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Updated: Jan 22, 2026

Time-resolved Förster Resonance Energy Transfer Assays for Measurement of Endogenous Phosphorylated STAT Proteins in Human Cells
Published on: September 9, 2021
STAT Family Protein Expression and Phosphorylation State during moDC Development Is Altered by Platinum-Based
Nienke de Haas1, Coco de Koning1, Stefania di Blasio1
1Department of Tumor Immunology, Radboud Institute for Molecular Life Sciences, Radboud University Medical Center, Nijmegen, Netherlands.
Abstract:
The STAT signaling pathway is important in dendritic cell (DC) development and function. Tumor cells can induce STAT signaling, thereby inhibiting DC maturation and immunostimulatory functions, leading to hampered efficacy of DC-based immunotherapies. Platinum-based chemotherapeutics can inhibit STAT signaling, thereby making them an interesting tool to improve DC development and function. In this study, we provide a comprehensive overview of STAT expression and phosphorylation during DC differentiation and maturation and investigate the effects of platinum drugs on STAT signaling during these processes. Monocytes were differentiated into monocyte-derived DCs (moDCs) with IL-4 and GM-CSF and matured with cytokines or TLR ligands. STAT expression and phosphorylation were analyzed by western blotting, and moDC viability and phenotype were analyzed by flow cytometry. Platinum drugs were added at day 3 of differentiation or at the start of maturation to investigate regulation of the STAT signaling pathway. All STAT proteins were expressed during moDC differentiation and STAT1, STAT5, and STAT6 were phosphorylated. No significant changes occurred in the expression and phosphorylation state of the STAT proteins during differentiation. After maturation with TLR ligands, the expression of STAT1 increased, but other STAT proteins were not affected. Phosphorylation of STAT1 and STAT3 increased during maturation, where TLR ligands induced significantly higher levels of phosphorylation than cytokines. Platinum drugs cisplatin and oxaliplatin significantly inhibited phosphorylation of STAT6 during differentiation and maturation. Treatment did not affect the phenotype or viability of the cells. As STAT6 is an important regulator of DC function, these findings suggest a role for platinum-based chemotherapeutics to enhance DC function via inhibition of STAT signaling, thereby potentially enhancing efficacy of DC-based immunotherapies.
Insights
Platinum drugs inhibit STAT6 signaling in dendritic cells (DCs), enhancing their function. This suggests platinum chemotherapeutics can improve DC-based immunotherapies by boosting immune responses.
Area of Science:
- Immunology
- Cell Biology
- Cancer Therapy
Background:
- STAT signaling is crucial for dendritic cell (DC) development and function.
- Tumor cells exploit STAT signaling to suppress DC maturation, hindering DC-based immunotherapies.
- Platinum-based chemotherapeutics may improve DC function by inhibiting STAT signaling.
Purpose of the Study:
- To comprehensively overview STAT expression and phosphorylation during DC differentiation and maturation.
- To investigate the effects of platinum drugs on STAT signaling in DCs.
- To assess the potential of platinum drugs to enhance DC-based immunotherapies.
Main Methods:
- Monocyte-derived DCs (moDCs) were generated and matured using cytokines or TLR ligands.
- STAT expression and phosphorylation were analyzed via western blotting.
- moDC viability and phenotype were assessed by flow cytometry; platinum drugs were administered during differentiation or maturation.
Main Results:
- All STAT proteins were expressed during moDC differentiation; STAT1, STAT5, and STAT6 were phosphorylated.
- TLR ligand maturation increased STAT1 expression and STAT1/STAT3 phosphorylation compared to cytokine maturation.
- Cisplatin and oxaliplatin significantly inhibited STAT6 phosphorylation without affecting moDC viability or phenotype.
Conclusions:
- Platinum drugs, such as cisplatin and oxaliplatin, inhibit STAT6 phosphorylation in DCs.
- STAT6 inhibition by platinum drugs may enhance DC function.
- Platinum-based chemotherapeutics show promise for improving the efficacy of DC-based immunotherapies.
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