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Updated: Aug 17, 2026

Live-3D-Cell Immunocytochemistry Assays of Pediatric Diffuse Midline Glioma
Published on: November 11, 2021
Synergistic cell-cycle repression by HDAC/EZH2 co-targeting in H3K27-altered diffuse midline glioma
Zili Zhen1,2,3, Qiang Gao4, Yong Ai1,3
1IDG/McGovern Institute for Brain Research, School of Life Sciences, Tsinghua University, Beijing 100084, China.
Abstract:
Diffuse midline glioma (DMG) is an aggressive malignancy driven by the H3K27M oncohistone, leading to global epigenetic dysregulation and limited efficacy of single-agent epigenetic therapies. We previously observed clinical benefit from an HDAC/EZH2 inhibitor-based therapeutic regimen, but the mechanistic basis was unclear. A panel of patient-derived DMG glioma stem cell (GSC) cultures from brainstem and spinal cord tumors was used for drug-response and functional assays, with representative models further analyzed for transcriptomic alterations, cell-cycle distribution, global histone-modification changes, self-renewal, and in vivo efficacy. Antitumor efficacy was validated in orthotopic xenografts. Panobinostat and tazemetostat showed robust synergy across patient-derived DMG GSC cultures, suppressing GSC growth, proliferation, and self-renewal while inducing apoptosis and G0/G1 cell-cycle arrest. Transcriptomic analyses revealed coordinated repression of cell-cycle programs and downregulation of OPC-like and stemness-associated programs, accompanied by the induction of differentiation-associated neuronal genes. Functionally, dual treatment reduced stem-cell frequency by >90% to >99%. In orthotopic xenografts, combination therapy significantly decreased tumor burden, reduced spinal dissemination, and prolonged survival. Together, these findings indicate that dual HDAC/EZH2 inhibition disrupts epigenetically maintained proliferative and stem-like programs through coordinated cell-cycle repression, apoptosis induction, and impaired self-renewal. This work supports HDAC/EZH2 co-targeting as a rational therapeutic backbone for H3K27-altered DMG and its incorporation into future rational combination strategies.
Insights
Dual inhibition of HDAC and EZH2 effectively targets diffuse midline glioma (DMG) stem cells by disrupting cell cycle and self-renewal. This combination therapy shows promise for H3K27-altered DMG treatment.
Area of Science:
- Oncology
- Epigenetics
- Neuro-oncology
Background:
- Diffuse midline glioma (DMG) is a highly aggressive brain tumor driven by the H3K27M oncohistone.
- Current single-agent epigenetic therapies show limited efficacy due to widespread epigenetic dysregulation.
Purpose of the Study:
- To investigate the mechanistic basis for the synergistic efficacy of combined HDAC and EZH2 inhibitors in DMG.
- To evaluate the therapeutic potential of dual HDAC/EZH2 inhibition in patient-derived DMG models.
Main Methods:
- Utilized patient-derived DMG glioma stem cell (GSC) cultures for drug-response and functional assays.
- Performed transcriptomic analyses, cell-cycle distribution, histone modification analysis, and in vivo efficacy studies in orthotopic xenografts.
- Assessed GSC self-renewal and apoptosis induction.
Main Results:
- Panobinostat and tazemetostat demonstrated robust synergy, suppressing GSC growth, proliferation, and self-renewal.
- Dual treatment induced G0/G1 cell-cycle arrest and apoptosis, significantly reducing stem-cell frequency.
- Transcriptomic analysis revealed repression of cell-cycle and stemness programs, with induction of neuronal differentiation genes.
- Combination therapy in vivo decreased tumor burden, reduced spinal dissemination, and prolonged survival.
Conclusions:
- Dual HDAC/EZH2 inhibition effectively disrupts the epigenetically maintained proliferative and stem-like programs in DMG.
- This combination therapy represents a rational therapeutic backbone for H3K27-altered DMG, supporting its incorporation into future treatment strategies.
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