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Deacetylation of the DNA-binding domain regulates p53-mediated apoptosis
Hestia S Mellert1, Timothy J Stanek, Stephen M Sykes
1Biomedical Graduate Studies, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA.
Abstract:
In unstressed cells, the p53 tumor suppressor is highly unstable. DNA damage and other forms of cellular stress rapidly stabilize and activate p53. This process is regulated by a complex array of post-translational modifications that are dynamically deposited onto p53. Recent studies show that these modifications orchestrate p53-mediated processes such as cell cycle arrest and apoptosis. Cancer cells carry inherent genetic damage, but avoid arrest and apoptosis by inactivating p53. Defining the enzymatic machinery that regulates the stress-induced modification of p53 at single-residue resolution is critical to our understanding of the biochemical mechanisms that control this critical tumor suppressor. Specifically, acetylation of p53 at lysine 120, a DNA-binding domain residue mutated in human cancer, is essential for triggering apoptosis. Given the oncogenic properties of deacetylases and the success of deacetylase inhibitors as anticancer agents, we investigated the regulation of Lys(120) deacetylation using pharmacologic and genetic approaches. This analysis revealed that histone deacetylase 1 is predominantly responsible for the deacetylation of Lys(120). Furthermore, treatment with the clinical-grade histone deacetylase inhibitor entinostat enhances Lys(120) acetylation, an event that is mechanistically linked to its apoptotic effect. These data expand our understanding of the mechanisms controlling p53 function and suggest that regulation of p53 modification status at single-residue resolution by targeted therapeutics can selectively alter p53 pathway function. This knowledge may impact the rational application of deacetylase inhibitors in the treatment of human cancer.
Insights
Histone deacetylase 1 (HDAC1) removes acetyl groups from the tumor suppressor p53 at lysine 120. Inhibiting HDAC1 with entinostat increases p53 acetylation, promoting cancer cell apoptosis.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- The tumor suppressor p53 is crucial for preventing cancer but is often inactivated in cancer cells.
- Post-translational modifications, like acetylation, regulate p53 stability and function.
- Acetylation of p53 at lysine 120 is vital for inducing apoptosis.
Purpose of the Study:
- To investigate the enzymes regulating p53 deacetylation at lysine 120.
- To determine the effect of histone deacetylase inhibitors on p53 acetylation and apoptosis.
Main Methods:
- Pharmacologic and genetic approaches were used to study p53 deacetylation.
- Enzymatic assays were performed to identify the specific deacetylase responsible for Lys(120) deacetylation.
- The impact of entinostat on Lys(120) acetylation and apoptosis was assessed.
Main Results:
- Histone deacetylase 1 (HDAC1) was identified as the primary enzyme responsible for deacetylation of p53 at Lys(120).
- Treatment with the clinical-grade HDAC inhibitor entinostat significantly increased Lys(120) acetylation.
- Enhanced Lys(120) acetylation upon entinostat treatment was mechanistically linked to increased apoptosis.
Conclusions:
- HDAC1 plays a critical role in regulating p53 acetylation status at Lys(120).
- Targeting HDAC1 with inhibitors like entinostat can restore p53 function by promoting acetylation and apoptosis.
- These findings support the therapeutic potential of deacetylase inhibitors for cancer treatment by modulating p53 activity.
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