Salt‐Triggered Adaptive Dissociation Coating with Dual Effect of Antibacteria and Anti‐Multiple Encrustations in Urological Devices

Author:

Yu Huan12,Shi Hengchong12ORCID,Zhu Ming3,Zhang Xu2,Wang Lei2,Tian Gongwei4,Song Lingjie2,Luan Shifang12ORCID,Qi Dianpeng4ORCID,Chen Xiaodong53

Affiliation:

1. School of Applied Chemistry and Engineering University of Science and Technology of China 230026 Hefei P. R. China

2. State Key Laboratory of Polymer Physics and Chemistry Changchun Institute of Applied Chemistry Chinese Academy of Sciences 130022 Changchun P. R. China

3. Institute for Digital Molecular Analytics and Science (IDMxS) Nanyang Technological University 636921 59 Nanyang Drive Singapore Singapore

4. School of Chemistry and Chemical Engineering Harbin Institute of Technology 150001 Harbin P. R. China

5. School of Materials Science and Engineering Nanyang Technological University 639798 Singapore Singapore

Abstract

AbstractBacterial infections and multiple encrustations are life‐threatening complications in patients implanted with urological devices. Limited by time‐consuming procedures and substrate dependence, it is difficult to simultaneously prevent the aforementioned complications. Herein, is reported the design of a salt‐triggered chondroitin sulfate complex (CS/Si‐N+) coating with adaptive dissociation, which realizes the dual functions of antibacterial and anti‐multiple encrustations in urological devices with arbitrary shapes. The existence of covalent interactions between the complex and the interface ensures the formation of a robust coating, especially in harsh environments. Benefiting from the adaptive dissociation of the ion pairs in the CS/Si‐N+ coating in urine electrolytes, the exposed ion groups and enhanced hydrophilicity are more conducive to the inhibition of bacterial infection and multiple encrustations simultaneously. The coating exhibits broad‐spectrum bactericidal effects. As a proof of concept, in a simulated metabolic encrustation model, the coating exhibits significant advantages in resisting calcium oxalate encrustation, with a reduction in the calcium content by over 90%. In addition, this non‐leachable all‐in‐one coating shows good biocompatibility in a pig in vivo model. Such a coating strategy is expected to be a practical approach for preventing urological medical device‐related complications.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

Subject

Pharmaceutical Science,Biomedical Engineering,Biomaterials

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