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Deacetylation Assays to Unravel the Interplay between Sirtuins SIRT2 and Specific Protein-substrates
Published on: February 27, 2016
Sirtuin 2 inhibition modulates chromatin landscapes genome-wide to induce senescence in ATRX-deficient malignant
Abstract:
Inactivating mutations in ATRX characterize large subgroups of malignant gliomas in adults and children. ATRX deficiency in glioma induces widespread chromatin remodeling, driving transcriptional shifts and oncogenic phenotypes. Effective strategies to therapeutically target these broad epigenomic sequelae remain undeveloped. We utilized integrated mulit-omics and the Broad Institute Connectivity Map (CMAP) to identify drug candidates that could potentially revert ATRX-deficient transcriptional changes. We then employed disease-relevant experimental models to evaluate functional phenotypes, coupling these studies with epigenomic profiling to elucidate molecular mechanim(s). CMAP analysis and transcriptional/epigenomic profiling implicated the Class III HDAC Sirtuin2 (Sirt2) as a central mediator of ATRX-deficient cellular phenotypes and a driver of unfavorable prognosis in ATRX-deficient glioma. Sirt2 inhibitors reverted Atrx-deficient transcriptional signatures in murine neuroprogenitor cells (mNPCs) and impaired cell migration in Atrx/ATRX-deficient mNPCs and human glioma stem cells (GSCs). While effects on cellular proliferation in these contexts were more modest, markers of senescence significantly increased, suggesting that Sirt2 inhibition promotes terminal differentiation in ATRX-deficient glioma. These phenotypic effects were accompanied by genome-wide shifts in enhancer-associated H3K27ac and H4K16ac marks, with the latter in particular demonstrating compelling transcriptional links to Sirt2-dependent phenotypic reversals. Motif analysis of these data identified the transcription factor KLF16 as a mediator of phenotype reversal in Atrx-deficient cells upon Sirt2 inhibition. Finally, Sirt2 inhibition impaired growth and increased senescence in ATRX-deficient GSCs in vivo . Our findings indicate that Sirt2 inhibition selectively targets ATRX-deficient gliomas through global chromatin remodeling, while demonstrating more broadly a viable approach to combat complex epigenetic rewiring in cancer.
One Sentence Summary:
Our study demonstrates that SIRT2 inhibition promotes senescence in ATRX-deficient glioma model systems through global epigenomic remodeling, impacting key downstream transcriptional profiles.
Insights
Targeting Sirtuin2 (Sirt2) with inhibitors shows promise for treating ATRX-deficient gliomas. This approach promotes cancer cell senescence and impacts epigenetic remodeling, offering a new therapeutic strategy for these aggressive brain tumors.
Area of Science:
- Neuro-oncology
- Epigenetics
- Cancer Biology
Background:
- Inactivating mutations in ATRX are common in malignant gliomas, leading to significant chromatin changes and promoting cancer growth.
- Current therapeutic strategies for ATRX-deficient gliomas are limited, particularly in addressing the underlying epigenomic alterations.
Approach:
- Integrated multi-omics and the Connectivity Map (CMAP) were used to identify potential drug candidates.
- Disease-relevant experimental models (murine neuroprogenitor cells and human glioma stem cells) were employed to evaluate drug efficacy and molecular mechanisms.
- Epigenomic profiling, including H3K27ac and H4K16ac marks, was performed to understand treatment effects.
Key Points:
- Sirtuin2 (Sirt2) was identified as a key mediator of ATRX-deficient glioma phenotypes and a driver of poor prognosis.
- Sirt2 inhibitors reversed ATRX-deficient transcriptional signatures, impaired cell migration, and increased senescence in glioma models.
- Genome-wide epigenetic changes, particularly in H4K16ac marks, were linked to Sirt2 inhibition-mediated phenotypic reversals.
Conclusions:
- Sirt2 inhibition selectively targets ATRX-deficient gliomas by inducing senescence and global chromatin remodeling.
- The transcription factor KLF16 was identified as a mediator of phenotype reversal upon Sirt2 inhibition.
- This study presents Sirt2 inhibition as a viable therapeutic approach for ATRX-deficient gliomas and potentially other cancers with complex epigenetic rewiring.
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