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Scalable Isolation and Purification of Extracellular Vesicles from Escherichia coli and Other Bacteria
Published on: October 13, 2021
In Vitro and In Vivo Antibacterial Efficacy of a Ciprofloxacin Delivery System Based on Streptococcus suis
Wenjie Jin1,2,3, Zhiheng Chang2,3, Yahao Yu2,3
1College of Life Science, Luoyang Normal University, Luoyang 471934, China.
Abstract:
Conventional antibiotics exhibit limited ability to penetrate host cell membranes, making intracellular bacterial infections difficult to eradicate completely. As naturally derived nanoscale membrane structures, bacterial extracellular vesicles (EVs) possess excellent biocompatibility and intrinsic transmembrane transport capability, thereby demonstrating unique advantages for in vivo drug delivery. The present study investigated the feasibility of using EVs derived from the avirulent Streptococcus suis T15 as novel carriers for ciprofloxacin delivery. We also comprehensively evaluated the biosafety and anti-infective efficacy of this nanodrug delivery system in vitro and in vivo. Cytotoxicity assays, live/dead cell staining, and hemolysis analyses demonstrated that T15-derived EVs at concentrations below 50 μg/mL did not cause significant cellular damage or hemolysis. Serum biochemical analyses in mice further confirmed the absence of obvious organ toxicity, indicating favorable biosafety within the tested concentration range. Ciprofloxacin was successfully loaded into EVs using a combination of ultrasonication and electroporation, achieving a drug concentration of 438.6 μg/mL and a loading efficiency of 10.96%. The ciprofloxacin-loaded EVs (EV-CIP) exhibited significantly greater antibacterial activity than free ciprofloxacin against both intracellular bacteria and fluoroquinolone-resistant strains exhibiting efflux pump activity. Evaluation in animal infection models showed that EV-CIP markedly reduced mortality in infected Galleria mellonella larvae. It also decreased bacterial burdens in multiple mouse organs and significantly alleviated histopathological damage. These results collectively suggest that EVs derived from the avirulent S. suis T15 were safe and effective within the tested concentration range and experimental conditions. The EV-based ciprofloxacin delivery system substantially enhanced the clearance of intracellular pathogens and fluoroquinolone efflux pump-positive bacteria, suggesting its potential application in the treatment of difficult-to-treat bacterial infections. This study provides a theoretical and experimental basis for the further development of novel EV-based anti-infective drug delivery strategies for livestock and poultry.
Insights
This study shows that bacterial extracellular vesicles (EVs) loaded with ciprofloxacin are safe and effective for treating intracellular bacterial infections. This novel nanodrug delivery system enhances antibiotic efficacy against resistant strains.
Area of Science:
- Biotechnology
- Nanomedicine
- Microbiology
Background:
- Conventional antibiotics struggle to penetrate host cells, hindering treatment of intracellular bacterial infections.
- Bacterial extracellular vesicles (EVs) offer biocompatibility and transmembrane transport for drug delivery.
- Avirulent *Streptococcus suis* T15-derived EVs were explored as carriers for ciprofloxacin.
Purpose of the Study:
- To investigate the feasibility of using *Streptococcus suis* T15-derived EVs for ciprofloxacin delivery.
- To evaluate the biosafety and anti-infective efficacy of this nanodrug delivery system.
- To assess the potential for treating difficult-to-treat bacterial infections.
Main Methods:
- EVs were characterized for drug loading using ultrasonication and electroporation.
- In vitro assays included cytotoxicity, live/dead cell staining, and hemolysis.
- In vivo studies involved serum biochemical analyses in mice and infection models (*Galleria mellonella*, mice).
Main Results:
- T15-derived EVs showed no significant toxicity below 50 μg/mL.
- Ciprofloxacin-loaded EVs (EV-CIP) achieved 438.6 μg/mL drug concentration and 10.96% loading efficiency.
- EV-CIP demonstrated enhanced antibacterial activity against intracellular and resistant bacteria, reduced mortality in larvae, and decreased bacterial burdens in mice.
Conclusions:
- *S. suis* T15-derived EVs are safe and effective carriers for ciprofloxacin delivery within tested limits.
- The EV-based ciprofloxacin system enhances clearance of intracellular and efflux pump-positive bacteria.
- This approach shows potential for treating challenging bacterial infections in livestock and poultry.
