β-lactam-induced OMV release promotes polymyxin tolerance in Salmonella enterica sv. Typhi
Pedro Marchant1, Erika Vivanco1, Andrés Silva1
1Laboratorio de Genética y Patogénesis Bacteriana, Departamento de Ciencias Biológicas, Facultad de Ciencias de la Vida, Universidad Andres Bello, Santiago, Chile.
Abstract:
The rise of multidrug-resistant bacteria is a global concern, leading to a renewed reliance on older antibiotics like polymyxins as a last resort. Polymyxins, cationic cyclic peptides synthesized nonribosomally, feature a hydrophobic acyl tail and positively charged residues. Their antimicrobial mechanism involves initial interaction with Gram-negative bacterial outer-membrane components through polar and hydrophobic interactions. Outer membrane vesicles (OMVs), nano-sized proteoliposomes secreted from the outer membrane of Gram-negative bacteria, play a crucial role in tolerating harmful molecules, including cationic peptides such as polymyxins. Existing literature has documented environmental changes' impact on modulating OMV properties in Salmonella Typhimurium. However, less information exists regarding OMV production and characteristics in Salmonella Typhi. A previous study in our laboratory showed that S. Typhi ΔmrcB, a mutant associated with penicillin-binding protein (PBP, a β-lactam antibiotic target), exhibited hypervesiculation. Consequently, this study investigated the potential impact of β-lactam antibiotics on promoting polymyxin tolerance via OMVs in S. Typhi. Our results demonstrated that sub-lethal doses of β-lactams increased bacterial survival against polymyxin B in S. Typhi. This phenomenon stems from β-lactam antibiotics inducing hypervesiculation of OMVs with higher affinity for polymyxin B, capturing and diminishing its biologically effective concentration. These findings suggest that β-lactam antibiotic use may inadvertently contribute to decreased polymyxin effectivity against S. Typhi or other Gram-negative bacteria, complicating the effective treatment of infections caused by these pathogens. This study emphasizes the importance of evaluating the influence of β-lactam antibiotics on the interaction between OMVs and other antimicrobial agents.
Insights
Beta-lactam antibiotics can increase bacterial survival against polymyxin B by inducing outer membrane vesicles (OMVs) in Salmonella Typhi. These OMVs capture polymyxin B, reducing its effectiveness and complicating infection treatment.
Area of Science:
- Microbiology
- Antimicrobial Resistance
- Bacterial Pathogenesis
Background:
- Multidrug-resistant bacteria necessitate the use of older antibiotics like polymyxins.
- Polymyxins are cationic peptides that target Gram-negative bacteria via membrane interactions.
- Outer membrane vesicles (OMVs) are implicated in bacterial defense against antimicrobial agents.
Purpose of the Study:
- To investigate if beta-lactam antibiotics promote polymyxin tolerance in Salmonella Typhi through OMV modulation.
- To understand the mechanism by which OMVs might confer resistance to polymyxins.
Main Methods:
- Treatment of Salmonella Typhi with sub-lethal doses of beta-lactam antibiotics.
- Analysis of OMV production and characteristics in response to beta-lactams.
- Assessment of bacterial survival against polymyxin B in the presence of beta-lactam-induced OMVs.
Main Results:
- Sub-lethal beta-lactam doses significantly increased Salmonella Typhi survival against polymyxin B.
- Beta-lactams induced hypervesiculation of OMVs in S. Typhi.
- Induced OMVs exhibited higher affinity for polymyxin B, sequestering the antibiotic.
Conclusions:
- Beta-lactam antibiotics can inadvertently enhance bacterial tolerance to polymyxins by increasing OMV production.
- This OMV-mediated mechanism may reduce the effective concentration of polymyxins, complicating treatment of Gram-negative infections.
- Further research is needed to evaluate the interplay between beta-lactams, OMVs, and other antimicrobials.


