Modular Polymers With Tuneable Charge and Amphiphilicity for Effective Antimicrobial Photodynamic Therapy

ABSTRACT A modular synthetic platform delivers polymers that integrate, within a single architecture, a hydrophilic backbone, hydrophobic side chains, charged groups, and photoactive agents for antimicrobial photodynamic therapy (aPDT). Ruthenium complexes are used as representative photoactive systems, and clinical strains of Pseudomonas aeruginosa , Staphylococcus aureus , and Escherichia coli serve as bacterial targets. Two complementary strategies are deployed in parallel within a single design framework: free‐radical copolymerisation of acrylic ruthenium–photosensitiser monomers, and post‐polymerisation modification of a pentafluorophenyl‐acrylate precursor with amine‐functionalised ruthenium complexes. Both routes allow independent tuning of composition, solubility, amphiphilic balance, and net charge, a set of properties that together govern the polymers' interaction with bacterial surfaces. The approach yields a library of seven water‐dispersible, amphiphilic polymer–metal hybrids. Benchmarked against a bare ruthenium complex, the aPDT‐polymers exhibit strong UV–visible absorption, efficient reactive oxygen species production, low (photo)cytotoxicity towards human bronchial epithelial cells, and potent antibacterial activity, particularly against multidrug‐resistant P. aeruginosa in planktonic and biofilm states. Multivariate clustering reveals clear guidelines for structure–activity relationships: anionic acrylic‐acid‐rich architectures are most effective against P. aeruginosa biofilms under saline conditions, while cationic compositions are preferential against planktonic S. aureus . The platform thus provides a rationally tuneable basis for next‐generation polymer‐based photoactive antimicrobials.

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Publication Details

Journal
Macromolecular Rapid Communications
Published
2026-09-10
DOI
https://doi.org/10.1002/marc.70426
Primary Topic
Photodynamic Therapy Research Studies
Type
article
Field-Weighted Citation Impact
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article

Modular Polymers With Tuneable Charge and Amphiphilicity for Effective Antimicrobial Photodynamic Therapy

Ali Balasini, Ulrich Jonas, Tristan Montier, Tony Le Gall et al.
Macromolecular Rapid Communications
Photodynamic Therapy Research Studies
article

Modular Polymers With Tuneable Charge and Amphiphilicity for Effective Antimicrobial Photodynamic Therapy

Ali Balasini, Ulrich Jonas, Tristan Montier, Tony Le Gall, Jérémy Godard, Margaux Bonnardot, Gilles Lemercier, Franck Thétiot, Jannik Fryn
article en

Abstract

ABSTRACT A modular synthetic platform delivers polymers that integrate, within a single architecture, a hydrophilic backbone, hydrophobic side chains, charged groups, and photoactive agents for antimicrobial photodynamic therapy (aPDT). Ruthenium complexes are used as representative photoactive systems, and clinical strains of Pseudomonas aeruginosa , Staphylococcus aureus , and Escherichia coli serve as bacterial targets. Two complementary strategies are deployed in parallel within a single design framework: free‐radical copolymerisation of acrylic ruthenium–photosensitiser monomers, and post‐polymerisation modification of a pentafluorophenyl‐acrylate precursor with amine‐functionalised ruthenium complexes. Both routes allow independent tuning of composition, solubility, amphiphilic balance, and net charge, a set of properties that together govern the polymers' interaction with bacterial surfaces. The approach yields a library of seven water‐dispersible, amphiphilic polymer–metal hybrids. Benchmarked against a bare ruthenium complex, the aPDT‐polymers exhibit strong UV–visible absorption, efficient reactive oxygen species production, low (photo)cytotoxicity towards human bronchial epithelial cells, and potent antibacterial activity, particularly against multidrug‐resistant P. aeruginosa in planktonic and biofilm states. Multivariate clustering reveals clear guidelines for structure–activity relationships: anionic acrylic‐acid‐rich architectures are most effective against P. aeruginosa biofilms under saline conditions, while cationic compositions are preferential against planktonic S. aureus . The platform thus provides a rationally tuneable basis for next‐generation polymer‐based photoactive antimicrobials.

Macromolecular Rapid Communications
Centre National de la Recherche Scientifique (FR), Inserm (FR), Université de Bretagne Occidentale (FR), École nationale d'ingénieurs de Brest (FR), Université Paris Cité (FR), University of Siegen (DE), Sorbonne Paris Cité (FR), Laboratoire National de Référence (MA), Laboratoire des Sciences et Techniques de l’Information de la Communication et de la Connaissance (FR), Interfaces Traitements Organisation et Dynamique des Systèmes (FR), Université de Reims Champagne-Ardenne (FR)
Openalex Percentile: Top 11%
Photodynamic Therapy Research Studies
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