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Inhibition of Shikimate Kinase from Methicillin-Resistant Staphylococcus aureus by Benzimidazole Derivatives.
Lluvia Rios-Soto1, Alicia Hernández-Campos2, David Tovar-Escobar2
1Facultad de Medicina y Nutrición, Universidad Juárez del Estado de Durango, Av. Universidad y Fanny, Anitúa S/N, Durango 34000, Mexico.
Abstract:
Antimicrobial resistance (AMR) is one of the biggest threats in modern times. It was estimated that in 2019, 1.27 million deaths occurred around the globe due to AMR. Methicillin-resistant Staphylococcus aureus (MRSA) strains, a pathogen considered of high priority by the World Health Organization, have proven to be resistant to most of the actual antimicrobial treatments. Therefore, new treatments are required to be able to manage this increasing threat. Under this perspective, an important metabolic pathway for MRSA survival, and absent in mammals, is the shikimate pathway, which is involved in the biosynthesis of chorismate, an intermediate for the synthesis of aromatic amino acids, folates, and ubiquinone. Therefore, the enzymes of this route have been considered good targets to design novel antibiotics. The fifth step of the route is performed by shikimate kinase (SK). In this study, an in-house chemical library of 170 benzimidazole derivatives was screened against MRSA shikimate kinase (SaSK). This effort led to the identification of the first SaSK inhibitors, and the two inhibitors with the greatest inhibition activity (C1 and C2) were characterized. Kinetic studies showed that both compounds were competitive inhibitors with respect to ATP and non-competitive for shikimate. Structural analysis through molecular docking and molecular dynamics simulations indicated that both inhibitors interacted with ARG113, an important residue involved in ATP binding, and formed stable complexes during the simulation period. Biological activity evaluation showed that both compounds were able to inhibit the growth of a MRSA strain. Mitochondrial assays showed that both compounds modify the activity of electron transport chain complexes. Finally, ADMETox predictions suggested that, in general, C1 and C2 can be considered as potential drug candidates. Therefore, the benzimidazole derivatives reported here are the first SaSK inhibitors, representing a promising scaffold and a guide to design new drugs against MRSA.
Insights
New benzimidazole derivatives show promise as the first inhibitors of MRSA shikimate kinase (SaSK). These compounds target a vital pathway in the bacteria, offering a potential new strategy against drug-resistant infections.
Area of Science:
- Microbiology
- Medicinal Chemistry
- Drug Discovery
Background:
- Antimicrobial resistance (AMR) is a major global health threat, with Methicillin-resistant Staphylococcus aureus (MRSA) being a high-priority pathogen.
- MRSA survival depends on the shikimate pathway, which is absent in mammals, making its enzymes attractive drug targets.
- Shikimate kinase (SK) is a key enzyme in the MRSA shikimate pathway, crucial for bacterial survival.
Purpose of the Study:
- To screen a library of benzimidazole derivatives for inhibition of MRSA shikimate kinase (SaSK).
- To characterize the identified SaSK inhibitors, including their kinetic and structural properties.
- To evaluate the biological activity and potential drug-likeness of the lead compounds against MRSA.
Main Methods:
- Screening of 170 benzimidazole derivatives against SaSK.
- Kinetic analysis to determine inhibition type (competitive/non-competitive) and IC50 values.
- Molecular docking and dynamics simulations to elucidate binding interactions.
- In vitro assays to assess MRSA growth inhibition and mitochondrial effects.
- ADMETox predictions for drug candidate potential.
Main Results:
- Identification of the first benzimidazole-based SaSK inhibitors, C1 and C2.
- C1 and C2 demonstrated competitive inhibition with respect to ATP and non-competitive inhibition with respect to shikimate.
- Structural analysis revealed interactions with ARG113, a key residue in ATP binding.
- Both compounds inhibited MRSA growth and affected mitochondrial electron transport chain complexes.
- ADMETox predictions suggest C1 and C2 as potential drug candidates.
Conclusions:
- Benzimidazole derivatives represent a novel class of SaSK inhibitors.
- These compounds offer a promising scaffold for developing new anti-MRSA drugs.
- Targeting the shikimate pathway via SaSK inhibition is a viable strategy against MRSA infections.
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