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Next Generation Sequencing for the Detection of Actionable Mutations in Solid and Liquid Tumors
Published on: September 20, 2016
Clinical Utility of Next-Generation Sequencing in Acute Myeloid Leukemia
Fei Yang1,2, Tauangtham Anekpuritanang1,3, Richard D Press4,5
1Department of Pathology, Oregon Health and Science University, 3181 SW Sam Jackson Park Road, L113, Portland, OR, 97239, USA.
Abstract:
Acute myeloid leukemia (AML) is a genetically heterogeneous disease that, even with current advancements in therapy, continues to have a poor prognosis. Recurrent somatic mutations have been identified in a core set of pathogenic genes including FLT3 (25-30% prevalence), NPM1 (25-30%), DNMT3A (25-30%), IDH1/2 (5-15%), and TET2 (5-15%), with direct diagnostic, prognostic, and targeted therapeutic implications. Advances in the understanding of the complex mechanisms of AML leukemogenesis have led to the development and recent US Food and Drug Administration (FDA) approval of several targeted therapies: midostaurin and gilteritinib targeting activated FLT3, and ivosidenib and enasidenib targeting mutated IDH1/2. Several additional drug candidates targeting other recurrently mutated gene pathways in AML are also being actively developed. Furthermore, outside of the realm of predicting responses to targeted therapies, many other mutated genes, which comprise the so-called long tail of oncogenic drivers in AML, have been shown to provide clinically useful diagnostic and prognostic information for AML patients. Many of these recurrently mutated genes have also been shown to be excellent biomarkers for post-treatment minimal residual disease (MRD) monitoring for assessing treatment response and predicting future relapse. In addition, the identification of germline mutations in a set of genes predisposing to myeloid malignancies may directly inform treatment decisions (particularly stem cell transplantation) and impact other family members. Recent advances in sequencing technology have made it practically and economically feasible to evaluate many genes simultaneously using next-generation sequencing (NGS). Mutation screening with NGS panels has been recommended by national and international professional guidelines as the standard of care for AML patients. NGS-based detection of the heterogeneous genes commonly mutated in AML has practical clinical utility for disease diagnosis, prognosis, prediction of targeted therapy response, and MRD monitoring.
Insights
Genetic mutations in acute myeloid leukemia (AML) impact diagnosis, prognosis, and targeted therapy. Next-generation sequencing (NGS) is now standard for comprehensive mutation screening in AML patients.
Area of Science:
- Hematology
- Oncology
- Genetics
Background:
- Acute myeloid leukemia (AML) is a complex cancer with a poor prognosis despite advances.
- Key recurrent mutations in genes like FLT3, NPM1, DNMT3A, IDH1/2, and TET2 influence AML's clinical course.
- Understanding these mutations is crucial for diagnosis, prognosis, and developing targeted therapies.
Purpose of the Study:
- To highlight the clinical utility of comprehensive genetic mutation profiling in AML.
- To emphasize the role of next-generation sequencing (NGS) in AML management.
- To discuss the implications of genetic mutations for targeted therapies and minimal residual disease (MRD) monitoring.
Main Methods:
- Analysis of recurrent somatic mutations in AML, including prevalence and clinical significance.
- Review of targeted therapies approved for FLT3 and IDH1/2 mutations.
- Discussion of the role of NGS in identifying a broad spectrum of AML mutations.
Main Results:
- Targeted therapies (midostaurin, gilteritinib, ivosidenib, enasidenib) are now available for specific mutations.
- Numerous other mutated genes provide diagnostic, prognostic, and MRD monitoring value.
- NGS panels are recommended for standard care, enabling simultaneous evaluation of multiple genes.
Conclusions:
- NGS-based mutation screening is essential for AML diagnosis, prognosis, and guiding targeted therapy.
- Identifying genetic alterations improves patient stratification and treatment response assessment.
- Germline mutations can also inform treatment decisions and family risk assessment.

