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Size Exclusion Chromatography to Analyze Bacterial Outer Membrane Vesicle Heterogeneity
Published on: March 31, 2021
Mesenchymal stromal cell-derived nanovesicles ameliorate bacterial outer membrane vesicle-induced sepsis via IL-10
Kyong-Su Park1, Kristina Svennerholm2, Ganesh V Shelke3
1Krefting Research Centre, Institute of Medicine, University of Gothenburg, 40530, Gothenburg, Sweden. kyong-su.park@gu.se.
Background:
Sepsis remains a source of high mortality in hospitalized patients despite proper antibiotic approaches. Encouragingly, mesenchymal stromal cells (MSCs) and their produced extracellular vesicles (EVs) have been shown to elicit anti-inflammatory effects in multiple inflammatory conditions including sepsis. However, EVs are generally released from mammalian cells in relatively low amounts, and high-yield isolation of EVs is still challenging due to a complicated procedure. To get over these limitations, vesicles very similar to EVs can be produced by serial extrusions of cells, after which they are called nanovesicles (NVs). We hypothesized that MSC-derived NVs can attenuate the cytokine storm induced by bacterial outer membrane vesicles (OMVs) in mice, and we aimed to elucidate the mechanism involved.
Methods:
NVs were produced from MSCs by the breakdown of cells through serial extrusions and were subsequently floated in a density gradient. Morphology and the number of NVs were analyzed by transmission electron microscopy and nanoparticle tracking analysis. Mice were intraperitoneally injected with Escherichia coli-derived OMVs to establish sepsis, and then injected with 2 × 109 NVs. Innate inflammation was assessed in peritoneal fluid and blood through investigation of infiltration of cells and cytokine production. The biodistribution of NVs labeled with Cy7 dye was analyzed using near-infrared imaging.
Results:
Electron microscopy showed that NVs have a nanometer-size spherical shape and harbor classical EV marker proteins. In mice, NVs inhibited eye exudates and hypothermia, signs of a systemic cytokine storm, induced by intraperitoneal injection of OMVs. Moreover, NVs significantly suppressed cytokine release into the systemic circulation, as well as neutrophil and monocyte infiltration in the peritoneum. The protective effect of NVs was significantly reduced by prior treatment with anti-interleukin (IL)-10 monoclonal antibody. In biodistribution study, NVs spread to the whole mouse body and localized in the lung, liver, and kidney at 6 h.
Conclusions:
Taken together, these data indicate that MSC-derived NVs have beneficial effects in a mouse model of sepsis by upregulating the IL-10 production, suggesting that artificial NVs may be novel EV-mimetics clinically applicable to septic patients.
Insights
Mesenchymal stromal cell-derived nanovesicles (NVs) show therapeutic potential for sepsis by reducing inflammation and cytokine storms. These nanovesicles may offer a novel, clinically applicable alternative to extracellular vesicles for treating septic patients.
Area of Science:
- Biomedical Engineering
- Immunology
- Cell Biology
Background:
- Sepsis causes high mortality despite antibiotic treatments.
- Mesenchymal stromal cells (MSCs) and their extracellular vesicles (EVs) possess anti-inflammatory properties beneficial for sepsis.
- Current challenges include low yields and complex isolation procedures for EVs, prompting research into alternatives like nanovesicles (NVs).
Purpose of the Study:
- To investigate the potential of MSC-derived NVs in mitigating the cytokine storm associated with sepsis.
- To elucidate the underlying mechanisms by which NVs exert their anti-inflammatory effects in a sepsis model.
Main Methods:
- NVs were generated from MSCs via serial extrusion and purified using density gradients.
- Sepsis was induced in mice using bacterial outer membrane vesicles (OMVs), followed by NV administration.
- Inflammation markers, cytokine levels, immune cell infiltration, and NV biodistribution were analyzed.
Main Results:
- NVs exhibited a spherical, nanometer-size structure consistent with EVs and contained EV marker proteins.
- NV treatment in mice suppressed OMV-induced hypothermia, eye exudates, and systemic cytokine release.
- NVs reduced neutrophil and monocyte infiltration in the peritoneum, with efficacy linked to IL-10 upregulation.
Conclusions:
- MSC-derived NVs demonstrate significant anti-inflammatory and protective effects in a mouse model of sepsis.
- The therapeutic benefits appear mediated by increased IL-10 production.
- NVs represent promising EV-mimetics for potential clinical application in sepsis treatment.
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