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Updated: Jul 15, 2025

Modeling an Enzyme Active Site using Molecular Visualization Freeware
Published on: December 25, 2021
Exploring Proteus mirabilis Methionine tRNA Synthetase Active Site: Homology Model Construction, Molecular Dynamics,
Samar S Elbaramawi1, Ahmed G Eissa1, Nada A Noureldin1
1Department of Medicinal Chemistry, Faculty of Pharmacy, Zagazig University, Zagazig 44519, Egypt.
Abstract:
Currently, the treatment of Proteus mirabilis infections is considered to be complicated as the organism has become resistant to numerous antibiotic classes. Therefore, new inhibitors should be developed, targeting bacterial molecular functions. Methionine tRNA synthetase (MetRS), a member of the aminoacyl-tRNA synthetase family, is essential for protein biosynthesis offering a promising target for novel antibiotics discovery. In the context of computer-aided drug design (CADD), the current research presents the construction and analysis of a comparative homology model for P. mirabilis MetRS, enabling development of novel inhibitors with greater selectivity. Molecular Operating Environment (MOE) software was used to build a homology model for P. mirabilis MetRS using Escherichia coli MetRS as a template. The model was evaluated, and the active site of the target protein predicted from its sequence using conservation analysis. Molecular dynamic simulations were performed to evaluate the stability of the modeled protein structure. In order to evaluate the predicted active site interactions, methionine (the natural substrate of MetRS) and several inhibitors of bacterial MetRS were docked into the constructed model using MOE. After validation of the model, pharmacophore-based virtual screening for a systemically prepared dataset of compounds was performed to prove the feasibility of the proposed model, identifying possible parent compounds for further development of MetRS inhibitors against P. mirabilis.
Insights
Developing new antibiotics against Proteus mirabilis is crucial due to rising resistance. This study created a computer model of methionine tRNA synthetase (MetRS) to find new drug targets.
Area of Science:
- Microbiology
- Structural Biology
- Computational Chemistry
Background:
- Proteus mirabilis infections are difficult to treat due to widespread antibiotic resistance.
- Methionine tRNA synthetase (MetRS) is essential for bacterial protein synthesis and a potential drug target.
Purpose of the Study:
- To construct and analyze a comparative homology model of P. mirabilis MetRS for novel inhibitor development.
- To identify potential drug candidates using computer-aided drug design (CADD).
Main Methods:
- Homology modeling of P. mirabilis MetRS using MOE software and E. coli MetRS as a template.
- Active site prediction, molecular dynamic simulations, and molecular docking of methionine and known inhibitors.
- Pharmacophore-based virtual screening of a compound dataset.
Main Results:
- A validated homology model of P. mirabilis MetRS was successfully constructed.
- The active site was identified, and docking studies provided insights into substrate and inhibitor interactions.
- Virtual screening identified potential lead compounds for P. mirabilis MetRS inhibitors.
Conclusions:
- The developed homology model is a feasible tool for designing selective MetRS inhibitors against P. mirabilis.
- This CADD approach aids in discovering new therapeutic strategies against resistant bacterial infections.
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