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Updated: Feb 7, 2026

Size Exclusion Chromatography to Analyze Bacterial Outer Membrane Vesicle Heterogeneity
Published on: March 31, 2021
Helicobacter pylori Outer Membrane Vesicle Size Determines Their Mechanisms of Host Cell Entry and Protein Content
Lorinda Turner1, Natalie J Bitto2,3, David L Steer4
1Centre for Innate Immunity and Infectious Diseases, Hudson Institute of Medical Research, Clayton, Melbourne, VIC, Australia.
Abstract:
Gram-negative pathogens ubiquitously shed outer membrane vesicles (OMVs) that play a central role in initiating and regulating pathogenesis in the host. Due to their highly inflammatory nature, OMVs are extensively being examined for their role in mediating disease in addition to their applications in innovative vaccines. A key mechanism whereby OMVs mediate inflammation and disease progression is dependent on their ability to enter host cells. Currently, the role of OMV size on determining their mechanism of cellular entry and their protein composition remains unknown. In this study, we examined the mechanisms whereby OMV size regulates their mode of entry into epithelial cells, in addition to their protein cargo and composition. We identified that a heterogeneous sized population of Helicobacter pylori OMVs entered epithelial cells via macropinocytosis, clathrin, and caveolin-dependent endocytosis. However, smaller OMVs ranging from 20 to 100 nm in size preferentially entered host cells via caveolin-mediated endocytosis. Whereas larger OMVs ranging between 90 and 450 nm in size entered host epithelial cells via macropinocytosis and endocytosis. Most importantly, we identified the previously unknown contribution that OMV size has on determining their protein content, as fewer and less diverse bacterial proteins were contained within small OMVs compared to larger OMVs. Collectively, these findings identify the importance of OMV size in determining the mechanisms of OMV entry into host cells, in addition to regulating their protein cargo, composition, and subsequent immunogenicity. These findings have significant implications in broadening our understanding of the bacterial regulation of virulence determinants and immunogenic proteins associated with OMVs, their role in mediating pathogenesis and in refining the design and development of OMV-based vaccines.
Insights
Outer membrane vesicle (OMV) size dictates how bacteria enter host cells and influences their protein cargo. Understanding OMV size is crucial for developing effective vaccines and comprehending bacterial pathogenesis.
Area of Science:
- Microbiology
- Cell Biology
- Immunology
Background:
- Gram-negative bacteria release outer membrane vesicles (OMVs) involved in pathogenesis and vaccine development.
- OMVs' role in disease and host cell entry is significant, but the impact of OMV size is largely unknown.
- OMVs are being explored for innovative vaccine applications due to their inflammatory properties.
Purpose of the Study:
- To investigate how outer membrane vesicle (OMV) size influences their entry mechanisms into epithelial cells.
- To determine the effect of OMV size on their protein cargo and composition.
- To elucidate the relationship between OMV size, cellular entry, and protein content.
Main Methods:
- Analysis of Helicobacter pylori OMVs of varying sizes.
- Microscopy and cellular uptake assays to observe OMV entry mechanisms.
- Proteomic analysis to characterize the protein content of different sized OMVs.
Main Results:
- Heterogeneous sized OMVs entered epithelial cells via macropinocytosis, clathrin, and caveolin-dependent endocytosis.
- Smaller OMVs (20-100 nm) preferentially used caveolin-mediated endocytosis.
- Larger OMVs (90-450 nm) utilized macropinocytosis and endocytosis, and contained more diverse protein cargo.
Conclusions:
- OMV size is a critical factor regulating host cell entry mechanisms.
- OMV size influences the quantity and diversity of bacterial proteins within the vesicles.
- Findings impact understanding of bacterial virulence, pathogenesis, and OMV-based vaccine design.
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