LPS Remodeling Triggers Formation of Outer Membrane Vesicles in Salmonella
Wael Elhenawy1, Michael Bording-Jorgensen2, Ezequiel Valguarnera3
1Department of Biological Sciences, University of Alberta, Edmonton, Alberta, Canada.
Unlabelled:
Outer membrane vesicles (OMV) are proposed to mediate multiple functions during pathogenesis and symbiosis. However, the mechanisms responsible for OMV formation remain poorly understood. It has been shown in eukaryotic membranes that lipids with an inverted-cone shape favor the formation of positive membrane curvatures. Based on these studies, we formulated the hypothesis that lipid A deacylation might impose shape modifications that result in the curvature of the outer membrane (OM) and subsequent OMV formation. We tested the effect of lipid A remodeling on OMV biogenesis employing Salmonella enterica serovar Typhimurium as a model organism. Expression of the lipid A deacylase PagL resulted in increased vesiculation, without inducing an envelope stress response. Mass spectrometry analysis revealed profound differences in the patterns of lipid A in OM and OMV, with accumulation of deacylated lipid A forms exclusively in OMV. OMV biogenesis by intracellular bacteria upon macrophage infection was drastically reduced in a pagL mutant strain. We propose a novel mechanism for OMV biogenesis requiring lipid A deacylation in the context of a multifactorial process that involves the orchestrated remodeling of the outer membrane.
Importance:
The role of lipid remodeling in vesiculation is well documented in eukaryotes. Similarly, bacteria produce membrane-derived vesicles; however, the molecular mechanisms underlying their production are yet to be determined. In this work, we investigated the role of outer membrane remodeling in OMV biogenesis in S Typhimurium. We showed that the expression of the lipid A deacylase PagL results in overvesiculation with deacylated lipid A accumulation exclusively in OMV. An S Typhimurium ΔpagL strain showed a significant reduction in intracellular OMV secretion relative to the wild-type strain. Our results suggest a novel mechanism for OMV biogenesis that involves outer membrane remodeling through lipid A modification. Understanding how OMV are produced by bacteria is important to advance our understanding of the host-pathogen interactions.
Insights
Lipid A deacylation drives outer membrane vesicle (OMV) formation in bacteria. Modifying lipid A with PagL increases OMV production, crucial for bacterial pathogenesis and symbiosis.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- Outer membrane vesicles (OMVs) play key roles in bacterial pathogenesis and symbiosis.
- Mechanisms of bacterial outer membrane vesicle (OMV) biogenesis are not fully understood.
- Lipid structure influences membrane curvature and vesicle formation in eukaryotes.
Purpose of the Study:
- To investigate the role of lipid A remodeling in outer membrane vesicle (OMV) biogenesis.
- To test the hypothesis that lipid A deacylation induces outer membrane curvature and OMV formation.
Main Methods:
- Utilized Salmonella Typhimurium as a model organism.
- Expressed the lipid A deacylase PagL to study its effect on OMV production.
- Employed mass spectrometry to analyze lipid A composition in OM and OMV.
- Assessed OMV biogenesis in a pagL mutant strain during intracellular bacterial infection.
Main Results:
- PagL expression led to increased OMV formation without envelope stress.
- Deacylated lipid A forms accumulated exclusively in OMVs.
- A pagL mutant showed significantly reduced intracellular OMV secretion.
Conclusions:
- Lipid A deacylation is a novel mechanism driving outer membrane vesicle (OMV) biogenesis.
- Orchestrated outer membrane remodeling, including lipid A modification, is essential for OMV formation.
- Understanding OMV production is vital for deciphering host-pathogen interactions.
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