A high throughput proteomics screen identifies novel substrates of death-associated protein kinase

Shani Bialik1, Hanna Berissi, Adi Kimchi

  • 1Department of Molecular Genetics, Weizmann Institute of Science, 76100 Rehovot, Israel.

Insights

Death-associated protein kinase (DAPk) phosphorylates MCM3, a replication factor, at Ser160. This study identifies novel DAPk substrates using proteomics, revealing new kinase functions in cell death.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Biochemistry

Background:

  • Death-associated protein kinase (DAPk) is crucial for cell death.
  • Known DAPk substrates do not fully explain its cellular roles.
  • Novel substrate identification is needed to understand DAPk function.

Purpose of the Study:

  • To identify novel substrates of DAPk using a large-scale proteomics approach.
  • To validate MCM3 as a direct in vivo substrate of DAPk.

Main Methods:

  • Developed an unbiased, in vitro proteomics assay for substrate discovery.
  • Utilized biochemical fractionation and mass spectrometry on HeLa cell lysate.
  • Confirmed phosphorylation sites and in vivo relevance in 293T cells.

Main Results:

  • Identified ribosomal protein L5 and MCM3 as candidate DAPk substrates.
  • MCM3 is efficiently and specifically phosphorylated by DAPk at Ser160.
  • DAPk-mediated MCM3 phosphorylation at Ser160 occurs in vivo and is regulated by Ca2+.

Conclusions:

  • MCM3 is a novel, physiologically relevant in vivo substrate of DAPk.
  • The proteomics approach is effective for identifying novel kinase substrates.
  • DAPk's role in regulating MCM3 phosphorylation suggests novel functions for the kinase.