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Updated: Jun 21, 2026

Deacetylation Assays to Unravel the Interplay between Sirtuins (SIRT2) and Specific Protein-substrates
Published on: February 27, 2016
CK2 is the regulator of SIRT1 substrate-binding affinity, deacetylase activity and cellular response to DNA-damage
Hyeog Kang1, Jae-Won Jung, Myung K Kim
1Laboratory of Biochemical Genetics, National Heart Lung and Blood Institute, National Institutes of Health, Bethesda, Maryland, USA.
Abstract:
SIRT1, an NAD(+) (nicotinamide adenine dinucleotide)-dependent deacetylase, protects cells from stress-induced apoptosis, and its orthologues delay aging in lower eukaryotes. SIRT1 increases survival in response to stress such as DNA damage by deacetylating a number of substrates including pro-apoptotic protein p53. The molecular mechanism by which DNA-damage activates SIRT1 is not known. By screening a kinase inhibitor library, we identified CK2 as a SIRT1 kinase. CK2 is a pleiotropic kinase with more than 300 substrates and well-known anti-apoptotic and pro-growth activities. We find that CK2 is recruited to SIRT1 after ionizing radiation (IR) and phosphorylates conserved residues Ser 154, 649, 651 and 683 in the N- and C-terminal domains of mouse SIRT1. Phosphorylation of SIRT1 increases its deacetylation rate but not if the four Ser residues are mutated. In addition, phosphorylation of SIRT1 increases its substrate-binding affinity. CK2-mediated phosphorylation increases the ability of SIRT1 to deacetylate p53 and protect cells from apoptosis after DNA damage. Based on these findings, we propose that CK2 protects against IR-induced apoptosis partly by phosphorylating and activating SIRT1. Thus, this work suggests that SIRT1 is a component of the expansive anti-apoptotic network controlled by CK2. Since expression of both CK2 and SIRT1 is upregulated with tumorigenesis and downregulated with senescence, the CK2-SIRT1 link sheds new light on how CK2 may regulate cancer development and aging.
Insights
The kinase CK2 phosphorylates and activates SIRT1, enhancing its ability to protect cells from DNA damage-induced apoptosis. This discovery reveals a new mechanism linking CK2 and SIRT1 in cellular survival pathways relevant to aging and cancer.
Area of Science:
- Cellular Biology
- Molecular Mechanisms of Aging
- Cancer Biology
Background:
- SIRT1 (NAD(+)-dependent deacetylase) promotes cell survival against stress like DNA damage by deacetylating proteins such as p53.
- The mechanism activating SIRT1 in response to DNA damage remained unclear.
Purpose of the Study:
- To elucidate the molecular mechanism by which DNA damage activates SIRT1.
- To identify kinases that regulate SIRT1 activity.
Main Methods:
- Screening of a kinase inhibitor library to identify SIRT1 kinases.
- Investigating the interaction and phosphorylation of SIRT1 by CK2 after ionizing radiation (IR).
- Site-directed mutagenesis of conserved serine residues in SIRT1.
Main Results:
- CK2 was identified as a SIRT1 kinase, recruited to SIRT1 after IR.
- CK2 phosphorylates SIRT1 at four conserved serine residues (Ser 154, 649, 651, 683).
- Phosphorylation by CK2 enhances SIRT1's deacetylation rate, substrate-binding affinity, and protective function against apoptosis.
- Mutating these serine residues abrogates the phosphorylation-induced enhancement of SIRT1 activity.
Conclusions:
- CK2 phosphorylates and activates SIRT1, thereby protecting cells from IR-induced apoptosis.
- SIRT1 is part of the anti-apoptotic network regulated by CK2.
- The CK2-SIRT1 interaction offers insights into cancer development and aging, as both proteins are implicated in these processes.
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