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Updated: Jun 13, 2026

Real-Time Monitoring of Aurora kinase A Activation using Conformational FRET Biosensors in Live Cells
Published on: July 30, 2020
Specific primary sequence requirements for Aurora B kinase-mediated phosphorylation and subcellular localization of
Hyun-Jun Kim1, Hye-Rim Kwon, Chang-Dae Bae
1Department of Molecular Cell Biology and Samsung Biomedical Research Institute, Sungkyunkwan University School of Medicine, Jangangu, Suwon, Republic of Korea.
Abstract:
During mitosis, regulation of protein structures and functions by phosphorylation plays critical roles in orchestrating a series of complex events essential for the cell division process. Tumor-associated microtubule-associated protein (TMAP), also known as cytoskeleton-associated protein 2 (CKAP2), is a novel player in spindle assembly and chromosome segregation. We have previously reported that TMAP is phosphorylated at multiple residues specifically during mitosis. However, the mechanisms and functional importance of phosphorylation at most of the sites identified are currently unknown. Here, we report that TMAP is a novel substrate of the Aurora B kinase. Ser627 of TMAP was specifically phosphorylated by Aurora B both in vitro and in vivo. Ser627 and neighboring conserved residues were strictly required for efficient phosphorylation of TMAP by Aurora B, as even minor amino acid substitutions of the phosphorylation motif significantly diminished the efficiency of the substrate phosphorylation. Nearly all mutations at the phosphorylation motif had dramatic effects on the subcellular localization of TMAP. Instead of being localized to the chromosome region during late mitosis, the mutants remained associated with microtubules and centrosomes throughout mitosis. However, the changes in the subcellular localization of these mutants could not be completely explained by the phosphorylation status on Ser627. Our findings suggest that the motif surrounding Ser627 ((625) RRSRRL (630)) is a critical part of a functionally important sequence motif which not only governs the kinase-substrate recognition, but also regulates the subcellular localization of TMAP during mitosis.
Insights
Tumor-associated microtubule-associated protein (TMAP) is phosphorylated by Aurora B kinase at Ser627, impacting its cellular location during mitosis. This phosphorylation motif is crucial for TMAP
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Phosphorylation regulates protein function during mitosis, crucial for cell division.
- Tumor-associated microtubule-associated protein (TMAP/CKAP2) is involved in spindle assembly and chromosome segregation.
- TMAP is phosphorylated during mitosis, but mechanisms and functional roles are largely unknown.
Purpose of the Study:
- Identify TMAP as a substrate of Aurora B kinase.
- Investigate the role of TMAP phosphorylation at Ser627 in mitosis.
- Determine the functional importance of the TMAP phosphorylation motif for localization and kinase recognition.
Main Methods:
- In vitro and in vivo kinase assays to confirm TMAP phosphorylation by Aurora B.
- Site-directed mutagenesis of the TMAP phosphorylation motif around Ser627.
- Analysis of subcellular localization of wild-type and mutant TMAP during mitosis using microscopy.
Main Results:
- TMAP is a novel substrate of Aurora B kinase, with Ser627 being specifically phosphorylated.
- The phosphorylation motif (RRSRRL) surrounding Ser627 is essential for efficient Aurora B-mediated phosphorylation.
- Mutations in the motif dramatically altered TMAP's subcellular localization, causing it to remain on microtubules and centrosomes instead of the chromosome region.
Conclusions:
- The Aurora B kinase phosphorylates TMAP at Ser627, regulating its mitotic function.
- The identified phosphorylation motif is critical for both kinase recognition and proper TMAP localization during cell division.
- While Ser627 phosphorylation is important, other factors also influence TMAP's subcellular distribution.
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