Quasi-opsonin conjugated lipase-sensitive micelles activate macrophages against facultative intracellular bacterial

Xinyue Liu1, Yajie Wang1, Jiahui Zou1

  • 1Department of Pharmaceutics, China Pharmaceutical University, Jiangsu 210009, P. R. China. zwllz@163.com.

Insights

A novel micellar system (B-mLBP-M/Chl) uses a bacterial lipase-sensitive polymer to deliver chloramphenicol (Chl), effectively targeting drug-resistant Salmonella typhimurium (S. typhimurium) and activating macrophages for improved infection clearance.

Area of Science:

  • Biomedical Engineering
  • Drug Delivery Systems
  • Microbiology

Background:

  • Facultative intracellular bacteria like Salmonella typhimurium (S. typhimurium) pose challenges due to drug resistance.
  • Antibiotic entry into macrophages is limited, aiding intracellular bacterial survival.
  • Developing strategies to overcome intracellular bacterial defense mechanisms is crucial.

Purpose of the Study:

  • To develop a quasi-opsonized micellar system (B-mLBP-M/Chl) for enhanced intracellular bacterial clearance.
  • To investigate the mechanism of targeted drug delivery and macrophage activation by the system.
  • To evaluate the efficacy and safety of the system against drug-resistant S. typhimurium.

Main Methods:

  • Preparation of a bacterial lipase-sensitive polymer system loaded with chloramphenicol (Chl).
  • Incorporation of a lipopolysaccharide-binding protein (LBP) analog and biotin (B) ligand for targeting and activation.
  • In vivo studies in mice to assess targeting, efficacy, and inflammatory response.

Main Results:

  • The B-mLBP-M/Chl system demonstrated effective targeting of S. typhimurium via bacterial lipase and LPS interaction.
  • Biotin conjugation activated macrophage phagocytosis, enhancing bacterial clearance.
  • The system improved mouse survival with minimal pathological damage and regulated cytokine levels, avoiding excessive inflammation.

Conclusions:

  • The developed B-mLBP-M/Chl system offers a promising strategy for combating drug-resistant intracellular bacterial infections.
  • The artificial opsonin approach shows potential for designing safe drug delivery systems and prodrugs.
  • This technology could be extended to other Gram-negative bacterial infections and macrophage-targeted therapies.

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