Related Experiment Video
Updated: Sep 11, 2025

Identification of Cyclin-dependent Kinase 1 Specific Phosphorylation Sites by an In Vitro Kinase Assay
Published on: May 3, 2018
G2 regulatory processes require speedbump for Wee1 kinase activity
Rachel M Warga1, Donald A Kane1
1Department of Biological Sciences Western Michigan University, Kalamazoo, MI, 49008, USA.
Abstract:
Wee1 is a conserved Cdk1 inhibitory kinase operating at the G2/M checkpoint to prevent entry into mitosis until the genome has been surveilled and replication is complete. We report here that the early arrest mutant speedbump is a loss-of-function mutation in the zebrafish ortholog of wee1. Like other creatures lacking Wee1 kinase, cells in the mutant enter mitosis early. Eventually, mutant cells exhibit chromosomal defects and undergo apoptosis. Live recordings of the mutant reveal that as gastrula cells transition from maternal to zygotic control, their cell cycle gets progressively shorter rather than lengthening as seen in wild-type embryos. This suggests that Wee1 kinase inhibition is part of a mechanism to slow the cell cycle that we posit is independent of its role in blocking entry into mitosis to prevent DNA damage. Supporting this view, we show that Wee1 kinase is also crucial for tissues that normally exit the cell cycle in the G2 phase. In the absence of Wee1 kinase, hatching gland cells, which typically cease dividing before speedbump defects appear, no longer remain in G2, and instead advance into mitosis before prematurely dying. Finally, we demonstrate that Wee1 kinase is essential for the endoreplication cycle in the yolk cell. We show that wild-type yolk cell nuclei transition to an S and G endocycle after they cease mitosis in the blastula. However, without Wee1 kinase these nuclei have difficulty attaining this endocycle and sometimes regress back into mitosis. We conclude that besides the regulation of mitotic timing, Wee1 kinase has other G2 regulatory roles not previously reported in which controlling entry into mitosis must be coordinated with other cellular processes.
Insights
Wee1 kinase, crucial for cell cycle control, normally prevents premature mitosis. Loss of Wee1 in zebrafish embryos causes early cell division, genomic instability, and apoptosis, revealing new G2 regulatory roles beyond mitotic timing.
Area of Science:
- Cell Biology
- Developmental Biology
- Genetics
Background:
- Wee1 kinase is a key regulator of the G2/M cell cycle checkpoint, ensuring genomic integrity before mitosis.
- Loss-of-function mutations in Wee1 can lead to premature entry into mitosis and subsequent cellular defects.
Purpose of the Study:
- To investigate the function of Wee1 kinase in zebrafish development.
- To identify novel roles of Wee1 kinase in cell cycle regulation beyond its known role in the G2/M checkpoint.
Main Methods:
- Utilized the zebrafish 'speedbump' mutant, a loss-of-function model for Wee1.
- Performed live imaging of embryonic development to observe cell cycle dynamics.
- Analyzed cell cycle progression, chromosomal integrity, and apoptosis in wild-type and mutant embryos.
- Examined the role of Wee1 in specific cell types, including hatching gland cells and yolk cells.
Main Results:
- The 'speedbump' mutant exhibits premature entry into mitosis and progressive cell cycle shortening during gastrulation.
- Mutant cells display chromosomal abnormalities and undergo apoptosis.
- Wee1 kinase is essential for maintaining G2 arrest in terminally differentiating cells like hatching gland cells.
- Wee1 kinase is critical for the establishment of the endoreplication cycle in yolk cells, with its absence leading to mitotic defects.
Conclusions:
- Wee1 kinase plays broader roles in G2 regulation than previously understood, extending beyond preventing mitotic entry.
- Wee1 kinase coordinates cell cycle exit with other developmental processes, such as terminal differentiation and endoreplication.
- These findings highlight the multifaceted importance of Wee1 kinase in ensuring proper cell cycle control and developmental progression.
Related Concept Videos
Inhibition of Cdk Activity
Amplifying Signals via Enzymatic Cascade
GTPases and their Regulation
Large G-proteins,...
Small GTPases - Ras and Rho
Three regulatory proteins control their activity:
Negative Regulator Molecules
Diversity in Cell Signaling Responses
Graded and Abrupt Responses
Some signaling systems generate...

