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Updated: Aug 9, 2026

Molecular and Immunologic Techniques in a Genetically Engineered Mouse Model of Gastrointestinal Stromal Tumor
Published on: May 2, 2022
Polyclonal evolution of multiple secondary KIT mutations in gastrointestinal stromal tumors under treatment with
Eva Wardelmann1, Sabine Merkelbach-Bruse, Katharina Pauls
1Department of Pathology, University of Bonn Medical School, Bonn, Germany. eva.wardelmann@ukb.uni-bonn.de
Abstract:
Gastrointestinal stromal tumors (GIST) are characterized by a strong KIT receptor activation most often resulting from KIT mutations. In a smaller subgroup of tumors without KIT mutations, analogous activating mutations are found in the platelet-derived growth factor receptor alpha (PDGFRalpha) gene. Both PDGFRalpha and KIT receptors are targets of the tyrosine kinase inhibitor imatinib (Glivec) which has improved the treatment of advanced GISTs significantly. However, a subgroup of tumors show a secondary progress under therapy with imatinib after initial response. One possible mechanism of secondary resistance is the development of newly acquired KIT mutations. In the present study, we evaluated the frequency of such secondary KIT mutations in a series of GIST patients in which tumor tissue was resected under treatment. We examined one to seven different tumor areas in 32 cases (total of 104 samples) and found up to four newly acquired KIT mutations in 14 patients (43.8%). These were always located in exons encoding the first or second tyrosine kinase domain (exon 13, 14, or 17). Mutations were found only in a subset of samples analyzed from each case whereas others retained the wild-type sequence in the same region. There was never more than one new mutation in the same sample. Consistent with a secondary clonal evolution, the primary mutation was always detectable in all samples from each tumor. According to our results, the identification of newly acquired KIT mutations in addition to the primary mutation is dependent on the number of tissue samples analyzed and has high implications for further therapeutic strategies.
Insights
Secondary KIT mutations emerge in gastrointestinal stromal tumors (GIST) during imatinib treatment, leading to resistance. Identifying these acquired mutations requires analyzing multiple tumor samples for effective therapeutic strategies.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Gastrointestinal stromal tumors (GIST) often harbor KIT mutations, driving tumor growth.
- Imatinib therapy targets KIT and PDGFRalpha, improving advanced GIST treatment.
- Some GISTs develop secondary resistance to imatinib, necessitating further investigation.
Purpose of the Study:
- To determine the frequency of newly acquired KIT mutations in GIST patients undergoing imatinib treatment.
- To investigate the location and pattern of secondary KIT mutations.
- To assess the implications of secondary mutations for GIST treatment strategies.
Main Methods:
- Analysis of 104 tumor samples from 32 GIST patients treated with imatinib.
- Examination of one to seven distinct tumor areas per patient.
- Sequencing to detect acquired KIT mutations in specific kinase domains.
Main Results:
- Newly acquired KIT mutations were identified in 14 out of 32 patients (43.8%).
- These mutations were located in exons 13, 14, or 17, encoding kinase domains.
- Secondary mutations were present in a subset of samples, while others remained wild-type; primary mutations were consistently detected.
Conclusions:
- Acquired KIT mutations are a significant mechanism for imatinib resistance in GIST.
- Detecting these secondary mutations depends on comprehensive tumor sampling.
- Identifying acquired mutations is crucial for guiding future GIST therapeutic decisions.
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