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Updated: Sep 20, 2025

Real-Time Monitoring of Aurora kinase A Activation using Conformational FRET Biosensors in Live Cells
Published on: July 30, 2020
Identification and Characterization of Natural and Semisynthetic Quinones as Aurora Kinase Inhibitors
Muhammad Furqan1, Alishba Fayyaz1, Farhat Firdous1,2
1Department of Biology, Syed Babar Ali School of Science and Engineering, Lahore University of Management Sciences, Lahore 54792, Pakistan.
Abstract:
Aurora kinases (Aurora A, B, and C) are a family of serine/threonine kinases that play critical roles during mitotic initiation and progression. Aurora A and B kinases are ubiquitously expressed, and their overexpression and/or amplification in many cancers have been associated with poor prognosis. Several inhibitors that target Aurora kinases A, B, or both have been developed during the past decade with efficacy in different in vitro and in vivo models for a variety of cancers. Recent studies have also identified Aurora A as a synthetic lethal target for different tumor suppressors, including RB1, SMARCA4, and ARID1A, which signifies the need for Aurora-A-selective inhibitors. Here, we report the screening of a small library of quinones (nine naphthoquinones, one orthoquinone, and one anthraquinone) in a biochemical assay for Aurora A kinase that resulted in the identification of several quinones as inhibitors. IC50 determination against Aurora A and B kinases revealed the inhibition of both kinases with selectivity toward Aurora A. Two of the compounds, natural quinone naphthazarin (1) and a pseudo anthraquinone, 2-(chloromethyl)quinizarin (11), potently inhibited the proliferation of various cancer cell lines with IC50 values ranging from 0.16 ± 0.15 to 1.7 ± 0.06 and 0.15 ± 0.04 to 6.3 ± 1.8 μM, respectively. Treatment of cancer cells with these compounds for 24 h resulted in abrogated mitosis and apoptotic cell death. Direct binding of both the compounds with Aurora A kinase was also confirmed through STD NMR analysis. Docking studies predicted the binding of both compounds to the ATP binding pocket of Aurora A kinase. We have, therefore, identified quinones as Aurora kinase inhibitors that can serve as a lead for future drug discovery endeavors.
Insights
Quinones, including naphthazarin and 2-(chloromethyl)quinizarin, effectively inhibit Aurora A kinase, a key target in cancer. These compounds halt cancer cell proliferation by disrupting mitosis and inducing apoptosis, offering promising leads for drug discovery.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Aurora kinases (A, B, C) are crucial for cell division.
- Overexpression of Aurora A and B kinases correlates with poor cancer prognosis.
- Targeting Aurora kinases is a promising strategy for cancer therapy, with a need for selective Aurora A inhibitors.
Purpose of the Study:
- To screen quinone compounds for Aurora A kinase inhibitory activity.
- To evaluate the anti-cancer proliferation effects of identified quinone inhibitors.
- To elucidate the mechanism of action for these quinone-based inhibitors.
Main Methods:
- Biochemical assays for Aurora A kinase inhibition.
- IC50 determination against Aurora A and B kinases.
- Cancer cell proliferation assays, cell cycle analysis, apoptosis assays, STD NMR, and molecular docking.
Main Results:
- Several quinones identified as Aurora A kinase inhibitors with selectivity over Aurora B.
- Naphthazarin and 2-(chloromethyl)quinizarin potently inhibited cancer cell proliferation.
- Compounds induced mitotic arrest and apoptotic cell death, with confirmed binding to Aurora A kinase ATP pocket.
Conclusions:
- Quinones are effective inhibitors of Aurora kinases, particularly Aurora A.
- Naphthazarin and 2-(chloromethyl)quinizarin demonstrate significant anti-cancer potential.
- These quinones represent valuable lead compounds for developing novel cancer therapeutics targeting Aurora kinases.
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