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Interlaboratory Comparison Study (Ring Test) of Next-Generation Sequencing-Based NTRK Fusion Detection in South Korea
Seung Eun Lee1, Mi-Sook Lee2, Yoon Kyung Jeon3
1Department of Pathology, Konkuk University Medical Center, Konkuk University School of Medicine, Seoul, Korea.
Purpose:
Tropomyosin receptor kinase (TRK) inhibitors are approved for the treatment of neurotrophic receptor tyrosine kinase (NTRK) fusion-positive tumors. The detection of NTRK fusion using a validated method is required before therapeutic application. An interlaboratory comparison study of next-generation sequencing (NGS)-based NTRK gene fusion detection with validated clinical samples was conducted at six major hospitals in South Korea.
Materials And Methods:
A total of 18 samples, including a positive standard reference and eight positive and nine negative clinical samples, were validated using the VENTANA pan-TRK (EPR17341) and TruSight Oncology 500 assays. These samples were then tested using four different NGS panels currently being used at the six participating institutions.
Results:
NTRK fusions were not detected in any of the nine negative clinical samples, demonstrating 100% specificity in all six participating institutions. All assays showed 100% analytical sensitivity to identify the NTRK fusion status in formalin-fixed paraffin-embedded (FFPE) samples, although with variable clinical sensitivity. False-negative results were due to low tumor purity, poor RNA quality, and DNA-based sequencing panel. The RNA-based targeted NGS assay showed an overall high success rate of identifying NTRK fusion status in FFPE samples.
Conclusion:
This study is the first to test the proficiency of NGS-based NTRK detection in South Korea with the largest participating institutions. RNA-based NGS assays to detect NTRK fusions can accurately characterize fusion transcripts if sufficient RNA of adequate quality is available. The comparative performance data will support the implementation of targeted NGS-based sequencing assays for NTRK fusion detection in routine diagnostics.
Insights
Next-generation sequencing (NGS) assays show high specificity for detecting neurotrophic receptor tyrosine kinase (NTRK) gene fusions in cancer. RNA-based NGS is effective for NTRK fusion detection in FFPE samples when RNA quality is adequate.
Area of Science:
- Oncology
- Molecular Diagnostics
- Genomics
Background:
- Tropomyosin receptor kinase (TRK) inhibitors target neurotrophic receptor tyrosine kinase (NTRK) fusion-positive tumors.
- Accurate detection of NTRK fusions is critical for guiding TRK inhibitor therapy.
Purpose of the Study:
- To evaluate the proficiency of next-generation sequencing (NGS) based NTRK gene fusion detection in South Korea.
- To compare the performance of different NGS panels in clinical settings.
Main Methods:
- An interlaboratory comparison study involving six major hospitals.
- Testing of 18 validated clinical samples (8 positive, 9 negative) using VENTANA pan-TRK and TruSight Oncology 500 assays.
- Analysis of four different NGS panels used in participating institutions.
Main Results:
- All participating institutions achieved 100% specificity in detecting NTRK fusions.
- RNA-based targeted NGS assays demonstrated high success rates and analytical sensitivity.
- False negatives were linked to low tumor purity, poor RNA quality, and DNA-based panels.
Conclusions:
- This study represents the largest proficiency test of NGS-based NTRK detection in South Korea.
- RNA-based NGS accurately detects NTRK fusions in FFPE samples with adequate RNA quality.
- Comparative performance data will aid in implementing NGS for routine NTRK fusion diagnostics.
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