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Updated: Jun 9, 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
Discovery and characterization of novel mutant FLT3 kinase inhibitors
Ellen Weisberg1, Hwan Geun Choi, Rosemary Barrett
1Department of Medical Oncology/Hematologic Neoplasia, Dana-Farber Cancer Institute, Boston, Massachusetts 02115, USA. ellen_weisberg@dfci.harvard.edu
Abstract:
For a subpopulation of acute myeloid leukemia (AML) patients, the constitutively activated tyrosine kinase, mutant FLT3, has emerged as a promising target for therapy. The development of drug resistance, however, is a growing concern for mutant FLT3 inhibitors, such as PKC412. Potential therapeutic benefit can arise from the combination of two structurally diverse inhibitors that target-but bind differently to-the same protein or from two inhibitors with completely different mechanisms of action. Thus, there is a need for identification and development of novel FLT3 inhibitors that have the ability to positively combine with PKC412 or standard chemotherapeutic agents used to treat AML as a way to suppress the development of drug resistance and consequently prolong disease remission. Here, we report the effects of the novel type II ATP-competitive inhibitors, HG-7-85-01 and HG-7-86-01, which potently and selectively target mutant FLT3 protein kinase activity and inhibit the proliferation of cells harboring FLT3-ITD or FLT3 kinase domain point mutants via induction of apoptosis and cell cycle inhibition. Antileukemic activity of HG-7-85-01 was shown in vivo to be comparable with that observed with PKC412 in a bioluminescence assay using NCr nude mice harboring Ba/F3-FLT3-ITD-luc+ cells. HG-7-85-01 was also observed to override PKC412 resistance. Finally, HG-7-85-01 and HG-7-86-01 synergized with PKC412 and standard chemotherapeutic agents against mutant PKC412-sensitive and some PKC412-resistant, FLT3-positive cells. Thus, we present a structurally novel class of FLT3 inhibitors that warrants consideration for clinical testing against drug-resistant disease in AML patients.
Insights
Novel FLT3 inhibitors, HG-7-85-01 and HG-7-86-01, show potent antileukemic activity in acute myeloid leukemia (AML) models. These inhibitors overcome resistance to existing therapies and synergize with standard treatments.
Area of Science:
- Oncology
- Pharmacology
- Biochemistry
Background:
- Mutant FMS-like tyrosine kinase 3 (FLT3) is a key driver in a subset of acute myeloid leukemia (AML) patients.
- Drug resistance to current FLT3 inhibitors like PKC412 is a significant clinical challenge.
- Combination therapies are needed to overcome resistance and prolong remission in AML.
Purpose of the Study:
- To identify and characterize novel FLT3 inhibitors with potential to overcome drug resistance.
- To evaluate the efficacy of new inhibitors, HG-7-85-01 and HG-7-86-01, alone and in combination with existing treatments.
Main Methods:
- In vitro assessment of FLT3 inhibition, cell proliferation, apoptosis, and cell cycle.
- In vivo efficacy studies using bioluminescence assays in mouse models.
- Evaluation of drug synergy with PKC412 and standard chemotherapeutic agents.
Main Results:
- HG-7-85-01 and HG-7-86-01 potently and selectively inhibit mutant FLT3 kinase activity.
- These novel inhibitors induce apoptosis and cell cycle arrest in FLT3-mutated AML cells.
- HG-7-85-01 demonstrated comparable in vivo antileukemic activity to PKC412 and overcame PKC412 resistance.
- HG-7-85-01 and HG-7-86-01 synergized with PKC412 and standard AML chemotherapeutics.
Conclusions:
- HG-7-85-01 and HG-7-86-01 represent a novel class of type II ATP-competitive FLT3 inhibitors.
- These compounds show promise for treating drug-resistant FLT3-mutated AML.
- Further clinical investigation of these inhibitors is warranted for patients with resistant disease.
