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Macromolecular alterations in Staphylococcus spp.: Pyrrolomycin-induced changes in the anomeric configuration of wall
Elena Piacenza1, Enrico Tornatore1, Filippo Vitale2
1Department of Biological, Chemical and Pharmaceutical Sciences and Technologies (STEBICEF), University of Palermo, Palermo, 90128, Italy.
Abstract:
Antimicrobial resistance (AMR) is one of the most alarming global challenges of modern society. Among the pathogens of great concern are staphylococci, Gram-positive bacteria typically inhabiting the nasal microbiome that have developed multidrug-resistant (MDR) traits, complicating treatment strategies. This study examines the antimicrobial efficacy of pyrrolomycins (PMs), unique polyhalogenated antibiotics, against sensitive and MDR Staphylococcus strains. By employing a multidisciplinary approach, we combine physical-chemical methodologies alongside analytical and biological techniques to shed light on the PM mode of action. The findings elucidate the complex mechanisms by which PMs exert their antimicrobial effects, including disruption of cell wall polysaccharides, modulation of the fatty acid profile, induction of membrane depolarization, enhancement of carotenoid staphyloxanthin production, impairment of bacterial oxidative damage responses, and protein structural and functional alterations. Collectively, PMs' striking effects inexorably alter the physiological bacterial fitness, culminating in bacterial cell death. Although staphylococci may develop limited adaptive mechanisms to PMs, these adaptations appear insufficient to confer resistance, reducing the potential for AMR against these biocidal compounds. This comprehensive analysis underscores the promise of PMs as a novel therapeutic avenue against MDR staphylococcal infections, providing crucial insights for advancing drug development in the ongoing battle against AMR.
Insights
Pyrrolomycins (PMs) show potent antimicrobial activity against multidrug-resistant (MDR) Staphylococcus strains. These compounds disrupt bacterial physiology, offering a promising new strategy to combat antimicrobial resistance (AMR).
Area of Science:
- Microbiology
- Pharmacology
- Biochemistry
Background:
- Antimicrobial resistance (AMR) poses a significant global health threat.
- Multidrug-resistant (MDR) staphylococci are particularly concerning pathogens.
- Effective treatment strategies against MDR bacteria are urgently needed.
Purpose of the Study:
- To investigate the antimicrobial efficacy of pyrrolomycins (PMs) against sensitive and MDR Staphylococcus strains.
- To elucidate the complex mode of action of PMs at a molecular and physiological level.
- To assess the potential of PMs as a novel therapeutic agent against staphylococcal infections.
Main Methods:
- Multidisciplinary approach combining physical-chemical, analytical, and biological techniques.
- Evaluation of PMs against both sensitive and MDR Staphylococcus strains.
- Detailed analysis of PMs' effects on bacterial cell structures and functions.
Main Results:
- PMs disrupt cell wall polysaccharides and modulate fatty acid profiles.
- PMs induce membrane depolarization and alter protein structure/function.
- PMs enhance staphyloxanthin production and impair oxidative damage responses, leading to bacterial cell death.
- Limited bacterial adaptation to PMs was observed, insufficient to confer significant resistance.
Conclusions:
- Pyrrolomycins exhibit broad-spectrum antimicrobial activity against Staphylococcus, including MDR strains.
- PMs act through multiple mechanisms that severely compromise bacterial fitness.
- PMs represent a promising therapeutic candidate for combating MDR staphylococcal infections and addressing AMR.
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