Molecular Docking and Dynamic Simulation Studies of Bioactive Compounds from Traditional Medicinal Compounds Against Exfoliative Toxin B from Staphylococcus aureus
- 1,
- 1*
- 1Department of Integrative Biology, School of Bio Science and Technology, Vellore Institute of Technology, Vellore, Tamil Nadu, INDIA.
Published in Journal of Pharmacology and Pharmacotherapeutics
Correspondence: Subhashree Venugopal
Department of Integrative Biology, School of Bio Science and Technology, Vellore Institute of Technology, Vellore, Tamil Nadu, INDIA.
Email: vsubhashree@vit.ac.in
Copyright: © 2024 The Author(s). This is an open access article.
Published: Jan 1, 2024, Received: Feb 1, 2024, Accepted: Jun 14, 2024
Abstract
Background: Staphylococcal scalded skin syndrome (SSSS) is a dermatological condition caused by Staphylococcus aureus, characterized by exfoliative toxin B, and its increasing resistance to conventional antibiotics necessitates the search for new therapeutic options. Aim: The study aimed to investigate the potential of traditional medicinal compounds (TMCs) as potential pharmaceuticals against SSSS using molecular-level research. Introduction: Staphylococcus aureus, commonly known as S. aureus, is the main cause of SSSS. These infections are a major concern for public health because they are becoming resistant to antibiotics. There is an urgent need for new medications to effectively fight against this infection. The main objective of this study was to assess the interaction between TMC compounds and S. aureus exfoliative toxins ETA and ETB utilizing computational approaches. Materials and Methods: The investigation selected TMC compounds based on their potential to combat S. aureus infections. To predict binding affinities with the ETB toxin, molecular docking simulations were performed using AutoDock and AutoDock Vina. In order to evaluate the stability and interaction dynamics with the toxins, the most promising compound was subjected to a 100 ns molecular dynamics simulation. Stability was evaluated through various methods. Results: Liquiritin showed the highest binding affinity, with a docking score of −7.6 kcal/mol. MD simulation confirmed the complex’s stability, and the binding free energy of −17.76 kcal/mol indicated potent inhibitory activity against S. aureus ETB. Conclusion: Liquiritin, a TMC, effectively inhibits S. aureus toxins ETB, with promising potential for treating SSSS and antibiotic-resistant infections, requiring further research.
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