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Assaying Protein Kinase Activity with Radiolabeled ATP
Published on: May 26, 2017
Protein phosphatase 1 is essential for Greatwall inactivation at mitotic exit
Andreas Heim1, Anja Konietzny2, Thomas U Mayer3
1Department of Molecular Genetics, University of Konstanz, Konstanz, Germany Konstanz Research School Chemical Biology, University of Konstanz, Konstanz, Germany.
Abstract:
Entry into mitosis is mediated by the phosphorylation of key cell cycle regulators by cyclin-dependent kinase 1 (Cdk1). In Xenopus embryos, the M-phase-promoting activity of Cdk1 is antagonized by protein phosphatase PP2A-B55. Hence, to ensure robust cell cycle transitions, Cdk1 and PP2A-B55 must be regulated so that their activities are mutually exclusive. The mechanism underlying PP2A-B55 inactivation at mitotic entry is well understood: Cdk1-activated Greatwall (Gwl) kinase phosphorylates Ensa/Arpp19, thereby enabling them to bind to and inhibit PP2A-B55. However, the re-activation of PP2A-B55 during mitotic exit, which is essential for cell cycle progression, is less well understood. Here, we identify protein phosphatase PP1 as an essential component of the PP2A-B55 re-activation pathway in Xenopus embryo extracts. PP1 initiates the re-activation of PP2A-B55 by dephosphorylating Gwl. We provide evidence that PP1 targets the auto-phosphorylation site of Gwl, resulting in efficient Gwl inactivation. This step is necessary to facilitate subsequent complete dephosphorylation of Gwl by PP2A-B55. Thus, by identifying PP1 as the phosphatase initiating Gwl inactivation, our study provides the molecular explanation for how Cdk1 inactivation is coupled to PP2A-B55 re-activation at mitotic exit.
Insights
Protein phosphatase PP1 reactivates PP2A-B55 during mitotic exit by dephosphorylating Greatwall kinase. This finding explains how cyclin-dependent kinase 1 (Cdk1) inactivation couples to PP2A-B55 reactivation for cell cycle progression.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Mitotic entry is regulated by cyclin-dependent kinase 1 (Cdk1) phosphorylation.
- Protein phosphatase PP2A-B55 antagonizes Cdk1 activity in Xenopus embryos.
- PP2A-B55 inactivation at mitotic entry involves Cdk1-activated Greatwall (Gwl) kinase.
Purpose of the Study:
- To elucidate the mechanism of PP2A-B55 reactivation during mitotic exit.
- To identify key phosphatases involved in regulating cell cycle transitions.
Main Methods:
- Utilized Xenopus embryo extracts.
- Investigated the role of protein phosphatase PP1 in PP2A-B55 reactivation.
- Analyzed the phosphorylation status of Greatwall (Gwl) kinase.
Main Results:
- Identified protein phosphatase PP1 as essential for PP2A-B55 reactivation.
- Demonstrated that PP1 initiates Gwl inactivation by dephosphorylating its auto-phosphorylation site.
- Showed that PP1-mediated Gwl inactivation facilitates subsequent dephosphorylation by PP2A-B55.
Conclusions:
- Protein phosphatase PP1 initiates the reactivation of PP2A-B55 at mitotic exit.
- PP1's role in Gwl inactivation provides a molecular link between Cdk1 inactivation and PP2A-B55 reactivation.
- This mechanism ensures robust cell cycle progression through coordinated phosphatase activity.
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