Biocompatible Hybrid Organic/Inorganic Microhydrogels Promote Bacterial Adherence and Eradication in Vitro and in Vivo.
Lee SchnaiderZenon ToprakciogluAssaf EzraXizhou LiuDarya BychenkoAviad LevinEhud GazitTuomas P J KnowlesPublished in: Nano letters (2020)
Self-assembling peptides and proteins have the potential to serve as multifunctional building blocks for the generation of versatile materials for a wide range of biomedical applications. In particular, supramolecular hydrogels comprised of self-assembled protein nanofibrils, have been used in contexts ranging from tissue engineering to drug delivery. Due to the rapid emergence of multidrug resistant bacteria, development of biomaterials with intrinsic antimicrobial properties has been continuously increasing. Here, we describe hybrid organic/inorganic nanofibrillar silk microgels decorated with silver nanoparticles that display potent antimicrobial activity in vitro and in vivo and are able to adhere bacterial cells to their surfaces while subsequently eradicating them, through a two-step mechanism of action. Importantly, in contrast to treatments involving conventional silver, these silk-silver microgels are nonhemolytic and noncytotoxic toward mammalian cell lines. Finally, we show that these hybrid microgels display substantial efficacy as topical antimicrobial agents in a murine model of surgical site infections.
Keyphrases
- tissue engineering
- silver nanoparticles
- drug delivery
- water soluble
- multidrug resistant
- staphylococcus aureus
- cancer therapy
- gold nanoparticles
- induced apoptosis
- drug release
- magnetic resonance
- amino acid
- cell cycle arrest
- helicobacter pylori infection
- drug resistant
- gram negative
- magnetic resonance imaging
- acinetobacter baumannii
- ionic liquid
- skeletal muscle
- escherichia coli
- climate change
- human health
- weight loss
- klebsiella pneumoniae
- reduced graphene oxide
- extracellular matrix
- metal organic framework
- sensitive detection