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Establishment of a High-throughput Setup for Screening Small Molecules That Modulate c-di-GMP Signaling in Pseudomonas aeruginosa
Published on: June 30, 2016
Molecular Insights into Binding Mode and Interactions of Structure-Based Virtually Screened Inhibitors for
Raed A H Almihyawi1,2, Halah M H Al-Hasani3, Tabarak Sabah Jassim4
1College of Life Sciences, Jilin Agricultural University, Changchun 130118, China.
Abstract:
Multi-drug resistance (MDR) bacterial pathogens pose a threat to global health and warrant the discovery of new therapeutic molecules, particularly those that can neutralize their virulence and stop the evolution of new resistant mechanisms. The superbug nosocomial pathogen, Pseudomonas aeruginosa, uses a multiple virulence factor regulator (MvfR) to regulate the expression of multiple virulence proteins during acute and persistent infections. The present study targeted MvfR with the intention of designing novel anti-virulent compounds, which will function in two ways: first, they will block the virulence and pathogenesis P. aeruginosa by disrupting the quorum-sensing network of the bacteria, and second, they will stop the evolution of new resistant mechanisms. A structure-based virtual screening (SBVS) method was used to screen druglike compounds from the Asinex antibacterial library (~5968 molecules) and the comprehensive marine natural products database (CMNPD) (~32 thousand compounds), against the ligand-binding domain (LBD) of MvfR, to identify molecules that show high binding potential for the relevant pocket. In this way, two compounds were identified: Top-1 (4-((carbamoyloxy)methyl)-10,10-dihydroxy-2,6-diiminiodecahydropyrrolo[1,2-c]purin-9-yl sulfate) and Top-2 (10,10-dihydroxy-2,6-diiminio-4-(((sulfonatocarbamoyl)oxy)methyl)decahydropyrrolo[1,2-c]purin-9-yl sulfate), in contrast to the co-crystallized M64 control. Both of the screened leads were found to show deep pocket binding and interactions with several key residues through a network of hydrophobic and hydrophilic interactions. The docking results were validated by a long run of 200 ns of molecular dynamics simulation and MM-PB/GBSA binding free energies. All of these analyses confirmed the presence of strong complex formation and rigorous intermolecular interactions. An additional analysis of normal mode entropy and a WaterSwap assay were also performed to complement the aforementioned studies. Lastly, the compounds were found to show an acceptable range of pharmacokinetic properties, making both compounds potential candidates for further experimental studies to decipher their real biological potency.
Insights
Novel anti-virulent compounds targeting the MvfR regulator in Pseudomonas aeruginosa were identified. These compounds disrupt bacterial virulence and quorum sensing, offering a strategy against multi-drug resistance and preventing new resistance evolution.
Area of Science:
- Medicinal Chemistry
- Computational Drug Discovery
- Microbiology
Background:
- Multi-drug resistance (MDR) bacterial pathogens represent a significant global health threat.
- Pseudomonas aeruginosa, a nosocomial pathogen, utilizes the multiple virulence factor regulator (MvfR) to control virulence factor expression.
- Targeting MvfR offers a strategy to neutralize virulence and prevent the evolution of resistance.
Purpose of the Study:
- To design novel anti-virulent compounds targeting the MvfR regulator of Pseudomonas aeruginosa.
- To identify molecules that disrupt the bacterial quorum-sensing network, thereby blocking virulence and pathogenesis.
- To develop compounds that inhibit the evolution of new resistance mechanisms.
Main Methods:
- Structure-based virtual screening (SBVS) was employed to screen the Asinex antibacterial library and the comprehensive marine natural products database (CMNPD).
- Compounds were screened against the ligand-binding domain (LBD) of MvfR to identify high-binding potential molecules.
- Docking, molecular dynamics simulations, MM-PB/GBSA binding free energy calculations, normal mode entropy analysis, and WaterSwap assays were used for validation.
Main Results:
- Two lead compounds, Top-1 and Top-2, were identified with high binding potential to the MvfR LBD.
- These compounds exhibited deep pocket binding and interacted with key residues through hydrophobic and hydrophilic interactions.
- Computational analyses confirmed strong complex formation and validated the binding interactions.
Conclusions:
- Top-1 and Top-2 demonstrate potential as novel anti-virulent agents against Pseudomonas aeruginosa.
- The identified compounds effectively target MvfR, disrupting virulence and quorum sensing.
- These compounds possess acceptable pharmacokinetic properties, warranting further experimental investigation for their biological potency.
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