A Modular Bottlebrush Polymer Platform for Decoupled Antibacterial and Antifouling Strategies against Wound Infections

Surface-associated and device-related bacterial infections require materials that can both eliminate pathogens and prevent microbial colonization. However, antibacterial activity in solution and antifouling performance at interfaces are governed by distinct physicochemical principles, making their integration within a single material challenging. Here, we report a modular bottlebrush polymer (BBP) platform that decouples these functions through architectural design. A library of seven BBPs with monoblock and ABA triblock architectures was synthesized to independently control side-chain charge distribution and interfacial hydration. Multivalent cationic side chains promoted efficient bacterial killing in solution, whereas hydrated PEG or zwitterionic bottlebrush layers anchored by cationic termini formed stable antifouling coatings. In diabetic mice, the BBPs showed no evidence of local irritation, systemic toxicity, or impaired wound healing. In an infected wound model, bactericidal BBPs reduced bacterial burden, while antifouling BBPs suppressed local inflammation. Their combined application improved therapeutic outcomes, demonstrating the benefit of a functionally decoupled strategy. Collectively, these findings establish a generalizable architectural framework for designing multifunctional anti-infective materials.

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Publication Details

Journal
ACS Biomaterials Science & Engineering
Published
2026-10-05
DOI
https://doi.org/10.1021/acsbiomaterials.6c01161
Primary Topic
Antimicrobial agents and applications
Type
article
Field-Weighted Citation Impact
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article

A Modular Bottlebrush Polymer Platform for Decoupled Antibacterial and Antifouling Strategies against Wound Infections

Nahid Hassanpour, Yves V. Brun, Wojciech Raj, Cécile Berne et al.
ACS Biomaterials Science & Engineering
Antimicrobial agents and applications
article

A Modular Bottlebrush Polymer Platform for Decoupled Antibacterial and Antifouling Strategies against Wound Infections

Nahid Hassanpour, Yves V. Brun, Wojciech Raj, Cécile Berne, Xavier Banquy, Hermine Counil, Quoc Thang Phan, Alessia Filippini, Karine Dufresne, Duy Anh Phạm, Hu Zhang, Qiang Peng, Hui Guo, Florina G. Halmac, Tzu-Hsuan Huang, Chang-Sheng Wang
article en

Abstract

Surface-associated and device-related bacterial infections require materials that can both eliminate pathogens and prevent microbial colonization. However, antibacterial activity in solution and antifouling performance at interfaces are governed by distinct physicochemical principles, making their integration within a single material challenging. Here, we report a modular bottlebrush polymer (BBP) platform that decouples these functions through architectural design. A library of seven BBPs with monoblock and ABA triblock architectures was synthesized to independently control side-chain charge distribution and interfacial hydration. Multivalent cationic side chains promoted efficient bacterial killing in solution, whereas hydrated PEG or zwitterionic bottlebrush layers anchored by cationic termini formed stable antifouling coatings. In diabetic mice, the BBPs showed no evidence of local irritation, systemic toxicity, or impaired wound healing. In an infected wound model, bactericidal BBPs reduced bacterial burden, while antifouling BBPs suppressed local inflammation. Their combined application improved therapeutic outcomes, demonstrating the benefit of a functionally decoupled strategy. Collectively, these findings establish a generalizable architectural framework for designing multifunctional anti-infective materials.

ACS Biomaterials Science & Engineering
Université du Québec à Montréal (CA), Université de Montréal (CA)
Openalex Percentile: Top 24%
Antimicrobial agents and applications
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