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Updated: Mar 25, 2026

Pancreatic Tissue Dissection to Isolate Viable Single Cells
Published on: May 26, 2023
Cytokinetic effects of Wee1 disruption in pancreatic cancer
Qing Chang1, Megha Chandrashekhar2, Troy Ketela1
1a Ontario Cancer Institute/Princess Margaret Cancer Center , Toronto , Ontario , Canada.
Abstract:
The Wee1 kinase, which is activated in response to DNA damage, regulates exit from G2 through inhibitory phosphorylation of Cdk1/Cdc2, and is an attractive drug target. However, recent work has highlighted effects of Cdk2 phosphorylation by Wee1 on movement through S-phase, suggesting the potential to sensitize to S-phase specific agents by Wee1 inhibitors. In this paper we applied multiparametric flow cytometry to patient-derived pancreatic cancer xenograft tumor cells to study the cell cycle perturbations of Wee1 disruption via the small molecule inhibitor MK-1775, and genetic knockdown. We find that in vitro treatment with MK-1775, and to a lesser degree, Wee1 RNA transcript knockdown, results in the striking appearance of S-phase cells prematurely entering into mitosis. This effect was not seen in vivo in any of the models tested. Here, although we noted an increase of S-phase cells expressing the damage response marker γH2AX, treatment with MK-1775 did not significantly sensitize cells to the cytidine analog gemcitabine. Treatment with MK-1775 did result in a transient but large increase in cells expressing the mitotic marker phosphorylated H3S10 that reached a peak 4 hours after treatment. This suggests a role for Wee1 regulating the progression of genomically unstable cancer cells through G2 in the absence of extrinsically-applied DNA damage. A single dose of 8Gy ionizing radiation resulted in the time-dependent accumulation of Cyclin A2 positive/phosphorylated H3S10 negative cells at the 4N position, which was abrogated by treatment with MK-1775. Consistent with these findings, a genome-scale pooled RNA interference screen revealed that toxic doses of MK-1775 are suppressed by CDK2 or Cyclin A2 knockdown. These findings support G2 exit as the more significant effect of Wee1 inhibition in pancreatic cancers.
Insights
Wee1 kinase inhibitors like MK-1775 cause premature mitosis in pancreatic cancer cells in vitro, but not in vivo. This suggests Wee1 inhibition primarily affects G2 cell cycle exit in these cancers.
Area of Science:
- Oncology
- Molecular Biology
- Cell Cycle Regulation
Background:
- Wee1 kinase is a key regulator of G2/M cell cycle checkpoint, activated by DNA damage.
- Wee1 inhibition is an attractive cancer drug target, with potential to sensitize cells to S-phase agents.
- Previous studies suggest Wee1 impacts S-phase progression via Cdk2 phosphorylation.
Purpose of the Study:
- To investigate cell cycle perturbations caused by Wee1 inhibition in pancreatic cancer.
- To evaluate the effects of Wee1 disruption on S-phase and G2/M transition.
- To assess the combination potential of Wee1 inhibitors with gemcitabine.
Main Methods:
- Multiparametric flow cytometry on patient-derived pancreatic cancer xenograft cells.
- Treatment with Wee1 inhibitor MK-1775 and Wee1 RNA knockdown.
- Analysis of cell cycle markers (γH2AX, phosphorylated H3S10, Cyclin A2).
- Genome-scale pooled RNA interference screen.
Main Results:
- In vitro, MK-1775 and Wee1 knockdown caused premature entry into mitosis from S-phase.
- This mitotic entry was not observed in vivo across tested models.
- MK-1775 treatment did not sensitize cells to gemcitabine but increased mitotic marker pH3S10.
- Wee1 inhibition abrogated radiation-induced G2 arrest and was suppressed by CDK2/Cyclin A2 knockdown.
Conclusions:
- Wee1 inhibition primarily impacts G2 cell cycle exit in pancreatic cancers.
- The observed in vitro mitotic entry is a transient effect, not replicated in vivo.
- CDK2 and Cyclin A2 play a role in mediating Wee1 inhibitor toxicity.
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