The design of TOPK inhibitors using structure-based pharmacophore modeling and molecular docking based on an

Lara I Fakhouri1, Nizar A Al-Shar'i2

  • 1Department of Medicinal Chemistry and Pharmacognosy, Faculty of Pharmacy, Jordan University of Science and Technology, P.O. Box 3030, Irbid, 22110, Jordan. lialfakhori@just.edu.jo.

Molecular Diversity
|January 15, 2022
PubMed

Insights

Researchers identified potent TOPK inhibitors for cancer treatment. Targeting the TOPK enzyme (also known as PBK) offers a promising strategy against various cancers by disrupting cell division.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Drug Discovery

Background:

  • The TOPK enzyme (also known as PBK) is a serine-threonine protein kinase.
  • TOPK is overexpressed in various cancers (lung, colorectal, breast, esophageal) and linked to poor prognosis.
  • TOPK regulates cytokinesis, a critical process in cell division.

Purpose of the Study:

  • To identify potent TOPK inhibitors with anticancer potential.
  • To utilize a structure-based drug design approach for novel inhibitor discovery.
  • To develop targeted therapies that selectively affect cancer cells.

Main Methods:

  • 3D homology modeling was used to refine the TOPK enzyme's native conformation.
  • Virtual screening of small molecule databases using 3D pharmacophore models.
  • Docking, rescoring, and binding free energy calculations were performed on retrieved hits.
  • In vitro inhibitory activity against TOPK was tested for selected compounds.

Main Results:

  • Forty-five compounds were selected for in vitro testing.
  • Four compounds showed potential inhibitory activity against TOPK.
  • The most active compound exhibited an IC50 of 3.85 µM.
  • This lead compound will be used for analog synthesis to improve potency and drug-like properties.

Conclusions:

  • Structure-based drug design successfully identified potential TOPK inhibitors.
  • Targeting TOPK-mediated cytokinesis is a viable strategy for cancer therapy.
  • The lead compound serves as a foundation for developing new anticancer drugs.

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