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Proliferation and Differentiation of Murine Myeloid Precursor 32D/G-CSF-R Cells
Published on: February 21, 2018
CDC25A governs proliferation and differentiation of FLT3-ITD acute myeloid leukemia
Sarah Bertoli1,2, Helena Boutzen1, Laure David1
1Cancer Research Center of Toulouse, Inserm UMR 1037, CNRS ERL 5294, Université de Toulouse, Oncopole, Toulouse, France.
Abstract:
We investigated cell cycle regulation in acute myeloid leukemia cells expressing the FLT3-ITD mutated tyrosine kinase receptor, an underexplored field in this disease. Upon FLT3 inhibition, CDC25A mRNA and protein were rapidly down-regulated, while levels of other cell cycle proteins remained unchanged. This regulation was dependent on STAT5, arguing for FLT3-ITD-dependent transcriptional regulation of CDC25A. CDC25 inhibitors triggered proliferation arrest and cell death of FLT3-ITD as well as FLT3-ITD/TKD AC-220 resistant cells, but not of FLT3-wt cells. Consistently, RNA interference-mediated knock-down of CDC25A reduced the proliferation of FLT3-ITD cell lines. Finally, the clonogenic capacity of primary FLT3-ITD AML cells was reduced by the CDC25 inhibitor IRC-083864, while FLT3-wt AML and normal CD34+ myeloid cells were unaffected. In good agreement, in a cohort of 100 samples from AML patients with intermediate-risk cytogenetics, high levels of CDC25A mRNA were predictive of higher clonogenic potential in FLT3-ITD+ samples, not in FLT3-wt ones.Importantly, pharmacological inhibition as well as RNA interference-mediated knock-down of CDC25A also induced monocytic differentiation of FLT3-ITD positive cells, as judged by cell surface markers expression, morphological modifications, and C/EBPα phosphorylation. CDC25 inhibition also re-induced monocytic differentiation in primary AML blasts carrying the FLT3-ITD mutation, but not in blasts expressing wild type FLT3. Altogether, these data identify CDC25A as an early cell cycle transducer of FLT3-ITD oncogenic signaling, and as a promising target to inhibit proliferation and re-induce differentiation of FLT3-ITD AML cells.
Insights
FLT3-ITD mutations drive acute myeloid leukemia (AML) by altering cell cycle regulation via CDC25A. Targeting CDC25A inhibits FLT3-ITD AML proliferation and induces differentiation, offering a new therapeutic strategy.
Area of Science:
- Hematology
- Molecular Biology
- Cancer Research
Background:
- Acute myeloid leukemia (AML) with FLT3-ITD mutations has a poor prognosis.
- Cell cycle dysregulation is a hallmark of AML, but its specific mechanisms in FLT3-ITD AML are not fully understood.
Purpose of the Study:
- To investigate the role of CDC25A in FLT3-ITD-driven AML cell cycle regulation.
- To evaluate CDC25A as a therapeutic target for FLT3-ITD AML.
Main Methods:
- Investigated FLT3 inhibition effects on cell cycle proteins in FLT3-ITD AML cells.
- Utilized CDC25 inhibitors and RNA interference (RNAi) to assess proliferation and differentiation.
- Analyzed primary AML patient samples and correlated CDC25A levels with clinical outcomes.
Main Results:
- FLT3 inhibition rapidly down-regulated CDC25A mRNA and protein in a STAT5-dependent manner.
- CDC25A inhibition/knockdown arrested proliferation, induced cell death in FLT3-ITD AML, and reduced clonogenic capacity.
- CDC25A inhibition also induced monocytic differentiation in FLT3-ITD AML cells, including primary samples.
Conclusions:
- CDC25A is an early transducer of FLT3-ITD oncogenic signaling in AML.
- Targeting CDC25A represents a promising strategy to inhibit proliferation and re-induce differentiation in FLT3-ITD AML.
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