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Updated: May 8, 2026

Testing Targeted Therapies in Cancer using Structural DNA Alteration Analysis and Patient-Derived Xenografts
Published on: July 25, 2020
Development and validation of a clinical trial patient stratification assay that interrogates 27 mutation sites in
Ken C N Chang1, Stefan Galuska, Russell Weiner
1Clinical Development Laboratory, Merck & Co, Inc., Rahway, New Jersey, USA. ken.chang@merck.com
Abstract:
Somatic mutations identified on genes related to the cancer-developing signaling pathways have drawn attention in the field of personalized medicine in recent years. Treatments developed to target a specific signaling pathway may not be effective when tumor activating mutations occur downstream of the target and bypass the targeted mechanism. For instance, mutations detected in KRAS/BRAF/NRAS genes can lead to EGFR-independent intracellular signaling pathway activation. Most patients with these mutations do not respond well to anti-EGFR treatment. In an effort to detect various mutations in FFPE tissue samples among multiple solid tumor types for patient stratification many mutation assays were evaluated. Since there were more than 30 specific mutations among three targeted RAS/RAF oncogenes that could activate MAPK pathway genes, a custom designed Single Nucleotide Primer Extension (SNPE) multiplexing mutation assay was developed and analytically validated as a clinical trial assay. Throughout the process of developing and validating the assay we overcame many technical challenges which include: the designing of PCR primers for FFPE tumor tissue samples versus normal blood samples, designing of probes for detecting consecutive nucleotide double mutations, the kinetics and thermodynamics aspects of probes competition among themselves and against target PCR templates, as well as validating an assay when positive control tumor tissue or cell lines with specific mutations are not available. We used Next Generation sequencing to resolve discordant calls between the SNPE mutation assay and Sanger sequencing. We also applied a triplicate rule to reduce potential false positives and false negatives, and proposed special considerations including pre-define a cut-off percentage for detecting very low mutant copies in the wild-type DNA background.
Insights
Developing a custom Single Nucleotide Primer Extension (SNPE) assay effectively detects multiple RAS/RAF mutations in FFPE tumor samples, crucial for personalized cancer medicine and patient stratification.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Somatic mutations in cancer signaling pathways are key in personalized medicine.
- Mutations downstream of targeted pathways, like KRAS/BRAF/NRAS, can cause treatment resistance (e.g., to anti-EGFR therapy).
Purpose of the Study:
- To develop and validate a multiplexed mutation assay for detecting over 30 specific mutations in RAS/RAF oncogenes.
- To enable patient stratification for targeted therapies by analyzing mutations in FFPE tissue samples across various solid tumors.
Main Methods:
- A custom Single Nucleotide Primer Extension (SNPE) multiplexing assay was designed and analytically validated.
- Technical challenges including primer design for FFPE samples, probe design for double mutations, and probe competition were addressed.
- Next Generation Sequencing (NGS) and Sanger sequencing were used for validation, alongside a triplicate rule to minimize errors.
Main Results:
- The SNPE assay was successfully developed and validated as a clinical trial assay.
- Methods were established to overcome challenges in detecting mutations in FFPE samples and validating assays without specific controls.
- NGS and Sanger sequencing confirmed assay performance, with strategies implemented to reduce false positives/negatives.
Conclusions:
- The validated SNPE assay provides a robust method for detecting critical RAS/RAF mutations in FFPE samples.
- This assay supports patient stratification for targeted cancer therapies, advancing personalized medicine.
- The study highlights solutions for common technical hurdles in molecular assay development for clinical use.

