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Updated: Jan 25, 2026

Engineering Artificial Factors to Specifically Manipulate Alternative Splicing in Human Cells
Published on: April 26, 2017
Alternative splicing controls nuclear translocation of the cell cycle-regulated Nek2 kinase
Wenjuan Wu1, Joanne E Baxter, Samantha L Wattam
1Laboratório de Transdução de Sinais, Centro de Biologia Celular, Universidade de Aveiro, 3810-193 Aveiro, Portugal.
Abstract:
Nek2 is a cell cycle-regulated serine/threonine protein kinase that is up-regulated in human cancers. Functionally, it is implicated in control of centrosome separation and bipolar spindle formation in mitotic cells and chromatin condensation in meiotic cells. Two major splice variants have been described in vertebrates, Nek2A and Nek2B, that differ in their non-catalytic C termini. Recently, a third splice variant, Nek2C, was identified that lacks an eight-amino acid internal sequence within the C-terminal domain of Nek2A. This excision occurs at the same position as the Nek2A/Nek2B splice point. As predicted from their high degree of similarity, we show here that Nek2C shares many properties with Nek2A including kinase activity, dimerization, protein phosphatase 1 interaction, mitotic degradation, microtubule binding, and centrosome localization. Unexpectedly, though, the non-centrosomal pool of protein exhibits a marked difference in distribution for the three splice variants. Nek2C is mainly nuclear, Nek2B is mainly cytoplasmic, and Nek2A is evenly distributed within nuclei and cytoplasm. Mutagenesis experiments revealed a functional bipartite nuclear localization sequence (NLS) that spans the splice site leading to Nek2C having a strong NLS, Nek2A having a weak NLS, and Nek2B having no NLS. Finally, we identified a 28-kDa protein in nuclear extracts as a potential novel substrate of Nek2. Thus, alternative splicing provides an unusual mechanism for modulating Nek2 localization, enabling it to have both nuclear and cytoplasmic functions.
Insights
Alternative splicing of Nek2 kinase generates variants with distinct cellular localizations. This study reveals how Nek2C, Nek2A, and Nek2B splice variants are differentially distributed in the nucleus and cytoplasm, impacting their functions.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Nek2 is a cell cycle-regulated kinase implicated in cancer.
- Two splice variants, Nek2A and Nek2B, are known.
- A third variant, Nek2C, was recently identified.
Purpose of the Study:
- To investigate the properties and localization of the Nek2C splice variant.
- To understand how alternative splicing affects Nek2 protein distribution and function.
- To identify potential novel substrates of Nek2.
Main Methods:
- Characterization of Nek2C properties (kinase activity, dimerization, etc.).
- Analysis of splice variant distribution in cellular compartments.
- Mutagenesis to identify functional nuclear localization sequences (NLS).
- Identification of potential Nek2 substrates.
Main Results:
- Nek2C shares many properties with Nek2A but exhibits distinct localization.
- Nek2C is primarily nuclear, Nek2B cytoplasmic, and Nek2A distributed between nucleus and cytoplasm.
- A bipartite NLS was identified, explaining the differential localization.
- A novel 28-kDa nuclear protein substrate for Nek2 was found.
Conclusions:
- Alternative splicing is a key mechanism for modulating Nek2 localization.
- Differential localization allows Nek2 variants to perform distinct nuclear and cytoplasmic functions.
- The identified substrate suggests new roles for Nek2 in nuclear processes.
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