Related Experiment Video
Updated: Jul 10, 2025

Anti-virulent Disruption of Pathogenic Biofilms using Engineered Quorum-quenching Lactonases
Published on: January 1, 2016
Microenvironment responsive charge-switchable nanoparticles act on biofilm eradication and virulence inhibition for
Pengyu Li1, Jieyi Pan1, Yating Dong1
1School of Pharmaceutical Sciences, Sun Yat-Sen University, University Town, Guangzhou 510006, PR China.
Abstract:
Chronic pulmonary infection caused by Pseudomonas aeruginosa (P. aeruginosa) is a common lung disease with high mortality, posing severe threats to public health. Highly resistant biofilm and intrinsic resistance make P. aeruginosa hard to eradicate, while powerful virulence system of P. aeruginosa may give rise to the recurrence of infection and eventual failure of antibiotic therapy. To address these issues, infection-microenvironment responsive nanoparticles functioning on biofilm eradication and virulence inhibition were simply prepared by electrostatic complexation between dimethylmaleic anhydride (DA) modified negatively charged coating and epsilon-poly(l-lysine) derived cationic nanoparticles loaded with azithromycin (AZI) (DA-AZI NPs). Charge reversal responsive to acidic condition enabled DA-AZI NPs to successively penetrate through both mucus and biofilms, followed by targeting to P. aeruginosa and permeabilizing its outer/inner membrane. Then in situ released AZI, which was induced by the lipase-triggered NPs dissociation, could easily enter into bacteria to take effects. DA-AZI NPs exhibited enhanced eradication activity against P. aeruginosa biofilms with a decrease of >99.999% of bacterial colonies, as well as remarkable inhibitory effects on the production of virulence factors and bacteria re-adhesion & biofilm re-formation. In a chronic pulmonary infection model, nebulization of DA-AZI NPs into infected mice resulted in prolonged retention and increased accumulation of the NPs in the infected sites of the lungs. Moreover, they significantly reduced the burden of P. aeruginosa, effectively alleviating lung tissue damages and inflammation. Overall, the proposed DA-AZI NPs highlight an innovative strategy for treating chronic pulmonary infection.
Insights
New nanoparticles effectively combat chronic Pseudomonas aeruginosa lung infections. These smart nanoparticles eradicate biofilms, inhibit virulence, and reduce bacterial load in mice, offering a promising treatment strategy.
Area of Science:
- Biomedical Engineering
- Infectious Diseases
- Nanotechnology
Background:
- Chronic Pseudomonas aeruginosa pulmonary infections are difficult to treat due to biofilms and high resistance.
- P. aeruginosa's virulence factors contribute to infection recurrence and antibiotic treatment failure.
Purpose of the Study:
- To develop infection-microenvironment responsive nanoparticles for biofilm eradication and virulence inhibition.
- To evaluate the efficacy of azithromycin-loaded nanoparticles (DA-AZI NPs) in a chronic pulmonary infection model.
Main Methods:
- Preparation of DA-AZI NPs via electrostatic complexation, featuring charge reversal in acidic conditions.
- Assessment of biofilm eradication, virulence factor inhibition, and bacterial re-adhesion.
- In vivo evaluation in a mouse model of chronic pulmonary infection via nebulization.
Main Results:
- DA-AZI NPs demonstrated >99.999% eradication of P. aeruginosa biofilms.
- Significant inhibition of virulence factors, bacterial re-adhesion, and biofilm re-formation was observed.
- In vivo studies showed prolonged retention, reduced bacterial burden, and alleviated lung inflammation and damage.
Conclusions:
- DA-AZI NPs represent an innovative strategy for treating chronic pulmonary infections caused by P. aeruginosa.
- The nanoparticles' ability to target biofilms and inhibit virulence offers a new therapeutic approach.
More Related Videos
10:26P. aeruginosa Infected 3D Co-Culture of Bronchial Epithelial Cells and Macrophages at Air-Liquid Interface for Preclinical Evaluation of Anti-Infectives
Published on: June 15, 2020
06:42Author Spotlight: Exploring the Antibacterial Effects of Zinc Oxide Nanoparticles in Overcoming Antibiotic Resistance
Published on: September 27, 2024