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Validated Immunochemical Assay for Comprehensive Determination of the Human Epidermal Growth Factor Receptor 2 Released from and Bound to Cells
Published on: May 9, 2025
Development of a test that measures real-time HER2 signaling function in live breast cancer cell lines and primary
Yao Huang1, David J Burns1, Benjamin E Rich1
1Celcuity LLC, Minneapolis, MN, USA.
Background:
Approximately 18-20% of all human breast cancers have overexpressed human epidermal growth factor receptor 2 (HER2). Standard clinical practice is to treat only overexpressed HER2 (HER2+) cancers with targeted anti-HER2 therapies. However, recent analyses of clinical trial data have found evidence that HER2-targeted therapies may benefit a sub-group of breast cancer patients with non-overexpressed HER2. This suggests that measurement of other biological factors associated with HER2 cancer, such as HER2 signaling pathway activity, should be considered as an alternative means of identifying patients eligible for HER2 therapies.
Methods:
A new biosensor-based test (CELxTM HSF) that measures HER2 signaling activity in live cells is demonstrated using a set of 19 human HER2+ and HER2- breast cancer reference cell lines and primary cell samples derived from two fresh patient tumor specimens. Pathway signaling is elucidated by use of highly specific agonists and antagonists. The test method relies upon well-established phenotypic, adhesion-related, impedance changes detected by the biosensor.
Results:
The analytical sensitivity and analyte specificity of this method was demonstrated using ligands with high affinity and specificity for HER1 and HER3. The HER2-driven signaling quantified ranged 50-fold between the lowest and highest cell lines. The HER2+ cell lines were almost equally divided into high and low signaling test result groups, suggesting that little correlation exists between HER2 protein expression and HER2 signaling level. Unexpectedly, the highest HER2-driven signaling level recorded was with a HER2- cell line.
Conclusions:
Measurement of HER2 signaling activity in the tumor cells of breast cancer patients is a feasible approach to explore as a biomarker to identify HER2-driven cancers not currently diagnosable with genomic techniques. The wide range of HER2-driven signaling levels measured suggests it may be possible to make a distinction between normal and abnormal levels of activity. Analytical validation studies and clinical trials treating HER2- patients with abnormal HER2-driven signaling would be required to evaluate the analytical and clinical validity of using this functional biomarker as a diagnostic test to select patients for treatment with HER2 targeted therapy. In clinical practice, this method would require patient specimens be delivered to and tested in a central lab.
Insights
A new biosensor test measures human epidermal growth factor receptor 2 (HER2) signaling activity, potentially identifying more breast cancer patients for HER2-targeted therapies beyond those with standard HER2 overexpression. This functional biomarker approach could expand treatment eligibility.
Area of Science:
- Biomedical Engineering
- Oncology
- Molecular Diagnostics
Background:
- Approximately 18-20% of human breast cancers exhibit human epidermal growth factor receptor 2 (HER2) overexpression.
- Standard treatment guidelines target only HER2-overexpressed (HER2+) breast cancers with anti-HER2 therapies.
- Emerging data suggest a subset of HER2-negative (HER2-) breast cancers may also benefit from HER2-targeted treatments.
Purpose of the Study:
- To evaluate a novel biosensor-based assay for measuring HER2 signaling pathway activity in breast cancer cells.
- To determine if HER2 signaling activity can serve as a biomarker for identifying patients eligible for HER2-targeted therapies, irrespective of HER2 protein expression levels.
- To assess the feasibility of using functional HER2 signaling as a diagnostic approach.
Main Methods:
- A biosensor-based test (CELx™ HSF) was developed to measure HER2 signaling activity in live breast cancer cell lines and patient tumor specimens.
- Specific agonists and antagonists were used to elucidate pathway signaling.
- The assay relies on detecting phenotypic, adhesion-related impedance changes using the biosensor.
Main Results:
- The assay demonstrated analytical sensitivity and specificity for HER2-driven signaling.
- Quantified HER2-driven signaling varied 50-fold across cell lines, with HER2+ cell lines showing a near-even split between high and low signaling groups.
- A HER2- cell line unexpectedly exhibited the highest HER2-driven signaling level, indicating a weak correlation between protein expression and pathway activity.
Conclusions:
- Measuring HER2 signaling activity presents a feasible approach for a biomarker to identify HER2-driven breast cancers not detectable by current genomic methods.
- The broad range of signaling levels suggests potential for distinguishing normal from abnormal activity.
- Further analytical validation and clinical trials are necessary to confirm the utility of this functional biomarker for guiding HER2-targeted therapy selection in patients with non-overexpressed HER2 but active signaling.
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