MARVpred: machine learning prediction of inhibitors targeting Marburg virus Gene 4 Small ORF protein

Eugene Lamptey1, Gabriel Anyaele2, Harry Arthur2

  • 1West African Center for Cell Biology of Infectious Pathogens, College of Basic and Applied Sciences, University of Ghana, Accra, Ghana. lampteyeugene8@gmail.com.

BMC Infectious Diseases
|February 5, 2026
PubMed

Insights

Machine learning models identified potential Marburg virus inhibitors by targeting the Gene 4 Small ORF protein. The MARVpred web application accelerates the discovery of therapeutics for this deadly hemorrhagic fever virus.

Area of Science:

  • Computational biology and virology
  • Drug discovery and medicinal chemistry
  • Machine learning applications in health

Background:

  • Marburg virus (MARV) causes severe hemorrhagic fever with high mortality rates, posing a significant public health risk.
  • The MARV Gene 4 Small ORF protein is essential for viral replication and immune evasion, making it a key therapeutic target.

Purpose of the Study:

  • To identify potential inhibitors of the Marburg virus Gene 4 Small ORF protein using machine learning.
  • To develop a predictive model for screening anti-MARV compounds and accelerate therapeutic development.

Main Methods:

  • Utilized a large dataset of 301,745 compounds from PubChem for model training.
  • Employed various machine learning algorithms including Random Forest (RF), Gradient Boosting Machines (GBM), CatBoost, AdaBoost, and Logistic Regression.
  • Generated molecular descriptors using RDKit and PaDEL, with Morgan fingerprints showing superior performance over PubChem fingerprints.

Main Results:

  • Random Forest and Gradient Boosting Machines demonstrated the best performance, with RF achieving 83% specificity and 0.84 ROC-AUC.
  • Morgan fingerprints yielded higher accuracy (76%), precision (80%), and ROC-AUC (84%) compared to PubChem fingerprints.
  • Validated models showed strong predictive reliability for identifying potential Marburg virus inhibitors.

Conclusions:

  • Machine learning effectively predicts compounds with anti-MARV properties.
  • The developed MARVpred web application provides a valuable tool for accelerating the discovery of Marburg virus therapeutics.
  • This computational approach significantly advances the search for effective treatments against Marburg hemorrhagic fever.

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