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Updated: Aug 14, 2026

Building Up a High-throughput Screening Platform to Assess the Heterogeneity of HER2 Gene Amplification in Breast Cancers
Published on: December 5, 2017
Patterns of her-2/neu amplification and overexpression in primary and metastatic breast cancer
R Simon1, A Nocito, T Hübscher
1Institute of Pathology, University of Basel, Switzerland.
Background:
Only 25% of patients with HER-2/neu-positive metastatic breast tumors respond favorably to trastuzamab (Herceptin) treatment. We hypothesized that a high failure rate of patients on trastuzamab could result if some of the metastases were HER-2 negative and these metastases ultimately determine the course of the disease.
Methods:
We used tissue microarrays (TMAs) containing four samples each from 196 lymph node-negative primary tumors, 196 lymph node-positive primary tumors, and three different lymph node metastases from each lymph node-positive tumor to estimate HER-2 gene amplification by fluorescence in situ hybridization (FISH) and Her-2 protein overexpression by immunohistochemistry (IHC).
Results:
FISH and IHC analyses gave the same result with respect to HER-2 status for 93.7% of the tissues contained in the TMAs. Tissue samples were, therefore, considered to be HER-2 positive if they were positive for either HER-2 DNA amplification or Her-2 protein expression and HER-2 negative if both FISH and IHC gave a negative result. The HER-2 status of lymph node-positive primary tumors was maintained in the majority of their metastases. For HER-2-positive primary tumors, 77% (95% confidence interval [CI] = 59% to 90%) had entirely HER-2-positive metastases, 6.5% (95% CI = 8% to 21%) had entirely HER-2-negative metastases, and 16.3% (95% CI = 5% to 34%) had a mixture of HER-2-positive and HER-2-negative metastases. For HER-2-negative primary tumors, 95% (95% CI = 88% to 98%) had metastases that were entirely negative for HER-2.
Conclusions:
Our data suggest that differences in HER-2 expression between primary tumors and their lymph node metastases cannot explain the high fraction of nonresponders to trastuzamab therapy.
Insights
Differences in HER-2 status between primary breast tumors and metastases do not explain why many patients do not respond to trastuzamab (Herceptin) therapy. The HER-2 status of most metastases mirrored that of the primary tumor.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- Trastuzumab (Herceptin) is a targeted therapy for HER-2-positive metastatic breast cancer, but only 25% of patients respond.
- A high rate of treatment failure suggests potential heterogeneity in HER-2 expression between primary tumors and metastases.
Purpose of the Study:
- To investigate if differences in HER-2 expression between primary breast tumors and their lymph node metastases contribute to trastuzumab treatment failure.
- To evaluate the concordance of HER-2 status in primary tumors and matched metastatic lymph nodes.
Main Methods:
- Utilized tissue microarrays (TMAs) from 196 lymph node-negative and 196 lymph node-positive primary breast tumors, along with lymph node metastases.
- Assessed HER-2 gene amplification via fluorescence in situ hybridization (FISH) and HER-2 protein overexpression via immunohistochemistry (IHC).
- Correlated HER-2 status between primary tumors and their corresponding metastases.
Main Results:
- High concordance (93.7%) between FISH and IHC for determining HER-2 status.
- For HER-2-positive primary tumors, the majority (77%) had entirely HER-2-positive metastases, while some had entirely negative (6.5%) or mixed (16.3%) HER-2 status metastases.
- For HER-2-negative primary tumors, 95% had entirely HER-2-negative metastases, indicating stable HER-2 status.
Conclusions:
- Observed HER-2 status concordance between primary tumors and metastases does not account for the high non-response rate to trastuzumab.
- Further research is needed to identify other factors influencing trastuzumab efficacy in HER-2-positive metastatic breast cancer.
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