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Identification of Cyclin-dependent Kinase 1 Specific Phosphorylation Sites by an In Vitro Kinase Assay
Published on: May 3, 2018
CaMKII and polo-like kinase 1 sequentially phosphorylate the cytostatic factor Emi2/XErp1 to trigger its destruction
David V Hansen1, Jeffrey J Tung, Peter K Jackson
1Program in Cancer Biology, Stanford University School of Medicine, 300 Pasteur Drive, Stanford, CA 94305, USA.
Abstract:
In vertebrate meiosis, unfertilized eggs are arrested in metaphase II by cytostatic factor (CSF), which is required to maintain mitotic cyclin-dependent kinase activity. Fertilization triggers a transient increase in cytosolic free Ca(2+), which leads to CSF inactivation and ubiquitin-dependent cyclin destruction through the anaphase promoting complex or cyclosome (APC/C). The Ca(2+)/calmodulin-dependent protein kinase II (CaMKII) and the Polo-like kinase Plx1 are essential factors for Ca(2+)-induced meiotic exit, but the critical targets of these kinases were unknown. The APC/C inhibitor Emi2 or XErp1 has recently been characterized as a pivotal CSF component, required to maintain metaphase II arrest and rapidly destroyed in response to Ca(2+) signaling through phosphorylation by Plx1 and ubiquitination by the SCF(betaTrCP) complex. An important question is how the increase in free Ca(2+) targets Plx1 activity toward Emi2. Here, we demonstrate that CaMKII is required for Ca(2+)-induced Emi2 destruction, and that CaMKII functions as a "priming kinase," directly phosphorylating Emi2 at a specific motif to induce a strong interaction with the Polo Box domain of Plx1. We show that the strict requirement for CaMKII to phosphorylate Emi2 is a specific feature of CSF arrest, and we also use phosphatase inhibitors to demonstrate an additional mode of Emi2 inactivation independent of its destruction. We firmly establish the CSF component Emi2 as the first-known critical and direct target of CaMKII in CSF release, providing a detailed molecular mechanism explaining how CaMKII and Plx1 coordinately direct APC/C activation and meiotic exit upon fertilization.
Insights
Fertilization triggers meiotic exit by inactivating cytostatic factor (CSF). Calcium signaling activates CaMKII and Plx1 kinases, which target Emi2 for destruction, releasing the cell cycle arrest.
Area of Science:
- Cell Biology
- Molecular Biology
- Developmental Biology
Background:
- Vertebrate eggs arrest in meiosis II via cytostatic factor (CSF), maintaining cyclin-dependent kinase activity.
- Fertilization triggers calcium release, inactivating CSF and initiating cyclin destruction via the anaphase-promoting complex/cyclosome (APC/C).
- Ca(2+)/calmodulin-dependent protein kinase II (CaMKII) and Polo-like kinase 1 (Plx1) are crucial for meiotic exit, but their direct targets were unclear.
Purpose of the Study:
- To elucidate the molecular mechanism by which Ca(2+) signaling targets Plx1 activity towards Emi2.
- To identify the critical targets of CaMKII and Plx1 in the Ca(2+)-induced inactivation of CSF.
- To establish Emi2 as a direct target of CaMKII in the process of CSF release.
Main Methods:
- Phosphorylation assays to determine kinase activity and target interactions.
- Ubiquitination assays to assess protein degradation pathways.
- Immunoblotting and phosphatase inhibition experiments to analyze Emi2 regulation.
Main Results:
- CaMKII is essential for Ca(2+)-induced Emi2 destruction, acting as a "priming kinase."
- CaMKII directly phosphorylates Emi2, creating a binding site for Plx1's Polo Box domain.
- CaMKII-mediated phosphorylation of Emi2 is specific to CSF arrest, and an additional inactivation mechanism independent of destruction was observed.
Conclusions:
- Emi2 is identified as the first critical and direct target of CaMKII in CSF release.
- A detailed molecular mechanism reveals how CaMKII and Plx1 cooperate to activate the APC/C and drive meiotic exit.
- This study provides key insights into the regulation of cell cycle progression during fertilization.
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