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A Protocol for Rapid Post-mortem Cell Culture of Diffuse Intrinsic Pontine Glioma DIPG
Published on: March 7, 2017
Future Clinical Trials in DIPG: Bringing Epigenetics to the Clinic
Andres Morales La Madrid1, Rintaro Hashizume2, Mark W Kieran3
1Pediatric Neuro-Oncology, Department of Pediatric Hematology and Oncology, Hospital Sant Joan de Deu , Barcelona , Spain.
Abstract:
In spite of major recent advances in diffuse intrinsic pontine glioma (DIPG) molecular characterization, this body of knowledge has not yet translated into better treatments. To date, more than 250 clinical trials evaluating radiotherapy along with conventional cytotoxic chemotherapy as well as newer biologic agents have failed to improve the dismal outcome when compared to palliative radiation alone. The biology of DIPG remained unknown until recently when the neurosurgical expertise along with the recognition by the scientific and clinical community of the importance of tissue sampling at diagnosis; ideally, in the context of a clinical trial and by trained neurosurgical teams to maximize patient safety. These pre-treatment tumor samples, and others coming from tissue obtained post-mortem, have yielded new insights into DIPG molecular pathogenesis. We now know that DIPG comprises a heterogeneous disease with variable molecular phenotypes, different from adult high-grade glioma, other non-pontine pediatric high-grade gliomas, and even between pontine gliomas. The discovery of histone H3.3 or H3.1 mutations has been an important step forward in understanding tumor formation, maintenance, and progression. Pharmacologic reversal of DIPG histone demethylation therefore offers an important potential intervention strategy for the treatment of DIPG. To date, clinical trials of newly diagnosed or progressive DIPG with epigenetic (histone) modifiers have been unsuccessful. Whether this failure represents limited activity of the agents used, their CNS penetration, redundant pathways within the tumor, or the possibility that histone mutations are necessary only to initiate DIPGs but not maintain their growth, suggest that a great deal still needs to be elucidated in both the underlying biology of these pathways and the drugs designed to target them. In this review, we will discuss the role of both epigenetic and genetic mutations within DIPG and the development of treatment strategies directed against the unique abnormalities present in this disease.
Insights
Diffuse intrinsic pontine glioma (DIPG) is a heterogeneous disease. Despite advances, treatments targeting epigenetic modifiers have failed, necessitating further research into DIPG biology and drug development.
Area of Science:
- Pediatric Neuro-oncology
- Cancer Genomics
- Epigenetics
Background:
- Diffuse intrinsic pontine glioma (DIPG) remains a devastating pediatric brain tumor with dismal outcomes despite numerous clinical trials.
- Recent molecular characterization reveals DIPG as a heterogeneous disease with unique phenotypes, distinct from other high-grade gliomas.
Purpose of the Study:
- To review the role of epigenetic and genetic mutations in DIPG pathogenesis.
- To discuss the development of treatment strategies targeting DIPG-specific abnormalities.
Main Methods:
- Analysis of pre-treatment tumor samples and post-mortem tissue.
- Review of clinical trial data for epigenetic modifiers in DIPG.
- Discussion of molecular pathogenesis and therapeutic targets.
Main Results:
- Discovery of histone H3.3 or H3.1 mutations as key drivers in DIPG formation and progression.
- Identification of DIPG as a heterogeneous disease with variable molecular subtypes.
- Clinical trials using epigenetic modifiers have thus far been unsuccessful.
Conclusions:
- Histone mutations are crucial in DIPG initiation, but their role in maintenance requires further investigation.
- Targeting epigenetic pathways in DIPG has shown limited success, highlighting the need for improved drug development and understanding of underlying biology.
- Further research is essential to elucidate DIPG pathways and develop effective therapeutic strategies.

