staining for the intracellular product of PI3-kinase, PIP3. This resistance can be overcome by co-treatment with an inhibitor to the downstream kinase AKT. Additionally, knockout of the PIP3 phosphatase, PTEN, phenocopies this result. We also show that neuregulin-1, a ligand for HER-family receptors, confers resistance to cells harboring either hotspot mutation and modulates response to combinatorial therapy. Finally, we show clinical evidence that the hotspot mutations have distinct expression profiles related to therapeutic resistance through analysis of TCGA and METABRIC data cohorts.
Conclusion:
Our results demonstrate unique intracellular signaling differences depending on which mutation in PIK3CA the cell harbors. Only mutations in the kinase domain fully activate the PI3-kinase signaling pathway and maintain downstream signaling in the presence of HER2 inhibition. Moreover, we show there is potentially clinical importance in understanding both the PIK3CA mutational status and levels of neuregulin-1 expression in patients with HER2-amplified breast cancer treated with targeted therapy and that these problems warrant further pre-clinical and clinical testing.
Insights
HER2-amplified breast cancer resistance to targeted therapy can be linked to PIK3CA mutations. Kinase domain mutations, unlike helical domain mutations, confer resistance by sustaining AKT signaling, which can be overcome with AKT inhibitors.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- HER2-amplified breast cancer is a subtype with targeted therapies, but resistance mechanisms are not fully understood.
- Mutations in the PIK3CA gene, encoding PI3-kinase, are implicated in resistance and co-occur in ~20% of HER2-amplified cases.
- Understanding PIK3CA mutations is crucial for overcoming therapeutic resistance in HER2-amplified breast cancer.
Purpose of the Study:
- To investigate how specific PIK3CA hotspot mutations affect resistance to HER2-targeted therapy.
- To elucidate the intracellular signaling dynamics underlying lapatinib resistance.
- To explore the role of neuregulin-1 in mediating resistance and its clinical relevance.
Main Methods:
- Generated isogenic knockin mutants of PIK3CA hotspot mutations in HER2-amplified breast cancer cells.
- Utilized combinatorial drug screening to assess differential responses to HER2-targeted therapy.
- Employed Western blot, immunofluorescence, and analysis of public datasets (TCGA, METABRIC).
Main Results:
- Kinase domain (H1047R) PIK3CA mutations, but not helical domain (E545K) mutations, confer resistance to lapatinib by sustaining AKT signaling.
- Resistance can be overcome by co-treatment with AKT inhibitors or PTEN knockout.
- Neuregulin-1 confers resistance to both mutation types and influences combinatorial therapy response.
Conclusions:
- Specific PIK3CA mutations, particularly in the kinase domain, uniquely alter intracellular signaling pathways, leading to resistance.
- Sustained PI3-kinase/AKT signaling is a key mechanism of resistance to HER2-targeted therapy.
- PIK3CA mutational status and neuregulin-1 levels are clinically relevant biomarkers for predicting and overcoming resistance in HER2-amplified breast cancer.
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