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

Plos One
|August 31, 2013
PubMed

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.

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