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Highly potent antimicrobial polyionenes with rapid killing kinetics, skin biocompatibility and in vivo bactericidal activity

  • Shaoqiong Liu
  • , Robert J. Ono
  • , Hong Wu
  • , Jye Yng Teo
  • , Zhen Chang Liang
  • , Kaijin Xu
  • , Musan Zhang
  • , Guansheng Zhong
  • , Jeremy P.K. Tan
  • , Michelle Ng
  • , Chuan Yang
  • , Julian Chan
  • , Zhongkang Ji
  • , Chang Bao
  • , Kiran Kumar
  • , Shujun Gao
  • , Ashlynn Lee
  • , Mareva Fevre
  • , Huihui Dong
  • , Jackie Y. Ying
  • Lanjuan Li, Weimin Fan, James L. Hedrick, Yi Yan Yang*
*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

96 Scopus citations

Abstract

Effective antimicrobial agents are important arsenals in our perennial fight against communicable diseases, hospital-acquired and surgical site multidrug-resistant infections. In this study, we devise a strategy for the development of highly efficacious and skin compatible yet inexpensive water-soluble macromolecular antimicrobial polyionenes by employing a catalyst-free, polyaddition polymerization using commercially available monomers. A series of antimicrobial polyionenes are prepared through a simple polyaddition reaction with both polymer-forming reaction and charge installation occurring simultaneously. The compositions and structures of polymers are modulated to study their effects on antimicrobial activity against a broad spectrum of pathogenic microbes. Polymers with optimized compositions have potent antimicrobial activity with low minimum inhibitory concentrations of 1.95–7.8 μg/mL and high selectivity over mammalian cells. In particular, a killing efficiency of more than 99.9% within 2 min is obtained. Moreover, the polymers demonstrate high antimicrobial efficacy against various clinically-isolated multidrug-resistant microbes, yet exhibit vastly superior skin biocompatibility in mice as compared to other clinically used surgical scrubs (chlorhexidine and betadine). Microbicidal activity of the polymer is mediated via membrane lysis as demonstrated by confocal microscopy. Unlike small molecular antibiotics, repeated use of the polymer does not induce drug resistance. More importantly, the polymer shows excellent bactericidal activity in a P. aeruginosa-contaminated mouse skin model. Given their rapid and efficacious microbicidal activity and skin compatibility, these polymers have tremendous potential to be developed as surgical scrubs/hand sanitizers to prevent multidrug-resistant infections.

Original languageEnglish
Pages (from-to)36-48
Number of pages13
JournalBiomaterials
Volume127
DOIs
StatePublished - 1 May 2017
Externally publishedYes

Bibliographical note

Publisher Copyright:
© 2017 Elsevier Ltd

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Antimicrobial polymers
  • Broad-spectrum antimicrobial activity
  • In vivo bactericidal activity
  • Multidrug-resistant microbes
  • Polyionenes
  • Superfast killing kinetics

ASJC Scopus subject areas

  • Ceramics and Composites
  • Biophysics
  • Bioengineering
  • Biomaterials
  • Mechanics of Materials

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