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Updated: Jan 25, 2026

Real-Time Monitoring of Aurora kinase A Activation using Conformational FRET Biosensors in Live Cells
Published on: July 30, 2020
Chromobox 2 Inhibition: A Novel Activity of Alisertib, an Aurora A Kinase Inhibitor
Tomomi M Yamamoto1, Ritsuko Iwanaga1, Elizabeth R Woodruff1
1Division of Reproductive Sciences, University of Colorado Denver, Anschutz Medical Campus, Aurora, Colorado.
Abstract:
Chromobox 2 (CBX2), a subunit of polycomb repressor complex 1 (PRC1), is expressed in high-grade serous carcinoma (HGSC). CBX2-inhibitory peptide (CBX2i) has demonstrated efficacy in a syngeneic mouse model but has limitations. We sought to identify an alternative approach to CBX2 inhibition. A computational-based molecular docking screen was performed using the Selleckchem Bioactive Library to identify inhibitors of CBX2. A similarity screen of top hits against the bound conformation of CBX2i pharmacophore model was performed in parallel. A series of in vitro validation studies evaluated the effect of alisertib on proliferation, a CBX2 target gene, and stemness. CBX2-knockdown cell lines and a syngeneic murine model were utilized to evaluate alisertib response in the context of CBX2 loss. Cell target engagement assay was performed. PRC1 activity was measured by H2AK119ub levels. Immune profiling of treated tumors defined the immune microenvironment. The computational-based screen identified 10 candidate compounds. In vitro validation narrowed compounds of interest to raltitrexed, alisertib, GTX-007, LY315920, and PD0325901. Ultralow dilution assay demonstrated a dramatic decrease in spheroid formation with alisertib, an aurora A kinase (AURKA) inhibitor. Good structural overlap was observed between CBX2i and alisertib. Cell target engagement assay confirmed alisertib selectivity for both AURKA and CBX2. Loss of CBX2 attenuated alisertib efficacy in vitro and in vivo. Treatment with alisertib leads to a decrease in H2AK119ub and shift in the immune tumor microenvironment. Alisertib efficacy in HGSC is dependent on functional CBX2, and cell target engagement confirms selectivity for CBX2, supporting that alisertib activity involves CBX2 inhibition.
Insights
Researchers identified alisertib as a potential inhibitor of Chromobox 2 (CBX2) in high-grade serous carcinoma. Alisertib
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Chromobox 2 (CBX2), a Polycomb Repressor Complex 1 (PRC1) subunit, is upregulated in high-grade serous carcinoma (HGSC).
- Previous CBX2 inhibition using peptides showed promise but had limitations.
- Alternative strategies for targeting CBX2 in HGSC are needed.
Purpose of the Study:
- To identify novel inhibitors of CBX2 using computational screening.
- To validate the efficacy of candidate compounds, including alisertib, in preclinical models of HGSC.
- To investigate the mechanism of action and dependencies of alisertib in relation to CBX2.
Main Methods:
- Computational molecular docking and similarity screening of a bioactive library.
- In vitro assays assessing proliferation, stemness, and spheroid formation.
- CBX2 knockdown models, syngeneic murine models, cell target engagement assays, and immune profiling.
Main Results:
- Computational screening identified 10 candidate CBX2 inhibitors, with raltitrexed, alisertib, GTX-007, LY315920, and PD0325901 selected for validation.
- Alisertib, an aurora A kinase (AURKA) inhibitor, significantly reduced spheroid formation and demonstrated selectivity for both AURKA and CBX2.
- Alisertib's efficacy was dependent on functional CBX2, reduced H2AK119ub levels, and modulated the tumor immune microenvironment.
Conclusions:
- Alisertib exhibits anti-cancer activity in HGSC, partly through CBX2 inhibition.
- The efficacy of alisertib in HGSC is contingent upon the presence of functional CBX2.
- Alisertib represents a promising therapeutic candidate for HGSC, with its activity linked to CBX2 targeting and immune modulation.
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