Poly(Ionic Liquid) Nanofibers Suppress <i>S. aureus</i> Membrane Vesicle‐Induced NETosis to Mitigate Wound and Lung Damage

J Jiaying Lin J Jiali Duan J Jiangna Guo (College of Chemistry Chemical Engineering and Materials Science Soochow University Suzhou China) H Hui Xu R Rongwei Shi (School of Material and Chemical Engineering Tongren University Tongren China) L Linhui Zhao (Department of Critical Care Medicine Zhongshan Hospital Fudan University Shanghai China) Y Yangyang Liu (State Key Laboratory for Mechanical Behavior of Materials, School of Instrument Science and Technology) N Na Meng J Jiateng Zhou (Department of Plastic and Reconstructive Surgery Shanghai Ninth People's Hospital Shanghai Jiao Tong University School of Medicine Shanghai China) X Xiao Zhang S Shihui Lin (Department of Plastic and Reconstructive Surgery Shanghai Ninth People's Hospital Shanghai Jiao Tong University School of Medicine Shanghai China) F Feng Yan (Materials Science and Engineering Program, School for Engineering of Matter, Transport and Energy) B Bin Wang H Hailei Mao

Abstract

ABSTRACT Staphylococcus aureus membrane vesicles (MVs) cause host injury and excessive inflammation, yet their pathological roles and clearance strategies remain undefined. Guided by molecular dynamics simulations of MV‐polymer interactions, we engineered imidazolium‐based poly(ionic liquid) (PIL) electrospun nanofibers for targeted MV interception. Among multiple formulations, PIL‐C4 demonstrated optimal performance, combining potent antibacterial activity, robust adsorption of methicillin‐resistant S. aureus (MRSA) MVs and their virulence factors, minimal cytotoxicity, and inhibition of resistance transmission. In vivo, PIL‐C4 attenuated MV‐induced neutrophil extracellular trap (NET) formation (NETosis) and vascular leakage, thereby reducing purulent‐exudative wound injury and preventing systemic organ damage, including fatal lung injury. Notably, DNase‐mediated NET degradation alone failed to rescue MV pathology, underscoring the necessity of direct MV clearance. This study uncovers previously unrecognized NETosis‐driven phenotypes of S. aureus MVs—local purulent‐exudative wound injury and systemic lethal lung damage—and establishes a polymer‐based clearance strategy with translational potential for infection control.

Article Details

Volume / Issue Vol. 38, Issue 12
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

J

Jiaying Lin

J

Jiali Duan

J

Jiangna Guo

College of Chemistry Chemical Engineering and Materials Science Soochow University Suzhou China

H

Hui Xu

R

Rongwei Shi

School of Material and Chemical Engineering Tongren University Tongren China

L

Linhui Zhao

Department of Critical Care Medicine Zhongshan Hospital Fudan University Shanghai China

Y

Yangyang Liu

State Key Laboratory for Mechanical Behavior of Materials, School of Instrument Science and Technology

N

Na Meng

J

Jiateng Zhou

Department of Plastic and Reconstructive Surgery Shanghai Ninth People's Hospital Shanghai Jiao Tong University School of Medicine Shanghai China

X

Xiao Zhang

S

Shihui Lin

Department of Plastic and Reconstructive Surgery Shanghai Ninth People's Hospital Shanghai Jiao Tong University School of Medicine Shanghai China

F

Feng Yan

Materials Science and Engineering Program, School for Engineering of Matter, Transport and Energy

B

Bin Wang

H

Hailei Mao