miR-125b controls apoptosis and temozolomide resistance by targeting TNFAIP3 and NKIRAS2 in glioblastomas
S Haemmig1, U Baumgartner1, A Glück1
1Institut für Pathologie, University of Bern, Bern, Switzerland.
Abstract:
Diffusely infiltrating gliomas are among the most prognostically discouraging neoplasia in human. Temozolomide (TMZ) in combination with radiotherapy is currently used for the treatment of glioblastoma (GBM) patients, but less than half of the patients respond to therapy and chemoresistance develops rapidly. Epigenetic silencing of the O(6)-methylguanine-DNA methyltransferase (MGMT) has been associated with longer survival in GBM patients treated with TMZ, but nuclear factor κB (NF-κB)-mediated survival signaling and TP53 mutations contribute significantly to TMZ resistance. Enhanced NF-κB is in part owing to downregulation of negative regulators of NF-κB activity, including Tumor necrosis factor alpha-induced protein 3 (TNFAIP3) and NF-κB inhibitor interacting RAS-like 2 (NKIRAS2). Here we provide a novel mechanism independent of TP53 and MGMT by which oncogenic miR-125b confers TMZ resistance by targeting TNFAIP3 and NKIRAS2. GBM cells overexpressing miR-125b showed increased NF-κB activity and upregulation of anti-apoptotic and cell cycle genes. This was significantly associated with resistance of GBM cells to TNFα- and TNF-related inducing ligand-induced apoptosis as well as resistance to TMZ. Conversely, overexpression of anti-miR-125b resulted in cell cycle arrest, increased apoptosis and increased sensitivity to TMZ, indicating that endogenous miR-125b is sufficient to control these processes. GBM cells overexpressing TNFAIP3 and NKIRAS2 were refractory to miR-125b-induced apoptosis resistance as well as TMZ resistance, indicating that both genes are relevant targets of miR-125b. In GBM tissues, high miR-125b expression was significantly correlated with nuclear NF-κB confirming that miR-125b is implicated in NF-κB signaling. Most remarkably, miR-125b overexpression was clearly associated with shorter overall survival of patients treated with TMZ, suggesting that this microRNA is an important predictor of response to therapy.
Insights
Oncogenic miR-125b promotes glioblastoma resistance to temozolomide (TMZ) by targeting TNFAIP3 and NKIRAS2, enhancing nuclear factor κB (NF-κB) activity. High miR-125b predicts poor survival in patients treated with TMZ.
Area of Science:
- Oncology
- Molecular Biology
- Genetics
Background:
- Glioblastoma (GBM) treatment resistance, particularly to temozolomide (TMZ), remains a significant challenge.
- Nuclear factor κB (NF-κB) signaling pathways and mutations in TP53 contribute to TMZ resistance.
- Downregulation of NF-κB inhibitors like TNFAIP3 and NKIRAS2 enhances NF-κB activity and chemoresistance.
Purpose of the Study:
- To investigate a novel mechanism of TMZ resistance in GBM mediated by oncogenic miR-125b.
- To identify the direct targets of miR-125b involved in conferring TMZ resistance.
- To evaluate miR-125b as a potential biomarker for predicting patient response to TMZ therapy.
Main Methods:
- Overexpression of miR-125b and anti-miR-125b in GBM cells.
- Analysis of NF-κB activity, apoptosis, and cell cycle progression.
- Assessment of gene expression, including TNFAIP3 and NKIRAS2.
- Correlation analysis of miR-125b expression with NF-κB signaling and patient survival data.
Main Results:
- Overexpression of miR-125b led to increased NF-κB activity, promoting resistance to apoptosis and TMZ.
- miR-125b directly targets TNFAIP3 and NKIRAS2, leading to their downregulation.
- Inhibition of miR-125b (using anti-miR-125b) sensitized GBM cells to TMZ and induced apoptosis.
- High miR-125b expression in GBM tissues correlated with nuclear NF-κB and shorter patient survival after TMZ treatment.
Conclusions:
- Oncogenic miR-125b confers TMZ resistance in GBM through a TP53- and MGMT-independent pathway by targeting TNFAIP3 and NKIRAS2.
- miR-125b plays a crucial role in regulating NF-κB-mediated survival signaling and chemoresistance in GBM.
- miR-125b serves as a potential predictive biomarker for TMZ treatment response in GBM patients.
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