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Updated: Feb 26, 2026

Identification of Cyclin-dependent Kinase 1 Specific Phosphorylation Sites by an In Vitro Kinase Assay
Published on: May 3, 2018
The M-phase specific hyperphosphorylation of Staufen2 involved the cyclin-dependent kinase CDK1
Rémy Beaujois1, Elizabeth Ottoni1, Xin Zhang1
1Département de biochimie et médecine moléculaire, Faculté de médecine, Université de Montréal, 2900 Edouard Montpetit, Montréal, QC, H3T 1J4, Canada.
Background:
Staufen2 (STAU2) is an RNA-binding protein involved in the post-transcriptional regulation of gene expression. This protein was shown to be required for organ formation and cell differentiation. Although STAU2 functions have been reported in neuronal cells, its role in dividing cells remains deeply uncharacterized. Especially, its regulation during the cell cycle is completely unknown.
Results:
In this study, we showed that STAU2 isoforms display a mitosis-specific slow migration pattern on SDS-gels in all tested transformed and untransformed cell lines. Deeper analyses in hTert-RPE1 and HeLa cells further indicated that the slow migration pattern of STAU2 isoforms is due to phosphorylation. Time course studies showed that STAU2 phosphorylation occurs before prometaphase and terminates as cells exit mitosis. Interestingly, STAU2 isoforms were phosphorylated on several amino acid residues in the C-terminal half via the cyclin-dependent kinase 1 (Cdk1), an enzyme known to play crucial roles during mitosis. Introduction of phospho-mimetic or phospho-null mutations in STAU2 did not impair its RNA-binding capacity, its stability, its interaction with protein co-factors or its sub-cellular localization, suggesting that STAU2 phosphorylation in mitosis does not regulate these functions. Similarly, STAU2 phosphorylation is not likely to be crucial for cell cycle progression since expression of phosphorylation mutants in hTert-RPE1 cells did not impair cell proliferation.
Conclusions:
Altogether, these results indicate that STAU2 isoforms are phosphorylated during mitosis and that the phosphorylation process involves Cdk1. The meaning of this post-translational modification is still elusive.
Insights
Staufen2 (STAU2) protein isoforms are phosphorylated during mitosis by Cdk1, but this modification does not affect RNA binding, stability, or cell proliferation. The precise function of STAU2 phosphorylation in cell division remains unclear.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Staufen2 (STAU2) is an RNA-binding protein crucial for post-transcriptional gene regulation, organ formation, and cell differentiation.
- While STAU2 functions in neuronal cells are known, its role and regulation in dividing cells, particularly during the cell cycle, are largely uncharacterized.
Purpose of the Study:
- To investigate the regulation and cell cycle-specific behavior of Staufen2 (STAU2) isoforms in dividing cells.
- To determine the impact of STAU2 phosphorylation on its functions and cell cycle progression.
Main Methods:
- Analysis of STAU2 isoform migration patterns on SDS-gels across various cell lines.
- Phosphorylation site mapping and identification of the kinase responsible for STAU2 modification.
- Site-directed mutagenesis to create phospho-mimetic and phospho-null STAU2 variants.
- Assessment of RNA-binding capacity, protein stability, co-factor interactions, sub-cellular localization, and cell proliferation.
Main Results:
- STAU2 isoforms exhibit a unique, mitosis-specific slow migration on SDS-gels, indicative of phosphorylation.
- Phosphorylation occurs before prometaphase and ceases upon mitotic exit, mediated by cyclin-dependent kinase 1 (Cdk1).
- Phosphorylation does not alter STAU2's RNA-binding, stability, co-factor interactions, localization, or impact cell proliferation.
Conclusions:
- STAU2 isoforms undergo Cdk1-dependent phosphorylation during mitosis.
- This post-translational modification does not appear to regulate key STAU2 functions or cell cycle progression.
- The functional significance of STAU2 mitosis-specific phosphorylation remains to be elucidated.
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