Zwitterion‐conjugated Topological Glycomimics for Dual‐Blocking Effects to Eradicate Biofilm Infection

Author:

Guo Qianqian12,Cheng Yijie1,Fan Zheng3,Wu Weihui3,Wu Zhongming4,Zhang Xinge1ORCID

Affiliation:

1. Key Laboratory of Functional Polymer Materials of Ministry of Education Institute of Polymer Chemistry College of Chemistry Nankai University Tianjin 300071 China

2. The State Key Laboratory of Functions and Applications of Medicinal Plants School of Pharmaceutical Sciences Guizhou Medical University University Town Guian New District Guizhou 550025 China

3. State Key Laboratory of Medicinal Chemical Biology Key Laboratory of Molecular Microbiology and Technology of the Ministry of Education Department of Microbiology College of Life Sciences Nankai University Tianjin 300071 China

4. Department of Endocrinology Shandong Provincial Hospital Affiliated to Shandong First Medical University Jinan Shandong 250021 China

Abstract

AbstractP. aeruginosa, a leading nosocomial pathogen, commonly causes chronic biofilm infections in tissues and biomedical devices, including wound infections, osteomyelitis, and infective endocarditis, heavily threatening life. The dynamic lifecycle of these biofilms leads to persistent generation, making it challenging to prevent and disperse these biofilms effectively. Herein, a topological eight‐arm zwitterion‐conjugated glycomimetics (PCBAA‐b‐PLAMA)8 to address this challenge by exerting a dual‐blocking effect on P. aeruginosa biofilms is introduced. Initially, carboxybetaine acrylate (CBAA) and 2‐lactobionamidoethyl methacrylate (LAMA) are introduced to the topological bromine‐based initiator to prepare (PCBAA‐b‐PLAMA)8. This copolymer demonstrats remarkable efficiency in dispersing P. aeruginosa biofilms, approximately up to 99%. This high efficacy can be attributed to the multivalent and triaxial interactions between LAMA and CBAA groups, which enable the capture of P. aeruginosa cells and the biofilm matrix. Furthermore, (PCBAA‐b‐PLAMA)8 efficiently inhibit the expression of resistance genes related to biofilm formation and antibiotic efflux, including cdrA, lasB, mexE, and mexH, regaining bacterial cell sensitivity to antibiotics and further facilitating the natural dispersal of biofilms. This study provides a generic dual‐blocking strategy for the efficient eliminating of biofilms from biomedical devices.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Pharmacology (medical),Biochemistry (medical),Genetics (clinical),Pharmaceutical Science,Pharmacology,Medicine (miscellaneous)

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