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Published on: May 3, 2015
M-phase kinases induce phospho-dependent ubiquitination of somatic Wee1 by SCFbeta-TrCP
Nobumoto Watanabe1, Harumi Arai, Yoshifumi Nishihara
1Antibiotics Laboratory, Discovery Research Institute, RIKEN, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan. nwatanab@riken.go.jp
Abstract:
Wee1, the Cdc2 inhibitory kinase, needs to be down-regulated at the onset of mitosis to ensure rapid activation of Cdc2. Previously, we have shown that human somatic Wee1 (Wee1A) is down-regulated both by protein phosphorylation and degradation, but the underlying mechanisms had not been elucidated. In the present study, we have identified the beta-transducin repeat-containing protein 1/2 (beta-TrCP1/2) F-box protein-containing SKP1/Cul1/F-box protein (SCF) complex (SCF(beta-TrCP1/2)) as an E3 ubiquitin ligase for Wee1A ubiquitination. Although Wee1A lacks a consensus DS(p)GXXS(p) phospho-dependent binding motif for beta-TrCP, recognition of Wee1A by beta-TrCP depended on phosphorylation, and two serine residues in Wee1A, S53 and S123, were found to be the most important phosphorylation sites for beta-TrCP recognition. We have found also that the major M-phase kinases polo-like kinase 1 (Plk1) and Cdc2 are responsible for the phosphorylation of S53 and S123, respectively, and that in each case phosphorylation generates an unconventional phospho-degron (signal for degradation) that can be recognized by beta-TrCP. Phosphorylation of Wee1A by these kinases cooperatively stimulated the recognition and ubiquitination of Wee1A by SCF(beta-TrCP1/2) in vitro. Mutation of these residues or depletion of beta-TrCP by small-interfering RNA treatment increased the stability of Wee1A in HeLa cells. Moreover, our analysis indicates that beta-TrCP-dependent degradation of Wee1A is important for the normal onset of M-phase in vivo. These results also establish the existence of a feedback loop between Cdc2 and Wee1A in somatic cells that depends on ubiquitination and protein degradation and ensures the rapid activation of Cdc2 when cells are ready to divide.
Insights
The SCF(beta-TrCP) complex targets Wee1A for degradation via ubiquitination, crucial for cell division. This process involves specific phosphorylation sites, creating a feedback loop essential for timely mitosis onset.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Wee1 kinase inhibits Cdc2, and its down-regulation is essential for initiating mitosis.
- Previous studies indicated Wee1A is regulated by phosphorylation and degradation, but mechanisms were unclear.
Purpose of the Study:
- To identify the E3 ubiquitin ligase responsible for Wee1A ubiquitination and degradation.
- To elucidate the role of specific phosphorylation events in Wee1A recognition by the E3 ligase.
- To investigate the physiological significance of Wee1A degradation in cell cycle progression.
Main Methods:
- Identification of SCF(beta-TrCP1/2) as the E3 ubiquitin ligase for Wee1A.
- Site-directed mutagenesis to identify critical phosphorylation sites (S53, S123) for beta-TrCP binding.
- In vitro ubiquitination assays using M-phase kinases (Plk1, Cdc2).
- siRNA-mediated depletion of beta-TrCP in HeLa cells to assess Wee1A stability and cell cycle progression.
Main Results:
- SCF(beta-TrCP1/2) directly ubiquitinates Wee1A, targeting it for degradation.
- Phosphorylation of Wee1A at S53 by Plk1 and S123 by Cdc2 creates unconventional phospho-degrons recognized by beta-TrCP.
- Cooperative phosphorylation by Plk1 and Cdc2 enhances Wee1A ubiquitination and degradation.
- Depletion of beta-TrCP stabilizes Wee1A and disrupts normal M-phase onset.
Conclusions:
- Beta-TrCP-mediated degradation of Wee1A is critical for the timely activation of Cdc2 and the onset of mitosis.
- A feedback loop involving Cdc2, Plk1, Wee1A phosphorylation, ubiquitination, and degradation ensures efficient cell division.
- This study reveals a novel mechanism for cell cycle regulation through phospho-degron pathways.
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