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Updated: Aug 27, 2025

Oncogenic Gene Fusion Detection Using Anchored Multiplex Polymerase Chain Reaction Followed by Next Generation Sequencing
Published on: July 5, 2019
Nefarious NTRK oncogenic fusions in pediatric sarcomas: Too many to Trk
Megha R Aepala1, Malalage N Peiris1, Zian Jiang1
1Department of Chemistry and Biochemistry, University of California San Diego, La Jolla, CA 92093-0367, USA.
Abstract:
Neurotrophic Tyrosine Receptor Kinase (NTRK) genes undergo chromosomal translocations to create novel open reading frames coding for oncogenic fusion proteins; the N-terminal portion, donated by various partner genes, becomes fused to the tyrosine kinase domain of either NTRK1, NTRK2, or NTRK3. NTRK fusion proteins have been identified as driver oncogenes in a wide variety of tumors over the past three decades, including Pediatric Gliomas, Papillary Thyroid Carcinoma, Spitzoid Neoplasms, Glioblastoma, and additional tumors. Importantly, NTRK fusions function as drivers of pediatric sarcomas, accounting for approximately 15% of childhood cancers including Infantile Fibrosarcoma (IFS), a subset of pediatric soft tissue sarcoma (STS). While tyrosine kinase inhibitors (TKIs), such as larotrectinib and entrectinib, have demonstrated profound results against NTRK fusion-positive cancers, acquired resistance to these TKIs has resulted in the formation of gatekeeper, solvent-front, and compound mutations. We present a comprehensive compilation of oncogenic fusions involving NTRKs focusing specifically on pediatric STS, examining their biological signaling pathways and mechanisms of activation. The importance of an obligatory dimerization or multimerization domain, invariably donated by the N-terminal fusion partner, is discussed using characteristic fusions that occur in pediatric sarcomas. In addition, examples are presented of oncogenic fusion proteins in which the N-terminal partners may contribute additional biological activities beyond an oligomerization domain. Lastly, therapeutic approaches to the treatment of pediatric sarcoma will be presented, using first generation and second-generation agents such as selitrectinib and repotrectinib.
Insights
Neurotrophic Tyrosine Receptor Kinase (NTRK) gene fusions drive pediatric soft tissue sarcomas. While targeted therapies show promise, resistance emerges, necessitating exploration of novel agents like selitrectinib and repotrectinib.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Neurotrophic Tyrosine Receptor Kinase (NTRK) genes can form oncogenic fusion proteins through chromosomal translocations.
- These NTRK fusions are driver oncogenes in various tumors, notably accounting for 15% of pediatric soft tissue sarcomas (STS), including Infantile Fibrosarcoma.
- Acquired resistance to tyrosine kinase inhibitors (TKIs) like larotrectinib and entrectinib is a growing clinical challenge.
Purpose of the Study:
- To compile and analyze oncogenic NTRK fusions, focusing on pediatric STS.
- To examine the biological signaling pathways and activation mechanisms of these fusions.
- To discuss the role of N-terminal fusion partners in dimerization/multimerization and other biological activities.
Main Methods:
- Comprehensive literature review and compilation of NTRK fusions in pediatric STS.
- Analysis of biological signaling pathways and mechanisms of oncogenic activation.
- Review of therapeutic strategies, including first- and second-generation TKIs.
Main Results:
- NTRK fusions are critical drivers in pediatric sarcomas, with N-terminal partners often providing essential dimerization/multimerization domains.
- Examples of fusion proteins where N-terminal partners confer additional biological activities are presented.
- Resistance mutations (gatekeeper, solvent-front, compound) to current TKIs have been identified.
Conclusions:
- Understanding NTRK fusion biology in pediatric STS is crucial for developing effective treatments.
- Next-generation TKIs like selitrectinib and repotrectinib offer potential therapeutic advancements.
- Targeting NTRK fusions remains a key strategy in the management of pediatric sarcomas.
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