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Directed Protein Packaging within Outer Membrane Vesicles from Escherichia coli: Design, Production and Purification
Published on: November 16, 2016
Streptomyces extracellular vesicles are a broad and permissive antimicrobial packaging and delivery system
Kirsten J Meyer1, Justin R Nodwell1
1Department of Biochemistry, Temerty Faculty of Medicine, University of Toronto, Toronto, Ontario, Canada.
Abstract:
Streptomyces are the primary source of bioactive specialized metabolites used in research and medicine, including many antimicrobials. These are presumed to be secreted and function as freely soluble compounds. However, increasing evidence suggests that extracellular vesicles are an alternative secretion system. We assessed environmental and lab-adapted Streptomyces (sporulating filamentous actinomycetes) and found frequent production of antimicrobial vesicles. The molecular cargo included actinomycins, anthracyclines, candicidin, and actinorhodin, reflecting both diverse chemical properties and diverse antibacterial and antifungal activity. The levels of packaged antimicrobials correlated with the level of inhibitory activity of the vesicles, and a strain knocked out for the production of anthracyclines produced vesicles that lacked antimicrobial activity. We demonstrated that antimicrobial containing vesicles achieve direct delivery of the cargo to other microbes. Notably, this delivery via membrane fusion occurred to a broad range of microbes, including pathogenic bacteria and yeast. Vesicle encapsulation offers a broad and permissive packaging and delivery system for antimicrobial specialized metabolites, with important implications for ecology and translation.IMPORTANCEExtracellular vesicle encapsulation changes our picture of how antimicrobial metabolites function in the environment and provides an alternative translational approach for the delivery of antimicrobials. We find many Streptomyces strains are capable of releasing antimicrobial vesicles, and at least four distinct classes of compounds can be packaged, suggesting this is widespread in nature. This is a striking departure from the primary paradigm of the secretion and action of specialized metabolites as soluble compounds. Importantly, the vesicles deliver antimicrobial metabolites directly to other microbes via membrane fusion, including pathogenic bacteria and yeast. This suggests future applications in which lipid-encapsulated natural product antibiotics and antifungals could be used to solve some of the most pressing problems in drug resistance.
Insights
Streptomyces bacteria secrete antimicrobial compounds within extracellular vesicles, delivering them directly to other microbes. This novel vesicle-mediated delivery system has significant implications for understanding microbial ecology and developing new antimicrobial therapies.
Area of Science:
- Microbiology
- Biochemistry
- Drug Discovery
Background:
- Streptomyces are a major source of medically important antimicrobials.
- These compounds are traditionally considered soluble, freely secreted molecules.
- Emerging evidence points to extracellular vesicles as an alternative secretion pathway.
Purpose of the Study:
- To investigate the production and function of antimicrobial extracellular vesicles by Streptomyces.
- To determine the cargo and delivery mechanism of these vesicles.
- To explore the implications for microbial interactions and therapeutic applications.
Main Methods:
- Analysis of extracellular vesicle production in environmental and lab-adapted Streptomyces strains.
- Characterization of the molecular cargo within the vesicles using biochemical assays.
- Assessment of vesicle antimicrobial activity against various microbes.
- Demonstration of vesicle-mediated cargo delivery to target cells via membrane fusion.
Main Results:
- Streptomyces frequently produce extracellular vesicles containing diverse antimicrobials (e.g., actinomycins, anthracyclines).
- Vesicle antimicrobial activity directly correlates with packaged compound levels.
- Antimicrobial vesicles deliver their cargo directly to other microbes, including pathogenic bacteria and yeast, via membrane fusion.
Conclusions:
- Extracellular vesicle encapsulation represents a widespread and significant mechanism for secreting and delivering antimicrobial metabolites in Streptomyces.
- This pathway offers a novel approach for packaging and targeting diverse antimicrobial compounds.
- Vesicle-mediated delivery has profound implications for microbial ecology and presents a promising avenue for developing new antimicrobial drugs to combat resistance.
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