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LMTK3 is essential for oncogenic KIT expression in KIT-mutant GIST and melanoma
Lillian R Klug1,2,3, Amber E Bannon4,5,6, Nathalie Javidi-Sharifi5,6
1Portland VA Health Care System, Portland, OR, USA. klugl@ohsu.edu.
Abstract:
Certain cancers, including gastrointestinal stromal tumor (GIST) and subsets of melanoma, are caused by somatic KIT mutations that result in KIT receptor tyrosine kinase constitutive activity, which drives proliferation. The treatment of KIT-mutant GIST has been revolutionized with the advent of KIT-directed cancer therapies. KIT tyrosine kinase inhibitors (TKI) are superior to conventional chemotherapy in their ability to control advanced KIT-mutant disease. However, these therapies have a limited duration of activity due to drug-resistant secondary KIT mutations that arise (or that are selected for) during KIT TKI treatment. To overcome the problem of KIT TKI resistance, we sought to identify novel therapeutic targets in KIT-mutant GIST and melanoma cells using a human tyrosine kinome siRNA screen. From this screen, we identified lemur tyrosine kinase 3 (LMTK3) and herein describe its role as a novel KIT regulator in KIT-mutant GIST and melanoma cells. We find that LMTK3 regulated the translation rate of KIT, such that loss of LMTK3 reduced total KIT, and thus KIT downstream signaling in cancer cells. Silencing of LMTK3 decreased cell viability and increased cell death in KIT-dependent, but not KIT-independent GIST and melanoma cell lines. Notably, LMTK3 silencing reduced viability of all KIT-mutant cell lines tested, even those with drug-resistant KIT secondary mutations. Furthermore, targeting of LMTK3 with siRNA delayed KIT-dependent GIST growth in a xenograft model. Our data suggest the potential of LMTK3 as a target for treatment of patients with KIT-mutant cancer, particularly after failure of KIT TKIs.
Insights
Lemur tyrosine kinase 3 (LMTK3) regulates KIT translation, offering a new therapeutic target for KIT-mutant cancers like GIST and melanoma. Targeting LMTK3 shows promise, especially when KIT tyrosine kinase inhibitors fail.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Somatic KIT mutations drive proliferation in cancers such as gastrointestinal stromal tumor (GIST) and melanoma.
- KIT tyrosine kinase inhibitors (TKIs) revolutionized GIST treatment but face resistance from secondary KIT mutations.
- Drug resistance limits the long-term efficacy of current KIT-targeted therapies.
Purpose of the Study:
- To identify novel therapeutic targets for KIT-mutant GIST and melanoma resistant to KIT TKIs.
- To investigate the role of lemur tyrosine kinase 3 (LMTK3) as a potential regulator of KIT signaling.
- To evaluate LMTK3 as a therapeutic target in KIT-mutant cancers.
Main Methods:
- A human tyrosine kinome siRNA screen was employed to identify novel therapeutic targets.
- The function of LMTK3 in regulating KIT expression and downstream signaling was assessed.
- The impact of LMTK3 silencing on cancer cell viability and tumor growth was evaluated in vitro and in vivo.
Main Results:
- LMTK3 was identified as a novel regulator of KIT translation in KIT-mutant cancer cells.
- Silencing LMTK3 reduced total KIT levels and downstream signaling, decreasing cell viability.
- LMTK3 targeting effectively reduced viability in drug-resistant KIT-mutant cell lines and delayed tumor growth in a xenograft model.
Conclusions:
- LMTK3 plays a critical role in regulating KIT expression and signaling in KIT-mutant cancers.
- Targeting LMTK3 presents a promising therapeutic strategy for KIT-mutant GIST and melanoma, particularly in cases of TKI resistance.
- LMTK3 inhibition offers a potential treatment avenue for patients who have failed prior KIT TKI therapies.
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