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Identification of Kinase-substrate Pairs Using High Throughput Screening
Published on: August 29, 2015
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.
Abstract:
Death-associated protein kinase (DAPk) is a Ser/Thr kinase whose activity is necessary for different cell death phenotypes. Although its contribution to cell death is well established, only a handful of direct substrates have been identified; these do not fully account for the multiple cellular effects of DAPk. To identify such substrates on a large scale, we developed an in vitro, unbiased, proteomics-based assay to search for novel DAPk substrates. Biochemical fractionation and mass spectrometric analysis were used to purify and identify several potential substrates from HeLa cell lysate. Here we report the identification of two such candidate substrates, the ribosomal protein L5 and MCM3, a replication licensing factor. Although L5 proved to be a weak substrate, MCM3 was efficiently and specifically phosphorylated by DAPk on a unique site, Ser160. Significantly DAPk phosphorylated this site in vivo upon overexpression in 293T cells. Activation of endogenous DAPk by increasing intracellular Ca2+ also led to increased phosphorylation of MCM3. Importantly short hairpin RNA-mediated knockdown of endogenous DAPk blocked both basal phosphorylation and Ca2+-induced phosphorylation, indicating that DAPk is both necessary and sufficient for MCM3 Ser160 phosphorylation in vivo. Identification of MCM3 as an in vivo DAPk substrate indicates the usefulness of this approach for identification of physiologically relevant substrates that may shed light on novel functions of the kinase.
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.

