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Updated: Dec 30, 2025

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
Deciphering the molecular mechanism of FLT3 resistance mutations
Panagiota S Georgoulia1, Sinisa Bjelic1, Ran Friedman1
1Department of Chemistry and Biomedical Sciences, Linnaeus University, Kalmar, Sweden.
Abstract:
FMS-like tyrosine kinase 3 (FLT3) has been found to be mutated in ~ 30% of acute myeloid leukaemia patients. Small-molecule inhibitors targeting FLT3 that are currently approved or still undergoing clinical trials are subject to drug resistance due to FLT3 mutations. How these mutations lead to drug resistance is hitherto poorly understood. Herein, we studied the molecular mechanism of the drug resistance mutations D835N, Y842S and M664I, which confer resistance against the most advanced inhibitors, quizartinib and PLX3397 (pexidartinib), using enzyme kinetics and computer simulations. In vitro kinase assays were performed to measure the comparative catalytic activity of the native protein and the mutants, using a bacterial expression system developed to this aim. Our results reveal that the differential drug sensitivity profiles can be rationalised by the dynamics of the protein-drug interactions and perturbation of the intraprotein contacts upon mutations. Drug binding induced a single conformation in the native protein, whereas multiple conformations were observed otherwise (in the mutants or in the absence of drugs). The end-point kinetics measurements indicated that the three resistant mutants conferred catalytic activity that is at least as high as that of the reference without such mutations. Overall, our calculations and measurements suggest that the structural dynamics of the drug-resistant mutants that affect the active state and the increased conformational freedom of the remaining inactive drug-bound population are the two major factors that contribute to drug resistance in FLT3 harbouring cancer cells. Our results explain the mechanism of drug resistance mutations and can aid to the design of more effective tyrosine kinase inhibitors.
Insights
Drug resistance in acute myeloid leukemia (AML) is linked to FMS-like tyrosine kinase 3 (FLT3) mutations. This study reveals how specific FLT3 mutations alter protein dynamics, causing resistance to targeted therapies.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- FMS-like tyrosine kinase 3 (FLT3) mutations occur in ~30% of acute myeloid leukemia (AML) patients.
- Approved and investigational FLT3 inhibitors face drug resistance mediated by FLT3 mutations.
- The molecular mechanisms underlying FLT3 inhibitor resistance remain poorly understood.
Purpose of the Study:
- To investigate the molecular mechanisms of drug resistance conferred by FLT3 mutations D835N, Y842S, and M664I.
- To understand how these mutations affect the efficacy of advanced FLT3 inhibitors like quizartinib and PLX3397.
Main Methods:
- Utilized enzyme kinetics and computer simulations to study FLT3 mutations.
- Performed in vitro kinase assays using a bacterial expression system to compare native and mutant protein activity.
- Analyzed protein-drug interactions and intraprotein contact perturbations.
Main Results:
- Resistant FLT3 mutants (D835N, Y842S, M664I) exhibit catalytic activity comparable to the wild-type.
- Drug binding induces a single conformation in the native FLT3 protein, while mutants adopt multiple conformations.
- Mutations perturb intraprotein contacts and protein dynamics, leading to differential drug sensitivity.
Conclusions:
- Drug resistance in FLT3-mutated AML is driven by altered structural dynamics of resistant mutants.
- Increased conformational flexibility in the inactive, drug-bound state of mutants contributes significantly to resistance.
- Understanding these mechanisms can guide the development of next-generation FLT3 inhibitors.
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