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Updated: Aug 5, 2025

Methods to Assess Beta Cell Death Mediated by Cytotoxic T Lymphocytes
Published on: June 16, 2011
Inhibition of the type 1 diabetes candidate gene PTPN2 aggravates TNF-α-induced human beta cell dysfunction and death
Arturo Roca-Rivada1, Sandra Marín-Cañas2, Maikel L Colli2
1ULB Center for Diabetes Research, Medical Faculty, Université Libre De Bruxelles, Brussels, Belgium. arturo.roca.rivada@ulb.be.
Aims/Hypothesis:
TNF-α plays a role in pancreatic beta cell loss in type 1 diabetes mellitus. In clinical interventions, TNF-α inhibition preserves C-peptide levels in early type 1 diabetes. In this study we evaluated the crosstalk of TNF-α, as compared with type I IFNs, with the type 1 diabetes candidate gene PTPN2 (encoding protein tyrosine phosphatase non-receptor type 2 [PTPN2]) in human beta cells.
Methods:
EndoC-βH1 cells, dispersed human pancreatic islets or induced pluripotent stem cell (iPSC)-derived islet-like cells were transfected with siRNAs targeting various genes (siCTRL, siPTPN2, siJNK1, siJNK3 or siBIM). Cells were treated for 48 h with IFN-α (2000 U/ml) or TNF-α (1000 U/ml). Cell death was evaluated using Hoechst 33342 and propidium iodide staining. mRNA levels were assessed by quantitative reverse transcription PCR (qRT-PCR) and protein expression by immunoblot.
Results:
PTPN2 silencing sensitised beta cells to cytotoxicity induced by IFN-α and/or TNF-α by 20-50%, depending on the human cell model utilised; there was no potentiation between the cytokines. We silenced c-Jun N-terminal kinase (JNK)1 or Bcl-2-like protein 2 (BIM), and this abolished the proapoptotic effects of IFN-α, TNF-α or the combination of both after PTPN2 inhibition. We further observed that PTPN2 silencing increased TNF-α-induced JNK1 and BIM phosphorylation and that JNK3 is necessary for beta cell resistance to IFN-α cytotoxicity.
Conclusions/Interpretation:
We show that the type 1 diabetes candidate gene PTPN2 is a key regulator of the deleterious effects of TNF-α in human beta cells. It is conceivable that people with type 1 diabetes carrying risk-associated PTPN2 polymorphisms may particularly benefit from therapies inhibiting TNF-α.
Insights
The gene PTPN2 regulates harmful effects of TNF-α on human beta cells in type 1 diabetes. Inhibiting TNF-α may benefit patients with specific PTPN2 gene variations.
Area of Science:
- Immunology
- Endocrinology
- Genetics
Background:
- Tumor Necrosis Factor-alpha (TNF-α) contributes to pancreatic beta cell loss in type 1 diabetes.
- TNF-α inhibition is a potential therapeutic strategy for preserving beta cell function in early type 1 diabetes.
Purpose of the Study:
- To investigate the interaction between TNF-α, type I interferons (IFNs), and the type 1 diabetes candidate gene PTPN2 in human beta cells.
- To understand the role of PTPN2 in mediating beta cell responses to inflammatory cytokines.
Main Methods:
- Human beta cell models (EndoC-βH1, islets, iPSC-derived islets) were used.
- Gene silencing (siRNAs) of PTPN2, JNK1, and BIM was performed.
- Cells were treated with IFN-α or TNF-α, and cell death, mRNA, and protein levels were assessed.
Main Results:
- PTPN2 silencing increased beta cell sensitivity to IFN-α and TNF-α-induced cytotoxicity.
- Silencing JNK1 or BIM counteracted the pro-apoptotic effects of these cytokines after PTPN2 inhibition.
- PTPN2 silencing enhanced TNF-α-induced JNK1 and BIM phosphorylation, with JNK3 being crucial for beta cell resistance to IFN-α.
Conclusions:
- The type 1 diabetes candidate gene PTPN2 is a critical regulator of TNF-α's detrimental effects on human beta cells.
- Individuals with type 1 diabetes and risk-associated PTPN2 polymorphisms may benefit from TNF-α inhibitory therapies.
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