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Updated: Aug 24, 2026

Pre-clinical Evaluation of Tyrosine Kinase Inhibitors for Treatment of Acute Leukemia
Published on: September 18, 2013
Flt3 receptor tyrosine kinase as a drug target in leukemia
Dirk Schmidt-Arras1, Joachim Schwäble, Frank-D Böhmer
1Institute of Molecular Cell Biology, Medical Faculty, Friedrich Schiller University, Jena, Germany.
Abstract:
The hematopoietic class III receptor tyrosine kinase (RTK) Flt3 (Flk2, STK1) has recently received much attention as a potential drug target. Activation of Flt3 by different types of mutations plays an important role for proliferation, resistance to apoptosis, and prevention of differentiation of leukemic blasts in acute myeloid leukemia (AML). At least one type of such mutations - an internal tandem duplication in the Flt3 juxtamembrane domain (Flt3-ITD) - has been associated with an unfavorable prognosis. Signal transduction of Flt3 involves activation of several conserved pathways, including the RAS/MAP-Kinase and the phosphoinositide-3-kinase/Akt signaling cascades. Transforming versions of Flt3 exhibit altered signaling, for example a very pronounced activation of STAT5, ultimately resulting in alternate profiles of gene expression and cell transformation. Selective inhibitors of Flt3 tyrosine kinase activity have the potential to suppress aberrant Flt3 signaling. Although highly homologous to other class III RTKs, Flt3 is resistant to the phenylaminopyrimidine STI571 (Gleevec, Imatinib), a potent inhibitor of other RTKs in the family, such as the PDGFbeta-receptor or c-Kit. STI571 binding to Flt3 is prevented by the phenylalanine 691 side-chain in the ATP binding center and mutating this site to threonine renders the corresponding Flt3 mutant sensitive to STI571. Compounds of several other structural families, including the quinoxaline AG1296, the bis(1H-2-indolyl)-1-methanone D-65476, the indolinones SU5416 and SU11248, the indolocarbazoles PKC412 and CEP-701, and the piperazonyl quinazoline CT53518, are potent inhibitors of Flt3 kinase. They exhibit different selectivity profiles, both with respect to other kinases and among wildtype Flt3 and its activated versions. These compounds hold promise as novel drugs against AML and as probes for understanding activation mechanisms and signaling pathways in the class III RTK family.
Insights
Flt3 mutations drive acute myeloid leukemia (AML) by promoting cell growth and preventing differentiation. Selective Flt3 inhibitors show promise as targeted AML therapies and research tools.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Flt3 is a hematopoietic class III receptor tyrosine kinase implicated in acute myeloid leukemia (AML) pathogenesis.
- Flt3 mutations, particularly internal tandem duplications (Flt3-ITD), are linked to poor prognosis in AML.
- Aberrant Flt3 signaling activates key pathways like RAS/MAPK and PI3K/Akt, driving leukemic cell transformation.
Purpose of the Study:
- To explore the role of Flt3 as a drug target in AML.
- To identify and characterize selective inhibitors of Flt3 tyrosine kinase activity.
- To investigate Flt3 signaling pathways and activation mechanisms.
Main Methods:
- Review of existing literature on Flt3 mutations and signaling in AML.
- Analysis of Flt3's resistance to known RTK inhibitors like STI571.
- Identification and characterization of various Flt3 kinase inhibitors from different structural families.
Main Results:
- Flt3 activation by mutations is crucial for leukemic blast proliferation, survival, and differentiation arrest in AML.
- Flt3 is resistant to STI571 due to a specific amino acid in its ATP binding site, but mutations can restore sensitivity.
- Several novel compounds (quinoxalines, indolinones, indolocarbazoles, etc.) demonstrate potent Flt3 inhibition with varying selectivity profiles.
Conclusions:
- Selective Flt3 inhibitors represent a promising therapeutic strategy for AML.
- These inhibitors can serve as valuable chemical probes to elucidate Flt3 signaling and activation mechanisms.
- Targeting Flt3 offers a potential avenue for developing novel anti-leukemic drugs.
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