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Updated: Mar 24, 2026

Establishment of Gastric Cancer Patient-derived Xenograft Models and Primary Cell Lines
Published on: July 19, 2019
Improving gastric cancer preclinical studies using diverse in vitro and in vivo model systems
Hae Ryung Chang1,2, Hee Seo Park3, Young Zoo Ahn4
1New Experimental Therapeutics Branch, National Cancer Center of Korea, Ilsan, Goyang-si, Gyeonggi-do, Republic of Korea. haeryung.chang@ip-korea.org.
Background:
"Biomarker-driven targeted therapy," the practice of tailoring patients' treatment to the expression/activity levels of disease-specific genes/proteins, remains challenging. For example, while the anti-ERBB2 monoclonal antibody, trastuzumab, was first developed using well-characterized, diverse in vitro breast cancer models (and is now a standard adjuvant therapy for ERBB2-positive breast cancer patients), trastuzumab approval for ERBB2-positive gastric cancer was largely based on preclinical studies of a single cell line, NCI-N87. Ensuing clinical trials revealed only modest patient efficacy, and many ERBB2-positive gastric cancer (GC) patients failed to respond at all (i.e., were inherently recalcitrant), or succumbed to acquired resistance.
Method:
To assess mechanisms underlying GC insensitivity to ERBB2 therapies, we established a diverse panel of GC cells, differing in ERBB2 expression levels, for comprehensive in vitro and in vivo characterization. For higher throughput assays of ERBB2 DNA and protein levels, we compared the concordance of various laboratory quantification methods, including those of in vitro and in vivo genetic anomalies (FISH and SISH) and xenograft protein expression (Western blot vs. IHC), of both cell and xenograft (tissue-sectioned) microarrays.
Results:
The biomarker assessment methods strongly agreed, as did correlation between RNA and protein expression. However, although ERBB2 genomic anomalies showed good in vitro vs. in vivo correlation, we observed striking differences in protein expression between cultured cells and mouse xenografts (even within the same GC cell type). Via our unique pathway analysis, we delineated a signaling network, in addition to specific pathways/biological processes, emanating from the ERBB2 signaling cascade, as a potential useful target of clinical treatment. Integrated analysis of public data from gastric tumors revealed frequent (10 - 20 %) amplification of the genes NFKBIE, PTK2, and PIK3CA, each of which resides in an ERBB2-derived subpathway network.
Conclusion:
Our comprehensive bioinformatics analyses of highly heterogeneous cancer cells, combined with tumor "omics" profiles, can optimally characterize the expression patterns and activity of specific tumor biomarkers. Subsequent in vitro and in vivo validation, of specific disease biomarkers (using multiple methodologies), can improve prediction of patient stratification according to drug response or nonresponse.
Insights
Biomarker-driven targeted therapy faces challenges in predicting patient response. This study reveals discrepancies in ERBB2 protein expression between cell cultures and tumors, highlighting the need for multi-method validation for accurate patient stratification in gastric cancer treatment.
Area of Science:
- Oncology
- Molecular Biology
- Biomedical Science
Background:
- Biomarker-driven targeted therapy, tailoring treatment to specific gene/protein levels, is complex.
- Trastuzumab's success in breast cancer contrasts with limited efficacy in gastric cancer (GC) due to resistance.
- Preclinical models for ERBB2-positive GC, like NCI-87, showed modest results, necessitating further investigation into resistance mechanisms.
Purpose of the Study:
- To investigate mechanisms of GC insensitivity to ERBB2-targeted therapies.
- To establish and characterize a diverse panel of GC cells for in vitro and in vivo analysis.
- To compare various methods for quantifying ERBB2 DNA and protein levels.
Main Methods:
- Established a diverse panel of GC cell lines with varying ERBB2 expression.
- Conducted comprehensive in vitro and in vivo characterization of these cell lines.
- Compared quantification methods for ERBB2 DNA (FISH, SISH) and protein (Western blot, IHC) in cell cultures and xenografts.
Main Results:
- High concordance was observed between biomarker assessment methods and RNA/protein expression.
- Significant differences in ERBB2 protein expression were found between cultured cells and mouse xenografts.
- Pathway analysis identified a signaling network from ERBB2, with frequent amplification of NFKBIE, PTK2, and PIK3CA in public gastric tumor data.
Conclusions:
- Comprehensive bioinformatics and multi-method validation are crucial for characterizing tumor biomarkers.
- In vitro and in vivo validation using multiple methodologies improves prediction of patient stratification for targeted therapies.
- Understanding ERBB2 signaling networks and resistance mechanisms can optimize treatment strategies for gastric cancer.
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