Pharmacophore-guided discovery of CDC25 inhibitors causing cell cycle arrest and tumor regression

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作者
Zeynep Kabakci
Simon Käppeli
Claudio Cantù
Lasse D. Jensen
Christiane König
Janine Toggweiler
Christian Gentili
Giovanni Ribaudo
Giuseppe Zagotto
Konrad Basler
Lorenzo A. Pinna
Giorgio Cozza
Stefano Ferrari
机构
[1] University of Zurich,Institute of Molecular Cancer Research
[2] Campus US,Department of Clinical and Experimental Medicine
[3] University of Linköping,Wallenberg Centre for Molecular Medicine
[4] University of Linköping,Institute of Molecular Life Sciences
[5] University of Zurich,Department of Medical and Health Sciences
[6] Campus US,Department of Pharmacology
[7] University of Linköping,Department of Biomedical Sciences
[8] University of Padua,Department of Molecular Medicine
[9] University of Padua,undefined
[10] University of Padua,undefined
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CDC25 phosphatases play a key role in cell cycle transitions and are important targets for cancer therapy. Here, we set out to discover novel CDC25 inhibitors. Using a combination of computational methods, we defined a minimal common pharmacophore in established CDC25 inhibitors and performed virtual screening of a proprietary library. Based on the availability of crystal structures for CDC25A and CDC25B, we implemented a molecular docking strategy and carried out hit expansion/optimization. Enzymatic assays revealed that naphthoquinone scaffolds were the most promising CDC25 inhibitors among selected hits. At the molecular level, the compounds acted through a mixed-type mechanism of inhibition of phosphatase activity, involving reversible oxidation of cysteine residues. In 2D cell cultures, the compounds caused arrest of the cell cycle at the G1/S or at the G2/M transition. Mitotic markers analysis and time-lapse microscopy confirmed that CDK1 activity was impaired and that mitotic arrest was followed by death. Finally, the compounds induced differentiation, accompanied by decreased stemness properties, in intestinal crypt stem cell-derived Apc/K-Ras-mutant mouse organoids, and led to tumor regression and reduction of metastatic potential in zebrafish embryo xenografts used as in vivo model.
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