Dual‐Layer Nanoengineered Urinary Catheters for Enhanced Antimicrobial Efficacy and Reduced Cytotoxicity

Author:

Won Dong‐Sung1ORCID,Lee Hyun23,Park Yubeen14ORCID,Chae Minjung56,Kim Yu‐Chan57,Lim Bumjin8,Kang Min‐Ho23,Ok Myoung‐Ryul57,Jung Hyun‐Do9,Park Jung‐Hoon14ORCID

Affiliation:

1. Biomedical Engineering Research Center Asan Institute for Life Sciences Asan Medical Center 88 Olympic‐ro 43‐gil, Songpa‐gu Seoul 05505 Republic of Korea

2. Department of Biomedical‐Chemical Engineering The Catholic University of Korea Bucheon Gyeonggi‐do 14662 Republic of Korea

3. Department of Biotechnology The Catholic University of Korea Bucheon 14662 Republic of Korea

4. Department of Convergence Medicine Asan Medical Center University of Ulsan College of Medicine 88 Olympic‐ro 43‐gil, Songpa‐gu Seoul 05505 Republic of Korea

5. Biomaterials Research Center Biomedical Research Division Korea Institute of Science and Technology (KIST) Seoul 02792 Republic of Korea

6. Department of Materials Science and Engineering Seoul National University (SNU) Seoul 08826 Republic of Korea

7. Division of Bio‐Medical Science and Technology KIST School Korea University of Science and Technology Seoul 02792 Republic of Korea

8. Department of Urology Asan Medical Center University of Ulsan College of Medicine 88 Olympic‐ro 43‐gil, Songpa‐gu Seoul 05505 Republic of Korea

9. Division of Materials Science and Engineering Hanyang University Seongdong‐gu Seoul 04763 Republic of Korea

Abstract

AbstractCatheter‐associated urinary tract infection (CAUTI) is the most common healthcare‐associated infection; however, current therapeutic strategies remain insufficient for standard clinical application. A novel urinary catheter featuring a dual‐layer nanoengineering approach using zinc (Zn) and silver nanoparticles (AgNPs) is successfully fabricated. This design targets microbial resistance, minimizes cytotoxicity, and maintains long‐term efficacy. The inner AgNPs layer provides immediate antibacterial effects against the UTI pathogens, while the outer porous Zn layer controls zero‐order Ag release and generates reactive oxygen species, thus enhancing long‐term bactericidal performance. Enhanced antibacterial properties of Zn/AgNPs‐coated catheters are observed, resulting in 99.9% of E. coli and 99.7% of S. aureus reduction, respectively. The Zn/AgNPs‐coated catheter significantly suppresses biofilm with sludge formation compared to AgNP‐coated and uncoated catheters (all, p < 0.05). The Zn/AgNP‐coated catheter in a rabbit model demonstrated a durable, effective barrier against bacterial colonization, maintaining antimicrobial properties during the catheter indwelling period with significantly reduced inflammation and epithelial disruption compared with AgNP and uncoated groups. This innovation has the potential to revolutionize the design of antimicrobial medical devices, particularly for applications requiring long‐term implantation. Although further preclinical studies are required to verify its efficacy and safety, this strategy seems to be a promising approach to preventing CAUTI‐related complications.

Funder

Korea Medical Device Development Fund

Ministry of Oceans and Fisheries

Publisher

Wiley

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