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Updated: May 2, 2026

Molecular and Immunologic Techniques in a Genetically Engineered Mouse Model of Gastrointestinal Stromal Tumor
Published on: May 2, 2022
Increased KIT inhibition enhances therapeutic efficacy in gastrointestinal stromal tumor
Teresa S Kim1, Michael J Cavnar, Noah A Cohen
1Authors' Affiliations: Departments of Surgery, Radiology, Developmental Biology, and Pathology, Memorial Sloan-Kettering Cancer Center, New York, New York.
Purpose:
Gastrointestinal stromal tumor (GIST) is the most common human sarcoma and a model of targeted molecular therapy. GIST depends on oncogenic KIT signaling and responds to the tyrosine kinase inhibitor imatinib. However, imatinib is rarely curative. We hypothesized that PLX3397, which inhibits KIT and colony-stimulating-factor-1 receptor (CSF1R), would be more efficacious than imatinib in GIST by also depleting tumor-associated macrophages, which are generally thought to support tumor growth.
Experimental Design:
We treated Kit(V558del/+) mice that develop GIST or mice with subcutaneous human GIST xenografts with imatinib or PLX3397 and analyzed tumor weight, cellular composition, histology, molecular signaling, and fibrosis. In vitro assays on human GIST cell lines were also performed.
Results:
PLX3397 was more effective than imatinib in reducing tumor weight and cellularity in both Kit(V558del)(/+) murine GIST and human GIST xenografts. The superiority of PLX3397 did not depend on depletion of tumor-associated macrophages, because adding CSF1R inhibition did not improve the effects of imatinib. Instead, PLX3397 was a more potent KIT inhibitor than imatinib in vitro. PLX3397 therapy also induced substantial intratumoral fibrosis, which impaired the subsequent delivery of small molecules.
Conclusions:
PLX3397 therapy has greater efficacy than imatinib in preclinical GIST models and warrants study in patients with GIST. The resultant intratumoral fibrosis may represent one of the barriers to achieving complete tumor eradication.
Insights
PLX3397 demonstrates superior efficacy over imatinib in preclinical gastrointestinal stromal tumor (GIST) models. This enhanced efficacy is attributed to potent KIT inhibition, not macrophage depletion, though fibrosis may impede eradication.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Gastrointestinal stromal tumor (GIST) is the most common human sarcoma.
- GIST relies on KIT signaling and is treated with imatinib, but rarely cured.
- Tumor-associated macrophages are implicated in GIST growth.
Purpose of the Study:
- To compare the efficacy of PLX3397, a dual KIT and CSF1R inhibitor, against imatinib in GIST.
- To investigate if PLX3397's potential superiority involves depleting tumor-associated macrophages.
- To evaluate PLX3397's impact on tumor cellularity, signaling, and fibrosis.
Main Methods:
- Treatment of Kit(V558del/+) mice with GIST and human GIST xenografts with imatinib or PLX3397.
- Analysis of tumor weight, cellular composition, histology, molecular signaling, and fibrosis.
- In vitro assays using human GIST cell lines.
Main Results:
- PLX3397 significantly reduced tumor weight and cellularity compared to imatinib in both murine and xenograft models.
- PLX3397's superior efficacy was independent of CSF1R inhibition or macrophage depletion.
- PLX3397 exhibited more potent KIT inhibition in vitro and induced significant intratumoral fibrosis.
Conclusions:
- PLX3397 shows greater efficacy than imatinib in preclinical GIST models.
- PLX3397 warrants clinical investigation for GIST treatment.
- Intratumoral fibrosis induced by PLX3397 may hinder complete tumor eradication.
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