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Updated: Jun 7, 2025

Colon Ascendens Stent Peritonitis CASP - a Standardized Model for Polymicrobial Abdominal Sepsis
Published on: December 18, 2010
Probiotic bacteria-released extracellular vesicles enhance macrophage phagocytosis in polymicrobial sepsis by
Ruiyao Zhu1,2,3, Yu Zhang2, Xiaohong Wang2
1Department of Critical Care Medicine, Renmin Hospital of Wuhan University, Wuhan, Hubei, China.
Background:
Sepsis-induced organ failure and high mortality are largely ascribed to the failure of bacterial clearance from the infected tissues. Recently, probiotic bacteria-released extracellular vesicles (BEVs) have been implicated as critical mediators of intercellular communication which are widely involved in the regulation of the inflammatory response. However, their functional role in macrophage phagocytosis during sepsis has never been explored.
Methods:
BEVs were collected from three different strains of probiotics including Lactiplantibacillus plantarum WCFS1 (LP WCFS1), Lactobacillus rhamnosus Gorbach-Goldin (LGG), and Escherichia coli Nissle 1917 (EcN), or from LGG cultured under three pH conditions (pH5-acid, pH6.5-standard, pH8-akaline) through differential centrifugation, filtration, and ultracentrifugation of their culture supernatants. In vitro phagocytosis was measured in Raw264.7 cells and bone marrow-derived macrophages using pHrodo red E. coli BioParticles. The in vivo therapeutic effects of BEVs were tested using a feces-injection-in-peritoneum (FIP) model of polymicrobial sepsis.
Results:
LGG-derived EVs (BEVLGG) were the best among these three probiotics BEVs in stimulating macrophages to take up bacteria. Furthermore, BEVLGG collected from pH8 culture condition (BEVpH8) exhibited the strongest capacity of phagocytosis, compared with BEVpH5 and BEVpH6.5. Treatment of septic mice with BEVpH8 significantly prolonged animal survival; increased bacterial clearance from the blood, peritoneal lavage fluid, and multiple organs; and decreased serum levels of pro-inflammatory cytokines/chemokines, as well as reduced multiple organ injuries, in comparison with control-treated septic mice. Mechanistically, RNA-seq and bioinformatic analysis identified that the FPR1/2 signaling was remarkably activated, along with its downstream pathways (PI3K-Akt-MARCO and NADPH-ROS) in BEVpH8-treated macrophages, compared with control cells. Accordingly, pre-addition of Boc2, a specific antagonist of FPR1/FPR2, to macrophages significantly attenuated BEVpH8-mediated phagocytosis, compared to controls.
Conclusions:
This study demonstrates that LGG-derived BEVs may have therapeutic effects against sepsis-induced organ injury and mortality through enhancing FPR1/2-mediated macrophage phagocytosis.
Insights
Probiotic bacteria-released extracellular vesicles (BEVs) enhance macrophage phagocytosis to clear bacteria in sepsis. Lactobacillus rhamnosus Gorbach-Goldin derived BEVs (BEVLGG) show therapeutic potential against sepsis-induced organ injury and mortality.
Area of Science:
- Microbiology and Immunology
- Extracellular Vesicles
- Sepsis Pathophysiology
Background:
- Sepsis mortality is linked to impaired bacterial clearance and organ failure.
- Probiotic bacteria-released extracellular vesicles (BEVs) regulate inflammation but their role in sepsis phagocytosis is unknown.
Purpose of the Study:
- To investigate the functional role of BEVs in macrophage phagocytosis during sepsis.
- To evaluate the therapeutic potential of specific BEVs in a sepsis model.
Main Methods:
- Collected BEVs from Lactobacillus rhamnosus Gorbach-Goldin (LGG) and other probiotics under varying pH conditions.
- Assessed in vitro macrophage phagocytosis using E. coli BioParticles.
- Evaluated in vivo therapeutic effects of BEVs in a polymicrobial sepsis model.
Main Results:
- LGG-derived BEVs (BEVLGG), particularly those from alkaline pH 8 culture (BEVpH8), significantly enhanced macrophage phagocytosis.
- BEVpH8 treatment prolonged survival, increased bacterial clearance, and reduced inflammation and organ injury in septic mice.
- Mechanistically, BEVpH8 activated FPR1/2 signaling, PI3K-Akt-MARCO, and NADPH-ROS pathways in macrophages, crucial for phagocytosis.
Conclusions:
- LGG-derived BEVs enhance macrophage phagocytosis via FPR1/2 signaling.
- BEVLGG, especially BEVpH8, demonstrate therapeutic efficacy against sepsis-induced organ injury and mortality.
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