Next-Generation Sequencing in the Clinical Setting Clarifies Patient Characteristics and Potential Actionability.
retrospective_cohort · Level III
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- Record sourced from PubMed, PMID 28939679.
- Also identified by DOI 10.1158/0008-5472.CAN-17-1569 and PMC identifier 5690871.
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Abstract
Enhancements in clinical-grade next-generation sequencing (NGS) have fueled the advancement of precision medicine in the clinical oncology field. Here, we survey the molecular profiles of 1,113 patients with diverse malignancies who successfully underwent clinical-grade NGS (236-404 genes) in an academic tertiary cancer center. Among the individual tumors examined, the majority showed at least one detectable alteration (97.2%). Among 2,045 molecular aberrations was the involvement of 302 distinct genes. The most commonly altered genes were <i>TP53</i> (47.0%), <i>CDKN2A</i> (18.0%), <i>TERT</i> (17.0%), and <i>KRAS</i> (16.0%), and the majority of patients had tumors that harbored multiple alterations. Tumors displayed a median of four alterations (range, 0-29). Most individuals had at least one potentially actionable alteration (94.7%), with the median number of potentially actionable alterations per patient being 2 (range, 0-13). A total of 1,048 (94.2%) patients exhibited a unique molecular profile, with either genes altered or loci within the gene(s) altered being distinct. Approximately 13% of patients displayed a genomic profile identical to at least one other patient; although genes altered were the same, the affected loci may have differed. Overall, our results underscore the complex heterogeneity of malignancies and argue that customized combination therapies will be essential to optimize cancer treatment regimens. <i>Cancer Res; 77(22); 6313-20. ©2017 AACR</i>.
Medical subject headings
- Biomarkers, Tumor
- Genetic Predisposition to Disease
- High-Throughput Nucleotide Sequencing
- Mutation
- Neoplasms