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Published on: November 5, 2012
G2 arrest in Xenopus oocytes depends on phosphorylation of cdc25 by protein kinase A
Brian C Duckworth1, Jennifer S Weaver, Joan V Ruderman
1Department of Cell Biology, Harvard Medical School, Boston, MA 02115, USA.
Abstract:
Xenopus oocytes, which are arrested in G(2) of meiosis I, contain complexes of cyclin B-cdc2 (M phase-promoting factor) that are kept repressed by inhibitory phosphorylations on cdc2 at Thr-14 and Tyr-15. Progesterone induces a cytoplasmic signaling pathway that leads to activation of cdc25, the phosphatase that removes these phosphorylations, catalyzing entry into M phase. It has been known for 25 years that high levels of cAMP and protein kinase A (PKA) are required to maintain the G(2) arrest and that a drop in PKA activity is required for M phase-promoting factor activation, but no physiological targets of PKA have been identified. We present evidence that cdc25 is a critical target of PKA. (i) In vitro, cdc25 Ser-287 serves as a major site of phosphorylation by PKA, resulting in sequestration by 14-3-3. (ii) Endogenous cdc25 is phosphorylated on Ser-287 in oocytes and dephosphorylated in response to progesterone just before cdc2 dephosphorylation and M-phase entry. (iii) High PKA activity maintains phosphorylation of Ser-287 in vivo, whereas inhibition of PKA by its heat-stable inhibitor (PKI) induces dephosphorylation of Ser-287. (iv) Overexpression of mutant cdc25 (S287A) bypasses the ability of PKA to maintain oocytes in G(2) arrest. These findings argue that cdc25 is a physiologically relevant target of PKA in oocytes. In the early embryonic cell cycles, Ser-287 is phosphorylated during interphase and dephosphorylated just before cdc2 activation and mitotic entry. Thus, in addition to its role in checkpoint arrest, cdc25 Ser-287 serves as a site for regulation during normal, unperturbed cell cycles.
Insights
Protein kinase A (PKA) regulates cell cycle entry in Xenopus oocytes by phosphorylating cdc25. This phosphorylation at Ser-287 maintains G2 arrest, and its removal triggers M-phase entry.
Area of Science:
- Cell Biology
- Molecular Biology
- Developmental Biology
Background:
- Xenopus oocytes arrest in G2 of meiosis I, with M-phase-promoting factor (MPF) repressed by inhibitory cdc2 phosphorylations.
- High cAMP and protein kinase A (PKA) maintain this G2 arrest, while a drop in PKA activity is needed for MPF activation.
- No physiological targets of PKA maintaining G2 arrest had been identified.
Purpose of the Study:
- To identify and characterize the physiological targets of PKA involved in maintaining G2 arrest in Xenopus oocytes.
- To investigate the role of cdc25 as a potential target of PKA in regulating the G2/M transition.
Main Methods:
- In vitro phosphorylation assays using purified cdc25 and PKA.
- Analysis of endogenous cdc25 phosphorylation and dephosphorylation in oocytes.
- In vivo experiments using PKA inhibitors and overexpression of mutant cdc25.
- Investigation of cdc25 interaction with 14-3-3 proteins.
Main Results:
- cdc25 Ser-287 is a major site of PKA phosphorylation in vitro, leading to 14-3-3 binding.
- Endogenous cdc25 is phosphorylated at Ser-287 in oocytes and dephosphorylated upon progesterone treatment.
- PKA activity maintains Ser-287 phosphorylation in vivo; PKA inhibition causes dephosphorylation.
- Overexpression of a non-phosphorylatable cdc25 mutant (S287A) bypasses PKA-mediated G2 arrest.
Conclusions:
- cdc25 is a critical physiological target of PKA in Xenopus oocytes.
- PKA-mediated phosphorylation of cdc25 Ser-287 is essential for maintaining G2 arrest.
- cdc25 Ser-287 phosphorylation also regulates normal cell cycles, not just checkpoint arrest.
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