bioRxiv · 10.1101/2021.11.11.468250
Autonomous treatment of bacterial infections in vivo using antimicrobial micro- and nanomachines
Abstract
The increasing resistance of bacteria to existing antibiotics constitutes a major public health threat globally. Most current antibiotic treatments are hindered by poor delivery to the infection site, leading to undesired off-target effects and drug resistance development and spread. Here, we describe micro- and nanomachines that effectively and autonomously deliver antibiotic payloads to the target area. The active motion and antimicrobial activity of the silica-based robots are driven by catalysis of the enzyme urease and antimicrobial peptides, respectively. These antimicrobial machines show micromolar bactericidal activity in vitro against different Gram-positive and Gram-negative pathogenic bacterial strains and act by rapidly depolarizing their membrane. Finally, they demonstrated autonomous anti-infective efficacy in vivo in a clinically relevant abscess infection mouse model. In summary, our machines combine navigation, catalytic conversion, and bactericidal capacity to deliver antimicrobial payloads to specific infection sites. This technology represents a much-needed tool to direct therapeutics to their target to help combat drug-resistant infections.
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Arque, X., Torres, M. D. T., Patino, T., Boaro, A., Sanchez, S., de la Fuente-Nunez, C.. 2021-11-13. Autonomous treatment of bacterial infections in vivo using antimicrobial micro- and nanomachines. https://doi.org/10.1101/2021.11.11.468250
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