1. Academic Validation
  2. Computational identification of Moracin G and Isolonchocarpin as potent MELK inhibitors for anticancer drug discovery

Computational identification of Moracin G and Isolonchocarpin as potent MELK inhibitors for anticancer drug discovery

  • Sci Rep. 2025 Dec 6;16(1):397. doi: 10.1038/s41598-025-29868-5.
Prathibha Prasad 1 2 Azna Zuberi 3 Areej Ali Alzahrani 4 Mohd Shahnawaz Khan 5
Affiliations

Affiliations

  • 1 Basic and Medical Sciences, College of Dentistry, Ajman University, Ajman, UAE. [email protected].
  • 2 Centre of Medical and Bio-Allied Health Sciences Research, Ajman University, Ajman, UAE. [email protected].
  • 3 Northwestern University, Chicago, USA.
  • 4 Department of Biochemistry, College of Science, King Saud University, Riyadh, Kingdom of Saudi Arabia.
  • 5 Department of Biochemistry, College of Science, King Saud University, Riyadh, Kingdom of Saudi Arabia. [email protected].
Abstract

Maternal embryonic leucine zipper kinase (MELK) is a promising therapeutic target in Cancer due to its overexpression in aggressive tumors and role in cell survival, proliferation, and therapy resistance. No MELK inhibitors are currently FDA-approved, so identifying potential leads is necessary for therapeutic development. In this study, we employed a computational pipeline to identify natural compounds from the IMPPAT 2.0 database as potential MELK inhibitors. Virtual high-throughput screening of 11,406 phytochemicals against the MELK kinase domain (PDB ID: 5K00) identified 15 top hits with binding affinities ranging from - 10.9 to - 9.9 kcal/mol. Subsequent ADMET evaluation prioritized two compounds, Moracin G and Isolonchocarpin, which demonstrated favorable pharmacokinetic profiles and no PAINS alerts. PASS analysis revealed their strong antineoplastic and kinase-inhibitory potential, with Pa values > 0.5 for key activities. Molecular dynamics simulations for 300 ns confirmed stable binding of these compounds to MELK's ATP-binding site, with RMSD values ≤ 0.28 nm and compact structural dynamics (Rg ~ 1.94 nm). Principal component analysis, free energy landscapes, and MM-PBSA analyses highlighted stable conformations and appreciable binding free energies in MELK-ligand complexes, suggesting enhanced stability. These findings position Moracin G and Isolonchocarpin as promising scaffolds for developing selective MELK inhibitors, offering a pathway to disrupt Cancer cell survival and improve therapeutic outcomes, although experimental validation is still required.

Keywords

Cancer; Isolonchocarpin; MELK inhibitors; Maternal embryonic leucine zipper kinase; Moracin g; Virtual screening.

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