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Published on: September 1, 2019
Ref-1/APE1 as a Transcriptional Regulator and Novel Therapeutic Target in Pediatric T-cell Leukemia
Jixin Ding1, Melissa L Fishel1,2, April M Reed1
1Department of Pediatrics, Herman B. Wells Center for Pediatric Research, Indiana University School of Medicine, Indianapolis, Indiana.
Abstract:
The increasing characterization of childhood acute lymphoblastic leukemia (ALL) has led to the identification of multiple molecular targets but has yet to translate into more effective targeted therapies, particularly for high-risk, relapsed T-cell ALL. Searching for master regulators controlling multiple signaling pathways in T-ALL, we investigated the multifunctional protein redox factor-1 (Ref-1/APE1), which acts as a signaling "node" by exerting redox regulatory control of transcription factors important in leukemia. Leukemia patients' transcriptome databases showed increased expression in T-ALL of Ref-1 and other genes of the Ref-1/SET interactome. Validation studies demonstrated that Ref-1 is expressed in high-risk leukemia T cells, including in patient biopsies. Ref-1 redox function is active in leukemia T cells, regulating the Ref-1 target NF-κB, and inhibited by the redox-selective Ref-1 inhibitor E3330. Ref-1 expression is not regulated by Notch signaling, but is upregulated by glucocorticoid treatment. E3330 disrupted Ref-1 redox activity in functional studies and resulted in marked inhibition of leukemia cell viability, including T-ALL lines representing different genotypes and risk groups. Potent leukemia cell inhibition was seen in primary cells from ALL patients, relapsed and glucocorticoid-resistant T-ALL cells, and cells from a murine model of Notch-induced leukemia. Ref-1 redox inhibition triggered leukemia cell apoptosis and downregulation of survival genes regulated by Ref-1 targets. For the first time, this work identifies Ref-1 as a novel molecular effector in T-ALL and demonstrates that Ref-1 redox inhibition results in potent inhibition of leukemia T cells, including relapsed T-ALL. These data also support E3330 as a specific Ref-1 small-molecule inhibitor for leukemia. Mol Cancer Ther; 16(7); 1401-11. ©2017 AACR.
Insights
Researchers identified redox factor-1 (Ref-1) as a key regulator in T-cell acute lymphoblastic leukemia (T-ALL). Inhibiting Ref-1’s redox function with E3330 effectively reduced leukemia cell viability and induced apoptosis in T-ALL models.
Area of Science:
- Molecular Oncology
- Cancer Cell Signaling
- Hematologic Malignancies
Background:
- Childhood acute lymphoblastic leukemia (T-ALL) lacks effective targeted therapies for high-risk and relapsed cases.
- Master regulators controlling multiple signaling pathways in T-ALL are sought for novel therapeutic strategies.
- Redox factor-1 (Ref-1/APE1) is a multifunctional protein acting as a signaling node regulating transcription factors.
Purpose of the Study:
- To investigate Ref-1 as a potential master regulator in T-cell acute lymphoblastic leukemia (T-ALL).
- To evaluate the therapeutic potential of inhibiting Ref-1's redox function in T-ALL.
Main Methods:
- Analyzed leukemia patient transcriptome databases for Ref-1 expression.
- Validated Ref-1 expression and redox activity in T-ALL cells and patient biopsies.
- Utilized the redox-selective Ref-1 inhibitor E3330 in functional studies with T-ALL cell lines and primary patient cells.
Main Results:
- Increased Ref-1 expression was observed in T-ALL, particularly in high-risk and relapsed cases.
- Ref-1 redox activity was confirmed in leukemia T cells, regulating NF-κB.
- E3330 treatment significantly inhibited T-ALL cell viability, induced apoptosis, and downregulated survival genes.
Conclusions:
- Ref-1 is identified as a novel molecular effector in T-ALL.
- Inhibition of Ref-1's redox function is a potent strategy against T-ALL, including relapsed and resistant forms.
- E3330 shows promise as a specific small-molecule inhibitor for T-ALL therapy.
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