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Ser-3 is important for regulating Mos interaction with and stimulation of mitogen-activated protein kinase kinase
1Department of Biochemistry, University of Washington, Seattle 98195, USA.
Abstract:
Mos is a germ cell-specific serine/threonine protein kinase that activates mitogen-activated protein kinase (MAPK) through MAPK kinase (MKK). In Xenopus oocytes, Mos synthesis is required for progesterone-induced activation of MAPK and maturation promoting factor. Injection of Mos or active MAPK causes mitotic arrest in early embryos, suggesting that Mos also acts via MKK and MAPK to induce the arrest of unfertilized eggs in metaphase of meiosis II. We have investigated whether Mos activity is regulated by phosphorylation. Previous studies have identified Ser-3 as the principal autophosphorylation site. We show that Mos interacts with the catalytic domain of MKK in a Saccharomyces cerevisiae two-hybrid test. Acidic substitutions of the sites phosphorylated by Mos in MKK reduce the interaction, implying that the complex may dissociate after phosphorylation of MKK by Mos. Furthermore, the Mos-MKK interaction requires Mos kinase activity, suggesting that Mos autophosphorylation may be involved in the interaction. Substitution of Ser-3 of Mos with Ala reduces the interaction with MKK and also reduces both the activation of MKK by Mos in vitro and cleavage arrest induced by Mos fusion protein in Xenopus embryos. By contrast, substitution of Ser-3 by Glu, an acidic amino acid that mimics phosphoserine, fosters the Mos interaction with MKK and permits activation of MKK in vitro and Mos-induced cleavage arrest. Moreover, the Glu-3 substitution increases the interaction of a kinase-inactive Mos mutant with MKK. Taken together, these results suggest that an important step in Mos activation involves the phosphorylation at Ser-3, which promotes Mos interaction with and activation of MKK.
Insights
Mos protein regulates cell division by activating MAPK signaling. Phosphorylation at Ser-3 is crucial for Mos to interact with and activate MKK, promoting cell cycle arrest in Xenopus eggs.
Area of Science:
- Cell Biology
- Molecular Biology
- Developmental Biology
Background:
- Mos is a germ cell-specific kinase crucial for oocyte maturation and embryonic cell cycle arrest.
- Mos activates mitogen-activated protein kinase (MAPK) via MAPK kinase (MKK).
Purpose of the Study:
- To investigate the role of Mos phosphorylation in regulating its activity.
- To elucidate the mechanism by which Mos interacts with and activates MKK.
Main Methods:
- Saccharomyces cerevisiae two-hybrid assay to study Mos-MKK interaction.
- Site-directed mutagenesis of Mos and MKK phosphorylation sites.
- In vitro kinase assays.
- Xenopus embryo cleavage arrest assays.
Main Results:
- Mos interacts with the catalytic domain of MKK.
- Phosphorylation of MKK by Mos appears to reduce their complex stability.
- Mos kinase activity and autophosphorylation at Ser-3 are essential for MKK interaction and activation.
- Substitution of Ser-3 with alanine impairs Mos function, while substitution with glutamate enhances interaction and activity.
Conclusions:
- Phosphorylation of Mos at Ser-3 is a key regulatory step for its activation.
- Ser-3 phosphorylation promotes Mos interaction with and subsequent activation of MKK, leading to cell cycle arrest.