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Updated: May 4, 2026

Identification of Cyclin-dependent Kinase 1 Specific Phosphorylation Sites by an In Vitro Kinase Assay
Published on: May 3, 2018
Dephosphorylation of CaMKII at T253 controls the metaphase-anaphase transition
Alexander Hoffman1, Helen Carpenter1, Richard Kahl1
1School of Biomedical Sciences and Pharmacy, Faculty of Health, The University of Newcastle, Callaghan, New South Wales, Australia; The Hunter Medical Research Institute, Faculty of Health, The University of Newcastle, Callaghan, New South Wales, Australia.
Abstract:
Calcium/calmodulin-stimulated protein kinase II (CaMKII) is a multi-functional serine/threonine protein kinase that controls a range of cellular functions, including proliferation. The biological properties of CaMKII are regulated by multi-site phosphorylation and targeting via interactions with specific proteins. To investigate the role specific CaMKII phosphorylation sites play in controlling cell proliferation and cell cycle progression, we examined phosphorylation of CaMKII at two sites (T253 and T286) at various stages of the cell cycle, and also examined the effects of overexpression of wild-type (WT), T286D phosphomimic, T253D phosphomimic and T253V phosphonull forms of CaMKIIα in MDA-MB-231 breast cancer and SHSY5Y neuroblastoma cells on cellular proliferation and cell cycle progression. We demonstrate herein that whilst there is no change in total CaMKII expression or T286 phosphorylation throughout the cell cycle, a marked dephosphorylation of CaMKII at T253 occurs during the G2 and/or M phases. Additionally, we show by molecular inhibition, as well as pharmacological activation, that protein phosphatase 2A (PP2A) is the phosphatase responsible for this dephosphorylation. Furthermore, we show that inducible overexpression of WT, T286D and T253V forms of CaMKIIα in MDA-MB-231 and SHSY5Y cells increases cellular proliferation, with no alteration in cell cycle profiles. By contrast, overexpression of a T253D phosphomimic form of CaMKIIα significantly decreases proliferation, and cells accumulate in mitosis, specifically in metaphase. Taken together, these results strongly suggest that the dephosphorylation of CaMKII at T253 is involved in controlling the cell cycle, specifically the metaphase-anaphase transition.
Insights
Calcium/calmodulin-stimulated protein kinase II (CaMKII) dephosphorylation at T253 regulates cell cycle progression. This finding highlights CaMKII
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Calcium/calmodulin-stimulated protein kinase II (CaMKII) is a serine/threonine kinase regulating cellular functions like proliferation.
- CaMKII activity is modulated by multi-site phosphorylation and protein interactions.
- Investigating specific phosphorylation sites is crucial for understanding CaMKII's role in cell cycle control.
Purpose of the Study:
- To elucidate the role of CaMKII phosphorylation at T253 and T286 in cell proliferation and cell cycle progression.
- To identify the phosphatase responsible for CaMKII dephosphorylation during specific cell cycle phases.
- To assess the impact of different CaMKIIα variants on cancer and neuroblastoma cell proliferation.
Main Methods:
- Analysis of CaMKII phosphorylation at T253 and T286 throughout the cell cycle.
- Overexpression of wild-type (WT), T286D, T253D, and T253V CaMKIIα forms in MDA-MB-231 and SHSY5Y cells.
- Molecular inhibition and pharmacological activation of protein phosphatase 2A (PP2A).
Main Results:
- CaMKII T253 dephosphorylation occurs during G2/M phases, while T286 phosphorylation remains constant.
- PP2A is identified as the phosphatase responsible for T253 dephosphorylation.
- Overexpression of WT, T286D, and T253V CaMKIIα enhances proliferation, whereas T253D overexpression reduces proliferation and causes metaphase arrest.
Conclusions:
- CaMKII dephosphorylation at T253 is a key regulator of the cell cycle, specifically the metaphase-anaphase transition.
- The phosphorylation status of CaMKII T253 plays a critical role in controlling cell proliferation.
- Targeting CaMKII phosphorylation could offer therapeutic strategies for cancers and neurodegenerative diseases.
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