4.8 Article

Traceless antibiotic-crosslinked micelles for rapid clearance of intracellular bacteria

期刊

JOURNAL OF CONTROLLED RELEASE
卷 341, 期 -, 页码 329-340

出版社

ELSEVIER
DOI: 10.1016/j.jconrel.2021.11.037

关键词

Intracellular bacteria; Hydrophobic modification; Self-immolation; Drug-crosslinked micelles; Toxicity

资金

  1. National Key Research and Development Program [2021YFC2102300]
  2. National Natural Science Foundation of China [32071384]
  3. Start-up Grant at Tianjin University
  4. One-thousand Young Talent Program of China

向作者/读者索取更多资源

SIR-micelles(+) are a novel delivery system that effectively transports antibiotics to macrophages and rapidly releases them, eliminating intracellular bacterial infections in hosts, with significant effects on multidrug-resistant strains.
Effective delivery of antimicrobial agents to intracellular pathogens represents a major bottleneck for a wide variety of infectious diseases. To address this, we developed SIR-micelles(+), as a new delivery vehicle comprising antibiotic-loaded micelles with rapid self-immolation within cells for targeted delivery to macrophages, where most intracellular bacterial reside. After phagocytosis, SIR-micelles(+) rapidly release the pristine antibiotic after the cleavage of the disulfide bonds by intracellular reducing agents such as glutathione (GSH). Colistin, a hydrophilic and potent last-resort antibiotic used for the treatment of drug-resistant bacterial infection, was encapsulated in SIR-micelles with 40% yield and good short-term storage stability. Hydrophobic moieties and mannose ligands in SIR-micelles(+) enhanced the delivery of colistin into macrophages. The traceless and thiol-responsive release of colistin effectively eliminated intracellular Escherichia coli within twenty minutes. In a murine pneumonia model, SIR-micelles(+) significantly reduced bacterial lung burden of multidrug-resistant Klebsiella pneumoniae. Furthermore, SIR-micelles(+) improved the survival rate and reduced the bacterial burden of organs infected by intracellular bacteria transferred from donor mice. Using this formulation approach, the nephrotoxicity and neurotoxicity induced by antibiotic were reduced by about 5- 15 fold. Thus, SIR-micelles(+) represent a new class of material that can be used for targeting treatment of intracellular and drug-resistant pathogens.

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