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Published on: December 18, 2010
Fructose-coated Ångstrom silver prevents sepsis by killing bacteria and attenuating bacterial toxin-induced injuries
Hao Yin1,2,3, Mao Zhou4, Xia Chen4
1Department of Orthopedics, Movement System Injury and Repair Research Center, Xiangya Hospital, Central South University, Changsha, Hunan 410008, China.
Abstract:
Serious infection caused by multi-drug-resistant bacteria is a major threat to human health. Bacteria can invade the host tissue and produce various toxins to damage or kill host cells, which may induce life-threatening sepsis. Here, we aimed to explore whether fructose-coated Ångstrom-scale silver particles (F-AgÅPs), which were prepared by our self-developed evaporation-condensation system and optimized coating approach, could kill bacteria and sequester bacterial toxins to attenuate fatal bacterial infections. Methods: A series of in vitro assays were conducted to test the anti-bacterial efficacy of F-AgÅPs, and to investigate whether F-AgÅPs could protect against multi-drug resistant Staphylococcus aureus (S. aureus)- and Escherichia coli (E. coli)-induced cell death, and suppress their toxins (S. aureus hemolysin and E. coli lipopolysaccharide)-induced cell injury or inflammation. The mouse models of cecal ligation and puncture (CLP)- or E. coli bloodstream infection-induced lethal sepsis were established to assess whether the intravenous administration of F-AgÅPs could decrease bacterial burden, inhibit inflammation, and improve the survival rates of mice. The levels of silver in urine and feces of mice were examined to evaluate the excretion of F-AgÅPs. Results: F-AgÅPs efficiently killed various bacteria that can cause lethal infections and also competed with host cells to bind with S. aureus α-hemolysin, thus blocking its cytotoxic activity. F-AgÅPs inhibited E. coli lipopolysaccharide-induced endothelial injury and macrophage inflammation, but not by directly binding to lipopolysaccharide. F-AgÅPs potently reduced bacterial burden, reversed dysregulated inflammation, and enhanced survival in mice with CLP- or E. coli bloodstream infection-induced sepsis, either alone or combined with antibiotic therapy. After three times injections within 48 h, 79.18% of F-AgÅPs were excreted via feces at the end of the 14-day observation period. Conclusion: This study suggests the prospect of F-AgÅPs as a promising intravenous agent for treating severe bacterial infections.
Insights
Fructose-coated silver nanoparticles effectively kill bacteria and neutralize toxins, offering a potential new treatment for severe infections. These nanoparticles reduce bacterial load and inflammation in sepsis models, with most being excreted within 14 days.
Area of Science:
- Nanotechnology
- Infectious Diseases
- Toxicology
Background:
- Multi-drug resistant bacterial infections pose a significant global health threat.
- Bacterial toxins can cause severe cell damage and sepsis, leading to high mortality rates.
- Novel therapeutic strategies are urgently needed to combat resistant bacteria and their toxic effects.
Purpose of the Study:
- To investigate the antibacterial and anti-toxin properties of fructose-coated Ångstrom-scale silver particles (F-AgÅPs).
- To evaluate the efficacy of F-AgÅPs in preclinical models of severe bacterial infections and sepsis.
- To assess the safety and excretion profile of F-AgÅPs in vivo.
Main Methods:
- In vitro assays to determine F-AgÅPs' antibacterial activity and toxin neutralization capabilities against Staphylococcus aureus and Escherichia coli.
- In vivo studies using mouse models of sepsis (cecal ligation and puncture and E. coli bloodstream infection) to assess F-AgÅPs' impact on bacterial burden, inflammation, and survival.
- Analysis of silver levels in mouse urine and feces to evaluate F-AgÅPs' excretion.
Main Results:
- F-AgÅPs demonstrated potent bactericidal activity against various pathogens and effectively blocked the cytotoxic effects of S. aureus alpha-hemolysin.
- F-AgÅPs inhibited E. coli lipopolysaccharide-induced inflammation and endothelial injury.
- In vivo, F-AgÅPs significantly reduced bacterial load, modulated inflammation, and improved survival rates in sepsis models, with good tolerability when combined with antibiotics.
- Over 79% of administered F-AgÅPs were excreted via feces within 14 days.
Conclusions:
- F-AgÅPs exhibit significant potential as an intravenous therapeutic agent for severe bacterial infections.
- The dual action of killing bacteria and neutralizing toxins makes F-AgÅPs a promising candidate for combating multi-drug resistant pathogens.
- F-AgÅPs show a favorable excretion profile, suggesting potential for clinical application in treating sepsis.
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