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Updated: May 27, 2026

A Protocol for Rapid Post-mortem Cell Culture of Diffuse Intrinsic Pontine Glioma (DIPG)
Published on: March 7, 2017
Growth inhibition of malignant glioblastoma by DING protein
Markus J Bookland1, Nune Darbinian, Michael Weaver
1Department of Neuroscience, Center for Neurovirology, Temple University School of Medicine, Room 741 MERB, 3500 North Broad St., Philadelphia, PA 19140, USA.
Abstract:
Malignant gliomas are a highly aggressive type of brain tumor with extremely poor prognosis. These tumors are highly invasive and are often surgically incurable and resistant to chemotherapeutics and radiotherapy. Thus, novel therapies that target pathways involved in growth and survival of the tumor cells are required for the treatment of this class of brain tumors. Previous studies revealed that epidermal growth factor receptor and extracellular-signal-regulated kinases (ERKs), which are involved in the induction of cell proliferation, are activated in the most aggressive type of glioma, i.e. glioblastoma multiforme (GBM). In fact, GBMs with increased levels of ERK activity exhibit a more aggressive phenotype than the others with moderate ERK activity, pointing to the importance of ERK and its kinase activity in the development and progression of these tumors. In this study, we have evaluated the effect of p38SJ, a novel member of the DING family of proteins, derived from Hypericum perforatum calluses, on the growth of malignant glioma cell lines, T98G and U-87MG by focusing on cell cycle and signaling pathways controlled by phosphorylation of various regulatory proteins including ERK. p38SJ, which exhibits profound phosphatase activity, shows the capacity to affect the phosphorylation status of several important kinases modulating signaling pathways, and cell growth and proliferation. Our results demonstrate that p38SJ reduces glioma cell viability and arrests cell cycle progression at G0/G1. The observed growth inhibitory effect of p38SJ is likely mediated by the downregulation of several cell cycle gatekeeper proteins, including cyclin E, Cdc2, and E2F-1. These results suggest that p38SJ may serve as a potential candidate for development of a therapeutic agent for the direct treatment of malignant gliomas and/or as a potential radiosensitizer.
Insights
A novel protein, p38SJ, effectively reduces malignant glioma cell growth and halts cell cycle progression. This finding suggests p38SJ as a potential therapeutic agent for brain tumors and a radiosensitizer.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Malignant gliomas, including glioblastoma multiforme (GBM), are aggressive brain tumors with poor prognoses.
- Current treatments face challenges due to tumor invasiveness and resistance to chemotherapy and radiotherapy.
- Aberrant signaling pathways, such as those involving epidermal growth factor receptor and extracellular-signal-regulated kinases (ERKs), are implicated in glioma progression.
Purpose of the Study:
- To investigate the anti-glioma effects of p38SJ, a novel protein with phosphatase activity.
- To explore the impact of p38SJ on malignant glioma cell lines (T98G and U-87MG) focusing on cell cycle and signaling pathways.
- To determine if p38SJ can modulate the phosphorylation of key regulatory proteins, including ERK.
Main Methods:
- Treatment of T98G and U-87MG glioma cell lines with p38SJ.
- Analysis of cell cycle progression using flow cytometry.
- Assessment of protein expression and phosphorylation status of key cell cycle regulators and signaling kinases.
Main Results:
- p38SJ significantly reduces the viability of malignant glioma cells.
- p38SJ induces cell cycle arrest at the G0/G1 phase.
- The growth inhibitory effects are associated with the downregulation of cell cycle gatekeeper proteins like cyclin E, Cdc2, and E2F-1.
Conclusions:
- p38SJ demonstrates potent anti-proliferative effects on malignant glioma cells.
- p38SJ may represent a promising therapeutic candidate for malignant glioma treatment.
- p38SJ could potentially be utilized as a radiosensitizer to enhance existing cancer therapies.
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