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Updated: May 30, 2026

Comet Assay to Quantify DNA Damage in FLT3 Mutant-expressing 32D Cells after Exposure to Type I and Type II FLT3 Inhibitors
Published on: October 17, 2025
Antileukemic Effects of Novel First- and Second-Generation FLT3 Inhibitors: Structure-Affinity Comparison
Ellen Weisberg1, Johannes Roesel, Pascal Furet
1Department of Medical Oncology/Hematologic Neoplasia, Dana Farber Cancer Institute, Boston, MA, USA.
Abstract:
Constitutively activated mutant FLT3 has emerged as a promising target for therapy for the subpopulation of acute myeloid leukemia (AML) patients who harbor it. The small molecule inhibitor, PKC412, targets mutant FLT3 and is currently in late-stage clinical trials. However, the identification of PKC412-resistant leukemic blast cells in the bone marrow of AML patients has propelled the development of novel and structurally distinct FLT3 inhibitors that have the potential to override drug resistance and more efficiently prevent disease progression or recurrence. Here, we present the novel first-generation "type II" FLT3 inhibitors, AFG206, AFG210, and AHL196, and the second-generation "type II" derivatives and AST487 analogs, AUZ454 and ATH686. All agents potently and selectively target mutant FLT3 protein kinase activity and inhibit the proliferation of cells harboring FLT3 mutants via induction of apoptosis and cell cycle inhibition. Cross-resistance between "type I" inhibitors, PKC412 and AAE871, was demonstrated. While cross-resistance was also observed between "type I" and first-generation "type II" FLT3 inhibitors, the high potency of the second-generation "type II" inhibitors was sufficient to potently kill "type I" inhibitor-resistant mutant FLT3-expressing cells. The increased potency observed for the second-generation "type II" inhibitors was observed to be due to an improved interaction with the ATP pocket of FLT3, specifically associated with introduction of a piperazine moiety and placement of an amino group in position 2 of the pyrimidine ring. Thus, we present 2 structurally novel classes of FLT3 inhibitors characterized by high selectivity and potency toward mutant FLT3 as a molecular target. In addition, presentation of the antileukemic effects of "type II" inhibitors, such as AUZ454 and ATH686, highlights a new class of highly potent FLT3 inhibitors able to override drug resistance that less potent "type I" inhibitors and "type II" first-generation FLT3 inhibitors cannot.
Insights
Novel FLT3 inhibitors were developed to overcome resistance in acute myeloid leukemia (AML) therapy. Second-generation "type II" FLT3 inhibitors show high potency against resistant cells, offering a new therapeutic strategy for AML patients.
Area of Science:
- Pharmacology and Medicinal Chemistry
- Hematology and Oncology
Background:
- Activating mutations in FLT3 are common in acute myeloid leukemia (AML), making it a key therapeutic target.
- Existing FLT3 inhibitors like PKC412 face challenges due to the emergence of drug-resistant leukemic cells.
Purpose of the Study:
- To develop novel FLT3 inhibitors capable of overcoming resistance observed with current therapies.
- To characterize the efficacy and mechanism of action of new "type II" FLT3 inhibitors.
Main Methods:
- Synthesis and characterization of novel first-generation ("type II") FLT3 inhibitors (AFG206, AFG210, AHL196) and second-generation ("type II") derivatives (AUZ454, ATH686).
- Assessment of inhibitor potency and selectivity against mutant FLT3 kinase activity.
- Evaluation of cellular proliferation inhibition, apoptosis induction, and cell cycle arrest in FLT3-mutated AML cells.
- Cross-resistance studies comparing "type I" and "type II" inhibitors.
Main Results:
- All novel FLT3 inhibitors potently and selectively targeted mutant FLT3 kinase activity.
- Second-generation "type II" inhibitors (AUZ454, ATH686) demonstrated high potency against "type I" inhibitor-resistant cells.
- Improved interaction with the FLT3 ATP pocket, attributed to specific structural modifications, underlies the enhanced potency of second-generation "type II" inhibitors.
Conclusions:
- Structurally novel "type II" FLT3 inhibitors exhibit high selectivity and potency against mutant FLT3.
- Second-generation "type II" FLT3 inhibitors, particularly AUZ454 and ATH686, can overcome resistance to "type I" inhibitors and first-generation "type II" agents.
- These findings highlight a promising new class of FLT3 inhibitors for overcoming drug resistance in AML treatment.
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