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Updated: Jun 16, 2026

Deacetylation Assays to Unravel the Interplay between Sirtuins (SIRT2) and Specific Protein-substrates
Published on: February 27, 2016
DYRK1A and DYRK3 promote cell survival through phosphorylation and activation of SIRT1
Xiumei Guo1, Jason G Williams, Thaddeus T Schug
1Laboratory of Signal Transduction, NIEHS, National Institutes of Health, Research Triangle Park, North Carolina 27709, USA.
Abstract:
DYRK1A (the dual specificity tyrosine phosphorylation-regulated kinase 1A) plays an important role in body growth and brain physiology. Overexpression of this kinase has been associated with the development of Down syndrome in both human and animal models, whereas single copy loss-of-function of DYRK1A leads to increased apoptosis and decreased brain size. Although more than a dozen of DYRK1A targets have been identified, the molecular basis of its involvement in neuronal development remains unclear. Here we show that DYRK1A and another pro-survival member of the DYRK family, DYRK3, promote cell survival through phosphorylation and activation of SIRT1, an NAD(+)-dependent protein deacetylase that is essential in a variety of physiological processes including stress response and energy metabolism. DYRK1A and DYRK3 directly phosphorylate SIRT1 at Thr(522), promoting deacetylation of p53. A SIRT1 phosphorylation mimetic (SIRT1 T522D) displays elevated deacetylase activity, thus inhibiting cell apoptosis. Conversely, a SIRT1 dephosphorylation mimetic (SIRT1 T522V) fails to mediate DYRK-induced deacetylation of p53 and cell survival. We show that knockdown of endogenous DYRK1A and DYRK3 leads to hypophosphorylation of SIRT1, sensitizing cells to DNA damage-induced cell death. We also provide evidence that phosphorylation of Thr(522) activates SIRT1 by promoting product release, thereby increasing its enzymatic turnover. Taken together, our findings provide a novel mechanism by which two anti-apoptotic DYRK members promote cell survival through direct modification of SIRT1. These findings may have important implications in understanding the molecular mechanisms of tumorigenesis, Down syndrome, and aging.
Insights
Dual specificity tyrosine phosphorylation-regulated kinase 1A (DYRK1A) and DYRK3 activate SIRT1, a protein deacetylase, by phosphorylation. This process inhibits apoptosis and promotes cell survival, offering insights into Down syndrome and aging.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Biology
Background:
- DYRK1A is crucial for growth and brain function, with its dysregulation linked to Down syndrome and apoptosis.
- The precise molecular mechanisms of DYRK1A in neuronal development are not fully understood.
- SIRT1, a NAD(+)-dependent deacetylase, is vital for stress response and metabolism.
Purpose of the Study:
- To elucidate the role of DYRK1A and DYRK3 in cell survival.
- To investigate the interaction between DYRK kinases and SIRT1.
- To understand the mechanism of SIRT1 activation by DYRK kinases.
Main Methods:
- Investigated the phosphorylation of SIRT1 by DYRK1A and DYRK3 in vitro and in cell models.
- Utilized phosphorylation mimetic mutants (SIRT1 T522D and T522V) to assess functional consequences.
- Performed knockdown experiments of DYRK1A and DYRK3 to observe effects on SIRT1 activity and cell death.
- Analyzed the deacetylation of p53 as a downstream effect of SIRT1 activation.
Main Results:
- DYRK1A and DYRK3 directly phosphorylate SIRT1 at Thr(522), leading to its activation.
- Phosphorylation of SIRT1 at Thr(522) enhances its deacetylase activity towards p53, inhibiting apoptosis.
- Knockdown of DYRK1A/DYRK3 results in hypophosphorylation of SIRT1, increasing sensitivity to DNA damage-induced cell death.
- SIRT1 activation by phosphorylation is proposed to occur via promotion of product release, increasing enzymatic turnover.
Conclusions:
- DYRK1A and DYRK3 promote cell survival by directly phosphorylating and activating SIRT1.
- This novel mechanism highlights the role of DYRK kinases in regulating SIRT1 activity and cellular apoptosis.
- Findings provide potential implications for understanding tumorigenesis, Down syndrome, and aging processes.
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