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Dynamic and multi-pharmacophore modeling for designing polo-box domain inhibitors
Sugunadevi Sakkiah1, Silvia Senese1, Qianfan Yang1
1Department of Chemistry and Biochemistry, University of California Los Angeles, Los Angeles, California, United States of America.
Abstract:
The polo-like kinase 1 (Plk1) is a critical regulator of cell division that is overexpressed in many types of tumors. Thus, a strategy in the treatment of cancer has been to target the kinase activity (ATPase domain) or substrate-binding domain (Polo-box Domain, PBD) of Plk1. However, only few synthetic small molecules have been identified that target the Plk1-PBD. Here, we have applied an integrative approach that combines pharmacophore modeling, molecular docking, virtual screening, and in vitro testing to discover novel Plk1-PBD inhibitors. Nine Plk1-PBD crystal structures were used to generate structure-based hypotheses. A common pharmacophore model (Hypo1) composed of five chemical features was selected from the 9 structure-based hypotheses and used for virtual screening of a drug-like database consisting of 159,757 compounds to identify novel Plk1-PBD inhibitors. The virtual screening technique revealed 9,327 compounds with a maximum fit value of 3 or greater, which were selected and subjected to molecular docking analyses. This approach yielded 93 compounds that made good interactions with critical residues within the Plk1-PBD active site. The testing of these 93 compounds in vitro for their ability to inhibit the Plk1-PBD, showed that many of these compounds had Plk1-PBD inhibitory activity and that compound Chemistry_28272 was the most potent Plk1-PBD inhibitor. Thus Chemistry_28272 and the other top compounds are novel Plk1-PBD inhibitors and could be used for the development of cancer therapeutics.
Insights
Researchers discovered new small molecules targeting the Polo-like kinase 1 (Plk1) Polo-box Domain (PBD), a key target in cancer. Compound Chemistry_28272 showed potent Plk1-PBD inhibition, offering potential for novel cancer therapeutics.
Area of Science:
- Biochemistry
- Medicinal Chemistry
- Computational Biology
Background:
- Polo-like kinase 1 (Plk1) is crucial for cell division and frequently overexpressed in tumors.
- Targeting Plk1's Polo-box Domain (PBD) is a promising cancer treatment strategy, but few inhibitors exist.
- Developing novel Plk1-PBD inhibitors is essential for advancing cancer therapy.
Purpose of the Study:
- To discover novel small molecule inhibitors targeting the Plk1-PBD.
- To utilize an integrated computational and experimental approach for inhibitor identification.
- To identify potent inhibitors for potential cancer therapeutic development.
Main Methods:
- Structure-based pharmacophore modeling using nine Plk1-PBD crystal structures.
- Virtual screening of a large drug-like compound database (159,757 compounds).
- Molecular docking analyses and in vitro testing of selected compounds.
Main Results:
- A common pharmacophore model (Hypo1) was generated and used for virtual screening.
- Virtual screening identified 9,327 potential inhibitors, with 93 showing good active site interactions.
- In vitro testing confirmed inhibitory activity, with compound Chemistry_28272 demonstrating the highest potency.
Conclusions:
- The study successfully identified novel Plk1-PBD inhibitors using an integrative computational approach.
- Compound Chemistry_28272 is a potent Plk1-PBD inhibitor with therapeutic potential.
- These novel inhibitors represent promising candidates for future cancer drug development.
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