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Published on: April 26, 2024
Characterization of a novel, trastuzumab resistant human breast cancer cell line
Mark Barok1, Margit Balazs, Viktoria Lazar
1Department of Biophysics and Cell Biology, Faculty of Medicine, Medical and Health Science Center, University of Debrecen, Debrecen, Hungary.
Abstract:
HER2-positive breast cancers represent a distinct phenotype and are intrinsically more aggressive than HER2-negative tumors. Although HER2-targeted therapies have been rationally developed, resistance to these treatments represents a process understood poorly. There are few experimental models that allow studying the molecular mechanism of resistance. Our aim was to characterize a trastuzumab resistant breast cancer cell line (B585) that was established from an invasive ductal carcinoma. B585 grows only in immunodeficient mice as a xenograft. CGH and FISH were used to define cytogenetic alterations, gene-expression analysis and immunohistochemistry were applied to detect RNA and protein expression. By array-CGH focused amplifications were identified for C-MYC, EGFR, ErbB2, CCND1 and TOP2-A oncogenes. ErbB2 was co-amplified with TOP2-A. mRNA overexpression was detected for the amplified genes. ErbB2 protein was overexpressed and showed heterogeneous distribution. In summary, molecular cytogenetic analysis and expression profiling of B585 revealed several new alterations. Based on the experiments performed in SCID mice and the genotypic/phenotypic characteristics, this new in vivo breast cancer xenograft is a valuable model to investigate molecular mechanism of trastuzumab resistance.
Insights
Researchers developed a new breast cancer model to study resistance to HER2-targeted therapies like trastuzumab. This model helps investigate the molecular mechanisms behind treatment failure in HER2-positive breast cancer.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- HER2-positive breast cancers are aggressive and develop resistance to targeted therapies.
- Understanding resistance mechanisms is crucial for improving treatment outcomes.
- Few experimental models exist to study trastuzumab resistance.
Purpose of the Study:
- To characterize a new trastuzumab-resistant breast cancer cell line (B585) derived from invasive ductal carcinoma.
- To establish a valuable in vivo model for investigating trastuzumab resistance mechanisms.
Main Methods:
- Establishment of a trastuzumab-resistant cell line (B585) from invasive ductal carcinoma.
- Xenografting in immunodeficient mice.
- Comparative genomic hybridization (CGH), fluorescence in situ hybridization (FISH), gene-expression analysis, and immunohistochemistry.
Main Results:
- Array-CGH identified amplifications in C-MYC, EGFR, ErbB2, CCND1, and TOP2-A oncogenes.
- ErbB2 was co-amplified with TOP2-A.
- Overexpression of mRNA and protein for amplified genes, including heterogeneous ErbB2 protein distribution, was observed.
Conclusions:
- The B585 xenograft model exhibits distinct genotypic and phenotypic characteristics.
- This model provides a valuable platform for studying the molecular mechanisms of trastuzumab resistance in HER2-positive breast cancer.
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