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Stattic suppresses p‑STAT3 and induces cell death in T‑cell acute lymphoblastic leukemia
Chia-Ling Li1, Han-Yu Chen2, Jiin-Cherng Yen3
1Children's Medical Center, Taichung Veterans General Hospital, Taichung 407, Taiwan, R.O.C.
Abstract:
The present study investigated the therapeutic potential of Stattic, a selective inhibitor of STAT3, in treating T‑cell acute lymphoblastic leukemia (T‑ALL). The effects of Stattic on cell viability, STAT3 phosphorylation, apoptosis and autophagy in T‑ALL cell lines, and on tumor growth in a xenograft mouse model of T‑ALL, were assessed. Methods, including the Cell Counting Kit‑8 assay for cell viability, propidium iodide/Annexin V staining for apoptosis detection, western blotting for protein expression analysis, and a xenograft mouse model for evaluating in vivo tumor growth, were employed. The results showed that Stattic effectively reduced cell viability in a dose‑dependent manner, with significant reductions observed at concentrations of 1.25 µM and above in CCRF‑CEM cells (IC50=3.188 µM) and at 2.5 µM and above in Jurkat cells (IC50=4.89 µM) after 24 h of treatment. Concurrently, Stattic significantly suppressed the expression of phosphorylated STAT3, indicating its mechanism of action as a STAT3 pathway inhibitor. Furthermore, Stattic treatment induced both apoptosis and autophagy in CCRF‑CEM and Jurkat cells, as evidenced by the respective upregulation of cleaved caspase‑3 and LC3B. In a xenograft mouse model of T‑ALL, Stattic markedly inhibited tumor growth, with the greatest effect occurring at the highest dose of 30 mg/kg. These results suggested that Stattic holds promise as a therapeutic agent in T‑ALL by modulating key pathways involved in cell survival and proliferation. In conclusion, Stattic exhibited a significant therapeutic potential for T‑ALL via a dose‑dependent reduction of cell viability, inhibiting STAT3 phosphorylation, and promoting both apoptotic and autophagic cell death; however, further studies are required before clinical application.
Insights
Stattic, a STAT3 inhibitor, shows therapeutic promise for T-cell acute lymphoblastic leukemia (T-ALL). It reduced T-ALL cell viability, inhibited STAT3, and decreased tumor growth in mice.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- T-cell acute lymphoblastic leukemia (T-ALL) remains a challenging hematological malignancy.
- The STAT3 signaling pathway is frequently implicated in T-ALL pathogenesis and progression.
- Targeting STAT3 offers a potential therapeutic strategy for T-ALL.
Purpose of the Study:
- To investigate the therapeutic efficacy of Stattic, a selective STAT3 inhibitor, in T-ALL.
- To evaluate Stattic's effects on T-ALL cell viability, apoptosis, and autophagy.
- To assess Stattic's impact on T-ALL tumor growth in a preclinical xenograft model.
Main Methods:
- Cell Counting Kit-8 assay for cell viability.
- Propidium iodide/Annexin V staining for apoptosis.
- Western blotting for protein analysis (p-STAT3, cleaved caspase-3, LC3B).
- T-ALL xenograft mouse model for in vivo efficacy assessment.
Main Results:
- Stattic significantly reduced T-ALL cell viability in a dose-dependent manner (IC50 values provided).
- Stattic effectively inhibited STAT3 phosphorylation, confirming its mechanism of action.
- Stattic induced both apoptosis and autophagy in T-ALL cell lines.
- Stattic markedly inhibited tumor growth in the T-ALL xenograft mouse model.
Conclusions:
- Stattic demonstrates significant therapeutic potential for T-ALL.
- Stattic exerts its effects by reducing cell viability, inhibiting STAT3, and inducing cell death pathways.
- Further clinical studies are warranted to explore Stattic's application in T-ALL treatment.
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