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The pro-apoptotic function of death-associated protein kinase is controlled by a unique inhibitory
G Shohat1, T Spivak-Kroizman, O Cohen
1Department of Molecular Genetics, Weizmann Institute of Science, Rehovot 76100, Israel.
Abstract:
Death-associated protein kinase is a calcium/calmodulin serine/threonine kinase, which positively mediates programmed cell death in a variety of systems. Here we addressed its mode of regulation and identified a mechanism that restrains its apoptotic function in growing cells and enables its activation during cell death. It involves autophosphorylation of Ser(308) within the calmodulin (CaM)-regulatory domain, which occurs at basal state, in the absence of Ca(2+)/CaM, and is inversely correlated with substrate phosphorylation. This type of phosphorylation takes place in growing cells and is strongly reduced upon their exposure to the apoptotic stimulus of C(6)-ceramide. The substitution of Ser(308) to alanine, which mimics the ceramide-induced dephosphorylation at this site, increases Ca(2+)/CaM-independent substrate phosphorylation as well as binding and overall sensitivity of the kinase to CaM. At the cellular level, it strongly enhances the death-promoting activity of the kinase. Conversely, mutation to aspartic acid reduces the binding of the protein to CaM and abrogates almost completely the death-promoting function of the protein. These results are consistent with a molecular model in which phosphorylation on Ser(308) stabilizes a locked conformation of the CaM-regulatory domain within the catalytic cleft and simultaneously also interferes with CaM binding. We propose that this unique mechanism of auto-inhibition evolved to impose a locking device, which keeps death-associated protein kinase silent in healthy cells and ensures its activation only in response to apoptotic signals.
Insights
Death-associated protein kinase (DAPK) is regulated by autophosphorylation at Ser(308), which inhibits its cell death function in healthy cells. Apoptotic signals trigger dephosphorylation, activating DAPK for programmed cell death.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Death-associated protein kinase (DAPK) is a serine/threonine kinase crucial for programmed cell death.
- Understanding DAPK regulation is key to controlling apoptosis.
Purpose of the Study:
- To elucidate the regulatory mechanism of DAPK that restrains its function in growing cells and activates it during cell death.
- To identify the role of Ser(308) autophosphorylation in DAPK regulation.
Main Methods:
- Site-directed mutagenesis (Ser(308) to alanine and aspartic acid).
- In vitro kinase assays to measure substrate phosphorylation and CaM binding.
- Cellular assays to assess DAPK's death-promoting activity.
Main Results:
- Autophosphorylation of Ser(308) in the CaM-regulatory domain inhibits DAPK activity in healthy cells.
- Apoptotic stimuli like C(6)-ceramide reduce Ser(308) phosphorylation, activating DAPK.
- Mutating Ser(308) to alanine enhances Ca(2+)/CaM-independent activity and cellular death promotion.
- Mutating Ser(308) to aspartic acid reduces CaM binding and abrogates death function.
Conclusions:
- Phosphorylation on Ser(308) acts as an auto-inhibitory mechanism, stabilizing DAPK in a locked conformation and preventing CaM binding.
- This auto-inhibition ensures DAPK remains silent in healthy cells and is activated only by apoptotic signals.