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New Mechanisms of mTOR Pathway Activation in KIT-mutant Malignant GISTs
Jerzy Lasota1, Artur Kowalik2, Anna Felisiak-Golabek1
1Laboratory of Pathology, National Cancer Institute, Bethesda, MD.
Abstract:
A great majority of gastrointestinal stromal tumors (GISTs) are primarily driven by gain-of-function KIT receptor tyrosine kinase mutations that subsequently lead to activation of phosphatidiylinositol 3-kinase (PI3K)/mammalian target of rapamycin (mTOR) pathway, a downstream effector of KIT signaling. KIT tyrosine kinase inhibitor, imatinib mesylate, has been successfully used for the treatment of primary, advanced, and disseminated GISTs. Recently, activation of mTOR pathway independent of KIT signaling was demonstrated in imatinib mesylate naïve malignant GISTs and treatment-resistant metastatic tumors. This activation was attributed to oncogenic mutations in PIK3CA encoding PI3K 110α subunit, or to the inactivation of PTEN tumor suppressor, a potent mTOR negative regulator. In this study, mTOR pathway genes were evaluated in 14 imatinib mesylate naïve, KIT-mutant, malignant small intestinal GISTs using next-generation sequencing. Mutations were detected in 3 (21%) of 14 analyzed tumors: (1) c.3200A>T substitution in PIK3CB encoding PI3K 110β subunit, (2) c.1040A>G substitution in tuberous sclerosis complex (TSC2) encoding tuberin, mTOR down-regulator (3) c.6625C>G substitution in mTOR. At the protein level, these changes were predicted to cause, respectively, PIK3CB p.D1067V, TSC2 p.K347R, and mTOR p.L2209V mutations. Previously reported "in vitro" experiments with mouse 3T3 fibroblasts demonstrated oncogenic potential of PIK3CB p.D1067V and mTOR p.L2209V mutants; whereas, PolyPhen-2 software analysis predicted TSC2 p.K347R mutation to likely have a damaging impact on tuberin function. The results of this and previous studies indicate diversity of genetic changes leading to activation of PI3K-AKT-TSC-mTOR pathway in malignant GISTs. Extensive genotyping of the genes involved in mTOR pathway demonstrates common alterations that need to be considered in targeted treatment.
Insights
Gastrointestinal stromal tumors (GISTs) can activate the mTOR pathway through various genetic mutations, not just KIT. This study identified new mutations in PIK3CB, TSC2, and mTOR, highlighting diverse pathways for targeted GIST treatment.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Gastrointestinal stromal tumors (GISTs) are often driven by KIT mutations activating the PI3K/mTOR pathway.
- Imatinib mesylate is a standard treatment, but resistance and alternative activation pathways exist.
- mTOR pathway activation can occur independently of KIT signaling due to PIK3CA mutations or PTEN inactivation.
Purpose of the Study:
- To investigate genetic alterations in the mTOR pathway in imatinib-naïve, KIT-mutant, small intestinal GISTs.
- To identify novel mutations contributing to mTOR pathway activation in GIST.
- To understand the genetic diversity underlying GIST pathogenesis and treatment resistance.
Main Methods:
- Next-generation sequencing was used to analyze mTOR pathway genes.
- 14 imatinib-naïve, KIT-mutant, malignant small intestinal GIST samples were studied.
- In silico analysis (PolyPhen-2) predicted the functional impact of identified mutations.
Main Results:
- Mutations were detected in 3 out of 14 (21%) GIST samples.
- Identified mutations include PIK3CB (p.D1067V), TSC2 (p.K347R), and mTOR (p.L2209V).
- In vitro and in silico analyses suggest oncogenic potential and functional damage from these mutations.
Conclusions:
- The PI3K-AKT-TSC-mTOR pathway in GISTs can be activated by diverse genetic alterations beyond KIT.
- Novel mutations in PIK3CB, TSC2, and mTOR contribute to GIST development and progression.
- Comprehensive genotyping of mTOR pathway genes is crucial for developing effective targeted therapies for GIST.
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