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Inhibiting TRK Proteins in Clinical Cancer Therapy
Allison M Lange1, Hui-Wen Lo2,3
1Department of Cancer Biology, Wake Forest University School of Medicine, Winston-Salem, NC 27157, USA. amlange9@gmail.com.
Abstract:
Gene rearrangements resulting in the aberrant activity of tyrosine kinases have been identified as drivers of oncogenesis in a variety of cancers. The tropomyosin receptor kinase (TRK) family of tyrosine receptor kinases is emerging as an important target for cancer therapeutics. The TRK family contains three members, TRKA, TRKB, and TRKC, and these proteins are encoded by the genes NTRK1, NTRK2, and NTRK3, respectively. To activate TRK receptors, neurotrophins bind to the extracellular region stimulating dimerization, phosphorylation, and activation of downstream signaling pathways. Major known downstream pathways include RAS/MAPK/ERK, PLCγ, and PI3K/Akt. While being rare in most cancers, TRK fusions with other proteins have been well-established as oncogenic events in specific malignancies, including glioblastoma, papillary thyroid carcinoma, and secretory breast carcinomas. TRK protein amplification as well as alternative splicing events have also been described as contributors to cancer pathogenesis. For patients harboring alterations in TRK expression or activity, TRK inhibition emerges as an important therapeutic target. To date, multiple trials testing TRK-inhibiting compounds in various cancers are underway. In this review, we will summarize the current therapeutic trials for neoplasms involving NTKR gene alterations, as well as the promises and setbacks that are associated with targeting gene fusions.
Insights
Tropomyosin receptor kinase (TRK) gene fusions drive oncogenesis and are emerging therapeutic targets. This review summarizes ongoing clinical trials for TRK-inhibiting compounds in various cancers.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Aberrant tyrosine kinase activity due to gene rearrangements drives oncogenesis.
- The tropomyosin receptor kinase (TRK) family, including TRKA, TRKB, and TRKC, are key targets in cancer therapy.
- TRK activation involves neurotrophin binding, dimerization, and downstream signaling via pathways like RAS/MAPK/ERK and PI3K/Akt.
Purpose of the Study:
- To review current therapeutic trials targeting neurotrophic tyrosine receptor kinase (NTRK) gene alterations.
- To discuss the potential and challenges of TRK inhibition for neoplasms with NTRK gene fusions.
Main Methods:
- Literature review of clinical trials and research on TRK fusions and inhibitors.
- Analysis of oncogenic mechanisms involving TRK alterations, including gene fusions, amplification, and alternative splicing.
Main Results:
- TRK fusions are established oncogenic drivers in specific cancers like thyroid and breast carcinomas.
- TRK protein amplification and alternative splicing also contribute to cancer pathogenesis.
- Multiple clinical trials are evaluating TRK-inhibiting agents in diverse cancer types.
Conclusions:
- TRK inhibition represents a promising therapeutic strategy for patients with NTRK gene alterations.
- Understanding the promises and setbacks of targeting TRK fusions is crucial for advancing cancer treatment.
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