Analytical Validation of a Hybrid Capture–Based Next-Generation Sequencing Clinical Assay for Genomic Profiling of Cell-Free Circulating Tumor DNA

Travis Clark(Foundation Medicine (United States)), Jon Chung(Tech Foundation), Mark Kennedy(Foundation Medicine (United States)), Jason D. Hughes(Foundation Medicine (United States)), Niru Chennagiri(Foundation Medicine (United States)), Daniel S. Lieber(Foundation Medicine (United States)), Bernard J. Fendler(Foundation Medicine (United States)), Lauren Young(Foundation Medicine (United States)), Mandy Zhao(Foundation Medicine (United States)), Michael J. Coyne(Foundation Medicine (United States)), Virginia Breese(Foundation Medicine (United States)), Geneva Young(Foundation Medicine (United States)), Amy Donahue(Foundation Medicine (United States)), Dean C. Pavlick(Foundation Medicine (United States)), Alyssa Tsiros(Foundation Medicine (United States)), Timothy Brennan(Foundation Medicine (United States)), Shan Zhong(Foundation Medicine (United States)), Tariq I. Mughal(Foundation Medicine (United States)), Mark Bailey(Foundation Medicine (United States)), Jie He(Foundation Medicine (United States)), Steven Roels(Foundation Medicine (United States)), Garrett M. Frampton(Foundation Medicine (United States)), Jill M. Spoerke, Steven Gendreau, Mark R. Lackner, Erica Schleifman, Eric Peters, Jeffrey S. Ross(Foundation Medicine (United States)), Siraj M. Ali(Foundation Medicine (United States)), Vincent A. Miller(Foundation Medicine (United States)), Jeffrey P. Gregg(University of California Davis Medical Center), Philip J. Stephens(Foundation Medicine (United States)), Allison W. Welsh(Foundation Medicine (United States)), Geoff Otto(Foundation Medicine (United States)), Doron Lipson(Tech Foundation)
Journal of Molecular Diagnostics
June 22, 2018
Cited by 200Open Access
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Abstract

Genomic profiling of circulating tumor DNA derived from cell-free DNA (cfDNA) in blood can provide a noninvasive method for detecting genomic biomarkers to guide clinical decision making for cancer patients. We developed a hybrid capture-based next-generation sequencing assay for genomic profiling of circulating tumor DNA from blood (FoundationACT). High-sequencing coverage and molecular barcode-based error detection enabled accurate detection of genomic alterations, including short variants (base substitutions, short insertions/deletions) and genomic re-arrangements at low allele frequencies (AFs), and copy number amplifications. Analytical validation was performed on 2666 reference alterations. The assay achieved >99% overall sensitivity (95% CI, 99.1%-99.4%) for short variants at AF >0.5%, >95% sensitivity (95% CI, 94.2%-95.7%) for AF 0.25% to 0.5%, and 70% sensitivity (95% CI, 68.2%-71.5%) for AF 0.125% to 0.25%. No false positives were detected in 62 samples from healthy volunteers. Genomic alterations detected by FoundationACT demonstrated high concordance with orthogonal assays run on the same clinical cfDNA samples. In 860 routine clinical FoundationACT cases, genomic alterations were detected in cfDNA at comparable frequencies to tissue; for the subset of cases with temporally matched tissue and blood samples, 75% of genomic alterations and 83% of short variant mutations detected in tissue were also detected in cfDNA. On the basis of analytical validation results, FoundationACT has been approved for use in our Clinical Laboratory Improvement Amendments-certified/College of American Pathologists-accredited/New York State-approved laboratory.


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