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Updated: Oct 11, 2025

Integration of Wet and Dry Bench Processes Optimizes Targeted Next-generation Sequencing of Low-quality and Low-quantity Tumor Biopsies
Published on: April 11, 2016
A scalable high-throughput targeted next-generation sequencing assay for comprehensive genomic profiling of solid
Jeffrey M Conroy1,2, Sarabjot Pabla3, Sean T Glenn1,4,5
1Research and Development, OmniSeq Inc., Buffalo, New York, United States of America.
Abstract:
Timely and accurate identification of molecular alterations in solid tumors is essential for proper management of patients with advanced cancers. This has created a need for rapid, scalable comprehensive genomic profiling (CGP) systems that detect an increasing number of therapeutically-relevant variant types and molecular signatures. In this study, we assessed the analytical performance of the TruSight Oncology 500 High-Throughput assay for detection of somatic alterations from formalin-fixed paraffin-embedded tissue specimens. In parallel, we developed supporting software and automated sample preparation systems designed to process up to 70 clinical samples in a single NovaSeq 6000TM sequencing run with a turnaround time of <7 days from specimen receipt to report. The results demonstrate that the scalable assay accurately and reproducibly detects small variants, copy number alterations, microsatellite instability (MSI) and tumor mutational burden (TMB) from 40ng DNA, and multiple gene fusions, including known and unknown partners and splice variants from 20ng RNA. 717 tumor samples and reference materials with previously known alterations in 96 cancer-related genes were sequenced to evaluate assay performance. All variant classes were reliably detected at consistent and reportable variant allele percentages with >99% overall accuracy and precision. Our results demonstrate that the high-throughput CGP assay is a reliable method for accurate detection of molecular alterations in support of precision therapeutics in oncology. The supporting systems and scalable workflow allow for efficient interpretation and prompt reporting of hundreds of patient cancer genomes per week with excellent analytical performance.
Insights
A new high-throughput comprehensive genomic profiling (CGP) assay accurately identifies molecular alterations in solid tumors. This scalable system enables rapid, precise detection of variants, supporting precision oncology therapeutics for advanced cancers.
Area of Science:
- Oncology
- Genomics
- Molecular Diagnostics
Background:
- Accurate molecular profiling of solid tumors is critical for advanced cancer patient management.
- There is a growing need for rapid, scalable comprehensive genomic profiling (CGP) systems.
- These systems must detect diverse therapeutically-relevant variant types and molecular signatures.
Purpose of the Study:
- To assess the analytical performance of the TruSight Oncology 500 High-Throughput assay.
- To evaluate its capability for detecting somatic alterations in formalin-fixed paraffin-embedded tumor specimens.
- To demonstrate the utility of a scalable CGP workflow for clinical applications.
Main Methods:
- Analytical performance assessment of the TruSight Oncology 500 High-Throughput assay.
- Development of supporting software and automated sample preparation for high-throughput processing.
- Sequencing of 717 tumor samples and reference materials to evaluate assay performance for various variant classes.
Main Results:
- The assay accurately and reproducibly detects small variants, copy number alterations, microsatellite instability (MSI), and tumor mutational burden (TMB) from DNA.
- It also detects multiple gene fusions, including novel partners and splice variants, from RNA.
- All variant classes were reliably detected with >99% overall accuracy and precision.
Conclusions:
- The high-throughput CGP assay is a reliable method for accurate molecular alteration detection in oncology.
- The supporting systems and scalable workflow enable efficient interpretation and prompt reporting of numerous cancer genomes weekly.
- This assay supports precision therapeutics by providing timely and accurate genomic insights.

