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Employing Digital Droplet PCR to Detect BRAF V600E Mutations in Formalin-fixed Paraffin-embedded Reference Standard Cell Lines
Published on: October 8, 2015
High sensitivity of reverse-hybridization methodology in the detection of KRAS mutations from formalin-fixed
Maria Rosaria De Miglio1, Antonica Mura, Maria Gabriela Uras
1Department of Biomedical Sciences, University of Sassari, Sassari, Italy.
Abstract:
Colorectal cancer is ranked the third most common cancer worldwide in terms of incidence and the second in terms of mortality. Recent advances in therapeutic approaches to colorectal cancer have identified a potential role of anti-epidermal growth factor receptor (EGFR) targeted therapies as adjuvant treatment in advanced disease. New evidences showed that patients harboring KRAS mutations on codons 12 and 13 are not responsive to anti-EGFR monoclonal antibodies. Therefore, new mutational screening tools have been proposed to select patients who will benefit from anti-EGFR targeted therapy, reducing inappropriate, expensive treatments and unwarranted side effects. We evaluated the performance of a reverse-hybridization-based assay in the identification of the most frequent KRAS mutations on a series of 50 formalin-fixed, paraffin-embedded, advanced colorectal cancer specimens, in comparison with the direct gene sequencing technique. Thirty-two of the 50 cases (64%) showed KRAS single point mutations by reverse-hybridization technique. In particular, 93.8% of the mutations were reported on codon 12, whereas 6.2% of the mutations were reported on codon 13. Direct gene sequencing showed KRAS mutations on 28 of the 50 cases (56%) with 96.4% of the mutations on codon 12 and 3.6% on codon 13. Concordance between the assays was observed in 92% of the cases. Both reverse hybridization and gene sequencing methods have been shown to be suitable tests in detecting KRAS mutations from formalin-fixed, paraffin-embedded tumor specimens. In our experience, reverse-hybridization technique has been shown to be an effective and more sensitive assay for the identification of the most common KRAS mutations.
Insights
A new reverse-hybridization assay effectively identifies KRAS mutations in colorectal cancer patients, improving selection for anti-EGFR therapy and avoiding ineffective treatments.
Area of Science:
- Oncology
- Molecular Diagnostics
- Genetics
Background:
- Colorectal cancer is a leading cause of cancer incidence and mortality globally.
- Anti-epidermal growth factor receptor (EGFR) therapies offer potential adjuvant treatment for advanced colorectal cancer.
- KRAS mutations in codons 12 and 13 predict unresponsiveness to anti-EGFR monoclonal antibodies.
Purpose of the Study:
- To evaluate the performance of a reverse-hybridization assay for detecting KRAS mutations.
- To compare this assay with direct gene sequencing in advanced colorectal cancer specimens.
- To identify suitable diagnostic tools for patient selection in targeted therapy.
Main Methods:
- Analysis of 50 formalin-fixed, paraffin-embedded advanced colorectal cancer specimens.
- Performance evaluation of a reverse-hybridization-based assay.
- Comparison with direct gene sequencing for KRAS mutation detection.
Main Results:
- The reverse-hybridization assay identified KRAS mutations in 64% of cases (32/50).
- Mutations predominantly occurred in codon 12 (93.8%) and codon 13 (6.2%).
- Direct gene sequencing detected mutations in 56% of cases (28/50), with similar codon distribution.
- High concordance (92%) was observed between the two methods.
Conclusions:
- Both reverse hybridization and gene sequencing are suitable for detecting KRAS mutations in tumor specimens.
- The reverse-hybridization assay demonstrated higher sensitivity for common KRAS mutations.
- Accurate KRAS mutation screening is crucial for selecting patients who benefit from anti-EGFR therapy.
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