Related Experiment Video
Updated: Jun 12, 2026

Integration of Bioinformatics Approaches and Experimental Validations to Understand the Role of Notch Signaling in Ovarian Cancer
Published on: January 12, 2020
The balance between B55α and Greatwall expression levels predicts sensitivity to Greatwall inhibition in cancer cells
Róbert Zach1, Michael Annis2, Sandra M Martin-Guerrero3
1Genome Damage and Stability Centre, School of Life Sciences, University of Sussex, Brighton, BN1 9RQ, UK. r.zach@sussex.ac.uk.
Abstract:
The Greatwall kinase inhibits PP2A-B55 phosphatase activity during mitosis to stabilise critical Cdk1-driven mitotic phosphorylation. Although Greatwall represents a potential oncogene and prospective therapeutic target, our understanding of the cellular and molecular consequences of chemical Greatwall inactivation remains limited. To address this, we introduce C-604, a highly selective Greatwall inhibitor, and characterise both immediate and long-term cellular responses to the chemical attenuation of Greatwall activity. We demonstrate that Greatwall inhibition causes systemic destabilisation of the mitotic phosphoproteome, premature mitotic exit and pleiotropic cellular pathologies. Importantly, we show that the cellular and molecular abnormalities associated with reduced Greatwall activity are specifically dependent on the B55α isoform, rather than other B55 variants, underscoring PP2A-B55α phosphatases as key mediators of the cytotoxic effects of Greatwall-targeting agents in human cells. Additionally, we establish that sensitivity to Greatwall inhibition varies in different cell line models and that dependency on Greatwall activity reflects the balance between Greatwall and B55α expression levels. Our findings highlight Greatwall dependency as a cell-specific vulnerability and propose the B55α-to-Greatwall expression ratio as a predictive biomarker of cellular responses to Greatwall-targeted therapeutics.
Insights
Greatwall kinase inhibition destabilizes mitosis, causing cell abnormalities. This effect is specifically mediated by the PP2A-B55α phosphatase, highlighting a potential therapeutic vulnerability.
Area of Science:
- Cell Biology
- Molecular Oncology
- Biochemistry
Background:
- Greatwall kinase regulates mitosis by inhibiting PP2A-B55 phosphatase activity, stabilizing Cdk1-driven phosphorylation.
- Greatwall is a potential oncogene and therapeutic target, but its chemical inactivation consequences are poorly understood.
Purpose of the Study:
- To characterize cellular and molecular responses to chemical Greatwall inactivation using a selective inhibitor (C-604).
- To identify the specific PP2A phosphatase isoforms mediating Greatwall inhibitor effects.
- To determine factors influencing sensitivity to Greatwall inhibition.
Main Methods:
- Utilized C-604, a selective Greatwall inhibitor, to study cellular responses.
- Analyzed the mitotic phosphoproteome and mitotic exit.
- Assessed cell line sensitivity and correlated it with Greatwall and B55α expression levels.
Main Results:
- Greatwall inhibition led to destabilization of the mitotic phosphoproteome, premature mitotic exit, and cellular pathologies.
- Observed that these abnormalities were dependent on the B55α isoform of PP2A.
- Demonstrated variable sensitivity to Greatwall inhibition across cell lines, linked to the Greatwall/B55α expression ratio.
Conclusions:
- Greatwall inhibition causes significant cellular dysfunction, mediated by PP2A-B55α.
- Greatwall dependency is cell-specific, with the B55α/Greatwall ratio acting as a predictive biomarker for Greatwall-targeted therapies.
Related Concept Videos
Plant Cell Wall
Bacterial Cell Wall
Archaeal Cell Wall

