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Acute T-cell leukemias remain dependent on Notch signaling despite PTEN and INK4A/ARF loss
Hind Medyouf1, Xiuhua Gao, Florence Armstrong
1Terry Fox Laboratory, BC Cancer Agency, Vancouver, BC.
Abstract:
NOTCH1 is activated by mutation in more than 50% of human T-cell acute lymphoblastic leukemias (T-ALLs) and inhibition of Notch signaling causes cell-cycle/growth arrest, providing rationale for NOTCH1 as a therapeutic target. The tumor suppressor phosphatase and tensin homolog (PTEN) is also mutated or lost in up to 20% of cases. It was recently observed among human T-ALL cell lines that PTEN loss correlated with resistance to Notch inhibition, raising concern that patients with PTEN-negative disease may fail Notch inhibitor therapy. As these studies were limited to established cell lines, we addressed this issue using a genetically defined mouse retroviral transduction/bone marrow transplantation model and observed primary murine leukemias to remain dependent on NOTCH1 signaling despite Pten loss, with or without additional deletion of p16(Ink4a)/p19(Arf). We also examined 13 primary human T-ALL samples obtained at diagnosis and found no correlation between PTEN status and resistance to Notch inhibition. Furthermore, we noted in the mouse model that Pten loss accelerated disease onset and produced multiclonal tumors, suggesting NOTCH1 activation and Pten loss may collaborate in leukemia induction. Thus, in contrast to previous findings with established cell lines, these results indicate PTEN loss does not relieve primary T-ALL cells of their "addiction" to Notch signaling.
Insights
Loss of PTEN does not cause resistance to Notch inhibitor therapy in T-cell acute lymphoblastic leukemia (T-ALL). Primary T-ALL cells remain dependent on NOTCH1 signaling, even with PTEN loss.
Area of Science:
- Oncology
- Molecular Biology
- Hematology
Background:
- NOTCH1 mutations are common in T-cell acute lymphoblastic leukemia (T-ALL), making it a therapeutic target.
- PTEN loss/mutation occurs in T-ALL and has been linked to resistance to Notch inhibition in cell lines.
Purpose of the Study:
- To investigate if PTEN loss confers resistance to Notch inhibition in primary T-ALL.
- To determine the collaborative potential of NOTCH1 activation and PTEN loss in leukemia induction.
Main Methods:
- Utilized a genetically defined mouse retroviral transduction/bone marrow transplantation model.
- Examined primary murine leukemias and 13 primary human T-ALL samples at diagnosis.
- Assessed PTEN status and response to Notch inhibition.
Main Results:
- Primary murine leukemias remained dependent on NOTCH1 signaling despite Pten loss.
- No correlation was found between PTEN status and resistance to Notch inhibition in human T-ALL samples.
- Pten loss accelerated disease onset and promoted multiclonal tumors in the mouse model.
Conclusions:
- Contrary to cell line studies, PTEN loss does not relieve primary T-ALL cells from their dependence on NOTCH1 signaling.
- NOTCH1 activation and Pten loss may collaborate in the induction of T-ALL.
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