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Updated: Oct 1, 2025

Identification of Cyclin-dependent Kinase 1 Specific Phosphorylation Sites by an In Vitro Kinase Assay
Published on: May 3, 2018
Cell cycle involvement in cancer therapy; WEE1 kinase, a potential target as therapeutic strategy
Sajjad Vakili-Samiani1, Omid Joodi Khanghah2, Elham Gholipour3
1Student Research Committee, Tabriz University of Medical Sciences, Tabriz, Iran; Medical Education Research Center, Health Management and Safety Promotion Research Institute, Tabriz University of Medical Sciences, Tabriz, Iran; Hematology and Oncology Research Center, Tabriz University of Medical Sciences, Tabriz, Iran; Educational Development Center, Department of Medical Education, Tabriz University of Medical Sciences, Tabriz, Iran; Educational Development Organization, Department of Medical Education, Tabriz University of Medical Sciences, Tabriz, Iran.
Abstract:
Mitosis is the process of cell division and is regulated by checkpoints in the cell cycle. G1-S, S, and G2-M are the three main checkpoints that prevent initiation of the next phase of the cell cycle phase until previous phase has completed. DNA damage leads to activation of the G2-M checkpoint, which can trigger a downstream DNA damage response (DDR) pathway to induce cell cycle arrest while the damage is repaired. If the DNA damage cannot be repaired, the replication stress response (RSR) pathway finally leads to cell death by apoptosis, in this case called mitotic catastrophe. Many cancer treatments (chemotherapy and radiotherapy) cause DNA damages based on SSBs (single strand breaks) or DSBs (double strand breaks), which cause cell death through mitotic catastrophe. However, damaged cells can activate WEE1 kinase (as a part of the DDR and RSR pathways), which prevents apoptosis and cell death by inducing cell cycle arrest at G2 phase. Therefore, inhibition of WEE1 kinase could sensitize cancer cells to chemotherapeutic drugs. This review focuses on the role of WEE1 kinase (as a biological macromolecule which has a molecular mass of 96 kDa) in the cell cycle, and its interactions with other regulatory pathways. In addition, we discuss the potential of WEE1 inhibition as a new therapeutic approach in the treatment of various cancers, such as melanoma, breast cancer, pancreatic cancer, cervical cancer, etc.
Insights
Inhibiting WEE1 kinase, which prevents cancer cell death after DNA damage, could make tumors more sensitive to chemotherapy. This strategy targets cell cycle regulation for cancer treatment.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- Cell cycle checkpoints, including G1-S, S, and G2-M, regulate cell division.
- DNA damage activates the G2-M checkpoint and DNA damage response (DDR) pathways.
- If damage is irreparable, the replication stress response (RSR) leads to mitotic catastrophe (cell death).
Purpose of the Study:
- To review the role of WEE1 kinase in cell cycle regulation and its interaction with DDR and RSR pathways.
- To explore the therapeutic potential of WEE1 kinase inhibition in various cancers.
Main Methods:
- Literature review focusing on WEE1 kinase function in cell cycle control.
- Analysis of WEE1 kinase's role in DNA damage response and replication stress response pathways.
- Discussion of WEE1 inhibition as a sensitizing strategy for cancer therapies.
Main Results:
- WEE1 kinase activation by DNA damage can lead to G2 cell cycle arrest, preventing apoptosis.
- Cancer treatments like chemotherapy and radiotherapy induce DNA damage, potentially triggering mitotic catastrophe.
- WEE1 kinase acts as a key regulator in preventing cancer cell death.
Conclusions:
- WEE1 kinase inhibition may overcome resistance to DNA-damaging cancer therapies.
- Targeting WEE1 kinase presents a promising therapeutic strategy for cancers including melanoma, breast, and pancreatic cancer.
- Understanding WEE1's role in cell cycle checkpoints is crucial for developing novel cancer treatments.
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