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Updated: Apr 11, 2026

A Cell Free Assay to Study Chromatin Decondensation at the End of Mitosis
Published on: December 19, 2015
Global Phosphoproteomic Mapping of Early Mitotic Exit in Human Cells Identifies Novel Substrate Dephosphorylation
Rachael A McCloy1, Benjamin L Parker2, Samuel Rogers1
1From the ‡The Kinghorn Cancer Center, Garvan Institute of Medical Research, Darlinghurst, NSW, 2010, Australia;
Abstract:
Entry into mitosis is driven by the coordinated phosphorylation of thousands of proteins. For the cell to complete mitosis and divide into two identical daughter cells it must regulate dephosphorylation of these proteins in a highly ordered, temporal manner. There is currently a lack of a complete understanding of the phosphorylation changes that occur during the initial stages of mitotic exit in human cells. Therefore, we performed a large unbiased, global analysis to map the very first dephosphorylation events that occur as cells exit mitosis. We identified and quantified the modification of >16,000 phosphosites on >3300 unique proteins during early mitotic exit, providing up to eightfold greater resolution than previous studies. The data have been deposited to the ProteomeXchange with identifier PXD001559. Only a small fraction (∼ 10%) of phosphorylation sites were dephosphorylated during early mitotic exit and these occurred on proteins involved in critical early exit events, including organization of the mitotic spindle, the spindle assembly checkpoint, and reformation of the nuclear envelope. Surprisingly this enrichment was observed across all kinase consensus motifs, indicating that it is independent of the upstream phosphorylating kinase. Therefore, dephosphorylation of these sites is likely determined by the specificity of phosphatase/s rather than the activity of kinase/s. Dephosphorylation was significantly affected by the amino acids at and surrounding the phosphorylation site, with several unique evolutionarily conserved amino acids correlating strongly with phosphorylation status. These data provide a potential mechanism for the specificity of phosphatases, and how they co-ordinate the ordered events of mitotic exit. In summary, our results provide a global overview of the phosphorylation changes that occur during the very first stages of mitotic exit, providing novel mechanistic insight into how phosphatase/s specifically regulate this critical transition.
Insights
This study mapped early mitotic exit dephosphorylation in human cells, revealing specific protein targets crucial for cell division. Dephosphorylation is guided by phosphatase specificity and surrounding amino acids, not just kinase activity.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Mitotic exit requires precise dephosphorylation of thousands of proteins.
- Understanding early dephosphorylation events in human cells is incomplete.
Purpose of the Study:
- To globally map the initial dephosphorylation events during early mitotic exit in human cells.
- To identify proteins and phosphosites regulated during this critical transition.
Main Methods:
- Large-scale, unbiased global phosphoproteomic analysis.
- Quantification of over 16,000 phosphosites on more than 3,300 proteins.
- Data deposited in ProteomeXchange (PXD001559).
Main Results:
- Identified dephosphorylation at ~10% of sites during early mitotic exit.
- Dephosphorylated proteins are involved in spindle organization, checkpoint control, and nuclear envelope reformation.
- Dephosphorylation specificity is linked to phosphatases and surrounding amino acid sequences, independent of kinase consensus motifs.
Conclusions:
- Phosphatase specificity, influenced by local amino acid context, dictates ordered mitotic exit.
- Provides mechanistic insight into how phosphatases regulate cell division.
- Offers a high-resolution map of early mitotic exit phosphoproteome changes.
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