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Biology subjects

Streather, B. R.

Publications and source records attributed to Streather, B. R..

3 recordsLinked to original sources

Peptide-Induced Formation of Extracellular Vesicles that are DistinctFrom Endogenous E. coli OMVs, and Provide an Enhanced Platformfor Protein Production and Purification.

Bacterial outer membrane vesicles (OMVs), are nano-sized, spherical structures released by Gram-negative bacteria that play diverse roles in bacterial physiology, including communication, nutrient acquisition, and host interactions. These vesicles bud from the bacterial outer membrane and contain lipopolysaccharides, periplasmic proteins, nucleotides, and other biomolecules. The Vesicle Nucleating peptide (VNp) is a short peptide tag that, when fused to the amino terminus of a protein of interest, promotes the formation of bespoke recombinant extracellular vesicles in Escherichia coli, enabling efficient production and simplified purification of recombinant proteins. Here, we characterise VNp-induced vesicles and compare their composition and organisation with naturally produced E. coli OMVs. While both vesicle types possess a single outer membrane-derived lipid bilayer, recombinant protein is highly enriched within the VNp vesicles compared to endogenous OMVs. VNp-fusions and periplasm-targeted recombinant proteins localize to distinct vesicle populations, with VNp-fusions showing markedly higher intra-vesicular concentrations and vesicular purity, compared to the OMV targeted protein. OmpX co-expression further enriched the VNp-fusion content of vesicles, further enhancing yield. The VNp-vesicle lumen is an oxidizing environment, thus supports formation of inter- and intra-molecular disulfide bonds within encapsulated proteins. Overall, VNp-induced vesicles represent a distinct class of recombinant extracellular vesicles that offer a simple and efficient route for producing and purifying concentrated, correctly folded recombinant proteins, expanding the utility of bacterial vesicle systems for biotechnological applications. Significance StatementBacterial extracellular vesicles are recognized as versatile tools for biotechnology yet engineering bacterial vesicle production in a controlled and efficient manner remains challenging. Here we describe how a short Vesicle Nucleating Peptide (VNp) tag, fused to a protein of interest, that can be used to program Escherichia coli to produce recombinant extracellular vesicles that are compositionally and structurally distinct from natural bacterial outer membrane vesicles (OMVs). VNp-induced vesicles are more homogeneous, and more highly enriched in target fusion proteins, providing a simple and efficient route for protein production and purification. The oxidizing lumen of these vesicles supports disulfide bond formation, and rapid compartmentalisation enables expression of otherwise challenging or toxic proteins. This work characterises a distinct class of recombinant bacterial vesicles and establishes a practical platform for producing correctly folded, concentrated, partially purified proteins in a self-packaged form, expanding the potential applications of bacterial extracellular vesicles in biotechnology and synthetic biology.

bioengineering↗

Exceptional yield vesicle packaged recombinant protein production from E. coli.

We describe a novel system that exports diverse recombinant proteins in extracellular vesicles from E. coli. The vesicles not only compartmentalise toxic, insoluble and disulphide bond containing proteins in a soluble and functional form (e.g. DNaseI, nanobodies and IgG-fusions), but the continued release of the inducible vesicle packaged proteins into the media supports continuous isolation of protein from active culture within a micro-environment allowing stable long-term storage. This technology results in unprecedented yields of vesicle packaged functional proteins for efficient downstream processing for a wide range of applications from discovery science to applied biotechnology and medicine.

molecular biology↗

Topological analysis of a bacterial DedA protein associated with alkaline tolerance and antimicrobial resistance.

Maintaining membrane integrity is of paramount importance to the survival of bacteria as the membrane is the site of multiple crucial cellular processes including energy generation, nutrient uptake, and antimicrobial efflux. The DedA family of integral membrane proteins are widespread in bacteria and are associated with maintaining the integrity of the membrane. In addition, DedA proteins have been linked to resistance to multiple classes of antimicrobials in various microorganisms. Therefore, the DedA family are attractive targets for the development of new antibiotics. Despite DedA family members playing a key physiological role in many bacteria, their structure, function and physiological role remain unclear. To help illuminate the structure of the bacterial DedA proteins, we have performed substituted cysteine accessibility method (SCAM) analysis on the most comprehensively characterized bacterial DedA protein, YqjA from Escherichia coli. By probing the accessibility of 15 cysteine residues across the length of YqjA using thiol reactive reagents, we have mapped the topology of the protein. Using these data, we have experimentally validated a structural model of YqjA generated using evolutionary co-variance, which consists of an -helical bundle with two re-entrant hairpin loops reminiscent of several secondary active transporters. In addition, our cysteine accessibility data suggests that YqjA forms an oligomer wherein the protomers are arranged in a parallel fashion. This experimentally verified model of YqjA lays the foundation for future work in understanding the function and mechanism of this interesting and important family.

biochemistry↗