4.7 Article

Antimicrobial Polymers of Linear and Bottlebrush Architecture: Probing the Membrane Interaction and Physicochemical Properties

期刊

MACROMOLECULAR RAPID COMMUNICATIONS
卷 43, 期 19, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/marc.202200288

关键词

antimicrobial polymers; bottlebrush copolymers; liposomes; membrane interactions; quartz crystal microbalance

资金

  1. DFG (Emmy-Noether-Program) [HA 7725/2-1]
  2. NGO forderverein Uni Kinshasa e. V.
  3. Else-Kroener-Fresenius Stiftung
  4. Holger-Poehlmann Foundation
  5. Deutsche Forschungsgemeinschaft (DFG, German Research Foundation) [EXC 2008 - 390540038 - UniSysCat]
  6. DFG [406260942]
  7. Projekt DEAL

向作者/读者索取更多资源

Polymeric antimicrobial peptide mimics offer a promising solution to the challenges of antimicrobial resistance. The physicochemical properties of linear and bottlebrush copolymers play a crucial role in determining their activity.
Polymeric antimicrobial peptide mimics are a promising alternative for the future management of the daunting problems associated with antimicrobial resistance. However, the development of successful antimicrobial polymers (APs) requires careful control of factors such as amphiphilic balance, molecular weight, dispersity, sequence, and architecture. While most of the earlier developed APs focus on random linear copolymers, the development of APs with advanced architectures proves to be more potent. It is recently developed multivalent bottlebrush APs with improved antibacterial and hemocompatibility profiles, outperforming their linear counterparts. Understanding the rationale behind the outstanding biological activity of these newly developed antimicrobials is vital to further improving their performance. This work investigates the physicochemical properties governing the differences in activity between linear and bottlebrush architectures using various spectroscopic and microscopic techniques. Linear copolymers are more solvated, thermo-responsive, and possess facial amphiphilicity resulting in random aggregations when interacting with liposomes mimicking Escheria coli membranes. The bottlebrush copolymers adopt a more stable secondary conformation in aqueous solution in comparison to linear copolymers, conferring rapid and more specific binding mechanism to membranes. The advantageous physicochemical properties of the bottlebrush topology seem to be a determinant factor in the activity of these promising APs.

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