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Published on: August 25, 2022
BAF Complex Maintains Glioma Stem Cells in Pediatric H3K27M Glioma
Eshini Panditharatna1,2, Joana G Marques1,2, Tingjian Wang3,4
1Department of Pediatric Oncology, Dana-Farber Boston Children's Cancer and Blood Disorders Center, Boston, Massachusetts.
Abstract:
Diffuse midline gliomas are uniformly fatal pediatric central nervous system cancers that are refractory to standard-of-care therapeutic modalities. The primary genetic drivers are a set of recurrent amino acid substitutions in genes encoding histone H3 (H3K27M), which are currently undruggable. These H3K27M oncohistones perturb normal chromatin architecture, resulting in an aberrant epigenetic landscape. To interrogate for epigenetic dependencies, we performed a CRISPR screen and show that patient-derived H3K27M-glioma neurospheres are dependent on core components of the mammalian BAF (SWI/SNF) chromatin remodeling complex. The BAF complex maintains glioma stem cells in a cycling, oligodendrocyte precursor cell-like state, in which genetic perturbation of the BAF catalytic subunit SMARCA4 (BRG1), as well as pharmacologic suppression, opposes proliferation, promotes progression of differentiation along the astrocytic lineage, and improves overall survival of patient-derived xenograft models. In summary, we demonstrate that therapeutic inhibition of the BAF complex has translational potential for children with H3K27M gliomas.
Significance:
Epigenetic dysregulation is at the core of H3K27M-glioma tumorigenesis. Here, we identify the BRG1-BAF complex as a critical regulator of enhancer and transcription factor landscapes, which maintain H3K27M glioma in their progenitor state, precluding glial differentiation, and establish pharmacologic targeting of the BAF complex as a novel treatment strategy for pediatric H3K27M glioma. See related commentary by Beytagh and Weiss, p. 2730. See related article by Mo et al., p. 2906.
Insights
Diffuse midline gliomas, driven by histone H3 mutations, are targeted by inhibiting the BRG1-BAF complex. This approach halts cancer cell growth, promotes differentiation, and improves survival in pediatric H3K27M glioma models.
Area of Science:
- Pediatric oncology
- Cancer epigenetics
- Chromatin remodeling
Background:
- Diffuse midline gliomas (DMGs) are fatal pediatric brain tumors characterized by histone H3 mutations (H3K27M).
- These tumors are resistant to current therapies, and the genetic drivers (H3K27M oncohistones) are undruggable.
- H3K27M oncohistones disrupt normal chromatin structure, leading to aberrant epigenetic landscapes.
Discussion:
- CRISPR screening revealed that H3K27M-glioma neurospheres depend on the mammalian BAF (SWI/SNF) chromatin remodeling complex.
- The BAF complex is crucial for maintaining glioma stem cells in a progenitor-like state, preventing differentiation.
- Targeting the BRG1-BAF complex, a core component, offers a potential therapeutic strategy.
Key Insights:
- Genetic or pharmacologic inhibition of the BRG1-BAF complex suppresses proliferation in H3K27M gliomas.
- Targeting the BAF complex promotes glial differentiation along the astrocytic lineage.
- Pharmacologic suppression of the BAF complex improved survival in patient-derived xenograft models.
Outlook:
- Therapeutic inhibition of the BAF complex shows translational potential for treating pediatric H3K27M gliomas.
- Targeting epigenetic dysregulation via the BRG1-BAF complex represents a novel treatment strategy.
- Further research into BAF complex inhibitors could lead to effective therapies for these aggressive brain tumors.

