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Updated: Jun 13, 2026

Functional Assessment of Kinesin-7 CENP-E in Spermatocytes Using In Vivo Inhibition, Immunofluorescence and Flow Cytometry
Published on: December 28, 2021
Nek7 kinase targeting leads to early mortality, cytokinesis disturbance and polyploidy
H Salem1, I Rachmin, N Yissachar
1The Mina and Everard Goodman Faculty of Life Sciences, Bar-Ilan University, Ramat-Gan, Israel.
Abstract:
The mammalian NIMA-related kinases (Neks) are commonly referred to as mitotic kinases, although a definitive in vivo verification of this definition is largely missing. Reduction in the activity of Nek7 or its close paralog, Nek6, has previously been shown to arrest cells in mitosis, mainly at metaphase. In this study, we investigate the developmental and cellular roles of Nek7 kinase through the generation and analysis of Nek7-deficient mice. We show that absence of Nek7 leads to lethality in late embryogenesis or at early post-natal stages and to severe growth retardation. Mouse embryonic fibroblasts (MEFs) derived from Nek7(-/-) embryos show increase tendency for chromosomal lagging, micronuclei formation and cytokinesis failure. Tetraploidy and aneuploidy were commonly observed and their prevalence arises with MEFs passages. The frequency of multicentrosomal cells in the mutant's MEF cells was higher, and it commonly occurred concurrently with a binuclear phenotype, suggesting cytokinesis failure etiology. Lastly, the percentage of mutant MEF cells bearing primary cilia (PC) was low, whereas a cell population having two cilia appeared in the mutant MEFs. Taken together, these results confirm Nek7 as a regulator of cell division, and reveal it as an essential component for mammalian growth and survival. The intimate connection between tetraploidy, aneuploidy and cancer development suggests that Nek7 deregulation can induce oncogenesis.
Insights
Nek7 kinase is essential for mammalian growth and survival, regulating cell division. Its absence causes embryonic lethality and severe developmental defects, highlighting its critical role in preventing aneuploidy and potential oncogenesis.
Area of Science:
- Cell Biology
- Genetics
- Developmental Biology
Background:
- Mammalian NIMA-related kinases (Neks) are implicated as mitotic kinases, but in vivo evidence is limited.
- Previous studies showed Nek7 or Nek6 inhibition causes mitotic arrest, primarily at metaphase.
Purpose of the Study:
- To investigate the developmental and cellular functions of Nek7 kinase.
- To generate and analyze Nek7-deficient mice to confirm its in vivo roles.
Main Methods:
- Generation and analysis of Nek7-deficient (Nek7(-/-)) mice.
- Characterization of mouse embryonic fibroblasts (MEFs) from Nek7(-/-) embryos.
Main Results:
- Nek7 deficiency results in embryonic lethality and severe growth retardation.
- Nek7(-/-) MEFs exhibit increased chromosomal lagging, micronuclei formation, and cytokinesis failure.
- Mutant MEFs show elevated tetraploidy, aneuploidy, multicentrosomal cells, and altered primary cilia presence.
Conclusions:
- Nek7 is confirmed as a crucial regulator of mammalian cell division, growth, and survival.
- Nek7 deregulation, linked to tetraploidy and aneuploidy, may contribute to oncogenesis.
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