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Directed Protein Packaging within Outer Membrane Vesicles from Escherichia coli: Design, Production and Purification
Published on: November 16, 2016
Ambient pH Alters the Protein Content of Outer Membrane Vesicles, Driving Host Development in a Beneficial Symbiosis
Jonathan B Lynch1, Julia A Schwartzman2, Brittany D Bennett1
1Pacific Biosciences Research Center, University of Hawaii at Manoa, Honolulu, Hawaii, USA.
Abstract:
Outer membrane vesicles (OMVs) are continuously produced by Gram-negative bacteria and are increasingly recognized as ubiquitous mediators of bacterial physiology. In particular, OMVs are powerful effectors in interorganismal interactions, driven largely by their molecular contents. These impacts have been studied extensively in bacterial pathogenesis but have not been well documented within the context of mutualism. Here, we examined the proteomic composition of OMVs from the marine bacterium Vibrio fischeri, which forms a specific mutualism with the Hawaiian bobtail squid, Euprymna scolopes We found that V. fischeri upregulates transcription of its major outer membrane protein, OmpU, during growth at an acidic pH, which V. fischeri experiences when it transitions from its environmental reservoir to host tissues. We used comparative genomics and DNA pulldown analyses to search for regulators of ompU and found that differential expression of ompU is governed by the OmpR, H-NS, and ToxR proteins. This transcriptional control combines with nutritional conditions to govern OmpU levels in OMVs. Under a host-encountered acidic pH, V. fischeri OMVs become more potent stimulators of symbiotic host development in an OmpU-dependent manner. Finally, we found that symbiotic development could be stimulated by OMVs containing a homolog of OmpU from the pathogenic species Vibrio cholerae, connecting the role of a well-described virulence factor with a mutualistic element. This work explores the symbiotic effects of OMV variation, identifies regulatory machinery shared between pathogenic and mutualistic bacteria, and provides evidence of the role that OMVs play in animal-bacterium mutualism.IMPORTANCE Beneficial bacteria communicate with their hosts through a variety of means. These communications are often carried out by a combination of molecules that stimulate responses from the host and are necessary for development of the relationship between these organisms. Naturally produced bacterial outer membrane vesicles (OMVs) contain many of those molecules and can stimulate a wide range of responses from recipient organisms. Here, we describe how a marine bacterium, Vibrio fischeri, changes the makeup of its OMVs under conditions that it experiences as it goes from its free-living lifestyle to associating with its natural host, the Hawaiian bobtail squid. This work improves our understanding of how bacteria change their signaling profile as they begin to associate with their beneficial partner animals.
Insights
Marine bacteria Vibrio fischeri change their outer membrane vesicles (OMVs) composition, specifically increasing OmpU protein, to enhance symbiotic development with the Hawaiian bobtail squid under acidic conditions.
Area of Science:
- Microbiology and Symbiotic Interactions
- Bacterial Physiology and Outer Membrane Vesicles (OMVs)
Background:
- Outer membrane vesicles (OMVs) are crucial mediators of bacterial interactions, particularly in pathogenesis.
- Their role in mutualistic relationships, especially concerning molecular content variation, is less understood.
- Vibrio fischeri forms a specific symbiosis with the Hawaiian bobtail squid, Euprymna scolopes.
Purpose of the Study:
- To investigate the proteomic composition of OMVs from Vibrio fischeri.
- To understand how V. fischeri OMVs modulate symbiotic host development.
- To identify regulatory mechanisms controlling OMV composition in response to environmental cues.
Main Methods:
- Proteomic analysis of OMVs from Vibrio fischeri.
- Comparative genomics and DNA pulldown assays to identify ompU gene regulators.
- Assays to measure OMV-stimulated host development under varying pH conditions.
Main Results:
- Vibrio fischeri upregulates the major outer membrane protein, OmpU, in OMVs under acidic pH, mimicking host-associated conditions.
- OmpR, H-NS, and ToxR proteins regulate ompU differential expression, influenced by nutritional conditions.
- Acidic pH-induced OMVs with higher OmpU levels enhance symbiotic host development in an OmpU-dependent manner.
Conclusions:
- Bacterial OMVs play a significant role in animal-bacterium mutualism by modulating host development.
- Vibrio fischeri dynamically alters OMV composition, particularly OmpU levels, to facilitate symbiosis.
- Shared regulatory machinery exists between pathogenic and mutualistic bacteria, highlighting conserved mechanisms in OMV production.
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