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FKBP38 Regulates Self-Renewal and Survival of GBM Neurospheres
Aimee L Dowling1, Stuart Walbridge1, Celine Ertekin1
1Molecular & Therapeutics Unit, Surgical Neurology Branch, National Institute of Neurological Disorders and Stroke, National Institutes of Health, Bethesda, MD 20892, USA.
Abstract:
Glioblastoma is the most common malignant primary brain tumor. The outcome is dismal, despite the multimodal therapeutic approach that includes surgical resection, followed by radiation and chemotherapy. The quest for novel therapeutic targets to treat glioblastoma is underway. FKBP38, a member of the immunophilin family of proteins, is a multidomain protein that plays an important role in the regulation of cellular functions, including apoptosis and autophagy. In this study, we tested the role of FKBP38 in glioblastoma tumor biology. Expression of FKBP38 was upregulated in the patient-derived primary glioblastoma neurospheres (GBMNS), compared to normal human astrocytes. Attenuation of FKBP38 expression decreased the viability of GBMNSs and increased the caspase 3/7 activity, indicating that FKBP38 is required for the survival of GBMNSs. Further, the depletion of FKBP38 significantly reduced the number of neurospheres that were formed, implying that FKBP38 regulates the self-renewal of GBMNSs. Additionally, the transient knockdown of FKBP38 increased the LC3-II/I ratio, suggesting the induction of autophagy with the depletion of FKBP38. Further investigation showed that the negative regulation of autophagy by FKBP38 in GBMNSs is mediated through the JNK/C-Jun-PTEN-AKT pathway. In vivo, FKBP38 depletion significantly extended the survival of tumor-bearing mice. Overall, our results suggest that targeting FKBP38 imparts an anti-glioblastoma effect by inducing apoptosis and autophagy and thus can be a potential therapeutic target for glioblastoma therapy.
Insights
Targeting FKBP38 protein shows promise for glioblastoma treatment. Reducing FKBP38 levels in glioblastoma cells induces apoptosis and autophagy, inhibiting tumor growth and improving survival in mice.
Area of Science:
- Neuro-oncology
- Molecular Biology
- Cancer Research
Background:
- Glioblastoma is an aggressive brain tumor with poor prognosis despite standard treatments.
- Novel therapeutic targets are urgently needed to improve glioblastoma patient outcomes.
- FKBP38, an immunophilin protein, regulates key cellular processes like apoptosis and autophagy.
Purpose of the Study:
- To investigate the role of FKBP38 in glioblastoma tumor biology.
- To determine if FKBP38 can be a potential therapeutic target for glioblastoma.
Main Methods:
- Assessed FKBP38 expression in patient-derived glioblastoma neurospheres (GBMNS) and normal astrocytes.
- Performed FKBP38 knockdown in GBMNS to evaluate effects on viability, apoptosis, self-renewal, and autophagy.
- Investigated the molecular pathway (JNK/C-Jun-PTEN-AKT) involved in FKBP38-mediated autophagy regulation.
- Evaluated the in vivo efficacy of FKBP38 depletion in tumor-bearing mice.
Main Results:
- FKBP38 expression was significantly upregulated in GBMNS compared to normal astrocytes.
- FKBP38 depletion reduced GBMNS viability, increased apoptosis (caspase 3/7 activity), and inhibited neurosphere formation (self-renewal).
- Knockdown of FKBP38 induced autophagy, mediated by the JNK/C-Jun-PTEN-AKT pathway.
- In vivo, FKBP38 depletion significantly extended the survival of glioblastoma-bearing mice.
Conclusions:
- FKBP38 is essential for glioblastoma cell survival and self-renewal.
- Targeting FKBP38 induces apoptosis and autophagy, demonstrating anti-glioblastoma effects.
- FKBP38 represents a promising therapeutic target for glioblastoma treatment.
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