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ATRX/EZH2 complex epigenetically regulates FADD/PARP1 axis, contributing to TMZ resistance in glioma
Bo Han1,2,3, Xiangqi Meng2, Pengfei Wu2
1Beijing Neurosurgical Institute, Capital Medical University, Beijing 100050, China.
Abstract:
Rationale: Glioma is the most common primary malignant brain tumor in adults. Chemoresistance of temozolomide (TMZ), the first-line chemotherapeutic agent, is a major issue in the management of patients with glioma. Alterations of alpha thalassemia/mental retardation syndrome X-linked (ATRX) gene constitute one of the most prevalent genetic abnormalities in gliomas. Therefore, elucidation of the role of ATRX contributing to TMZ resistance in glioma is urgently needed. Methods: We performed the bioinformatics analysis of gene expression, and DNA methylation profiling, as well as RNA and ChIP-seq data sets. CRISPR-Cas9 gene editing system was used to achieve the ATRX knockout in TMZ resistant cells. In vitro and in vivo experiments were carried out to investigate the role of ATRX contributing to TMZ resistance in glioma. Results: We found that ATRX expression was upregulated via DNA demethylation mediated by STAT5b/TET2 complex and strengthened DNA damage repair by stabilizing PARP1 protein in TMZ resistant cells. ATRX elicited PARP1 stabilization by the down-regulating of FADD expression via the H3K27me3 enrichment, which was dependent on ATRX/EZH2 complex in TMZ resistant cells. Magnetic resonance imaging (MRI) revealed that the PARP inhibitor together with TMZ inhibited glioma growth in ATRX wild type TMZ resistant intracranial xenograft models. Conclusions: The present study further illustrated the novel mechanism of the ATRX/PARP1 axis contributing to TMZ resistance. Our results provided substantial new evidence that PARP inhibitor might be a potential adjuvant agent in overcoming ATRX mediated TMZ resistance in glioma.
Insights
Alpha thalassemia/mental retardation syndrome X-linked (ATRX) protein stabilizes PARP1, enhancing DNA repair and contributing to temozolomide (TMZ) resistance in glioma. Targeting the ATRX/PARP1 axis with PARP inhibitors may overcome this resistance.
Area of Science:
- Neuro-oncology
- Molecular Biology
- Genetics
Background:
- Glioma is a common adult brain tumor.
- Temozolomide (TMZ) resistance is a significant challenge in glioma treatment.
- Alpha thalassemia/mental retardation syndrome X-linked (ATRX) gene alterations are frequent in gliomas.
Purpose of the Study:
- To elucidate the role of ATRX in temozolomide (TMZ) resistance in glioma.
- To investigate the molecular mechanisms underlying ATRX-mediated TMZ resistance.
- To identify potential therapeutic strategies to overcome TMZ resistance in ATRX-altered gliomas.
Main Methods:
- Bioinformatic analysis of gene expression, DNA methylation, RNA-seq, and ChIP-seq data.
- CRISPR-Cas9 gene editing for ATRX knockout in TMZ-resistant cells.
- In vitro and in vivo experiments, including intracranial xenograft models and MRI.
Main Results:
- ATRX expression is upregulated via DNA demethylation (STAT5b/TET2) in TMZ-resistant cells.
- ATRX strengthens DNA damage repair by stabilizing PARP1 protein, down-regulating FADD expression via H3K27me3 enrichment (ATRX/EZH2 complex).
- Combined TMZ and PARP inhibitor treatment inhibited tumor growth in ATRX wild-type xenografts.
Conclusions:
- The ATRX/PARP1 axis is a novel mechanism contributing to TMZ resistance in glioma.
- ATRX-mediated TMZ resistance involves enhanced DNA repair through PARP1 stabilization.
- PARP inhibitors show potential as adjuvant therapy to overcome ATRX-mediated TMZ resistance in glioma.
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