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Published on: May 31, 2018
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.
Abstract:
Drug resistance caused by facultative intracellular bacteria such as Salmonella typhimurium (S. typhimurium) is still a tough challenge. Bacteria phagocytosed by macrophages have evolved a variety of mechanisms to defend against host attack, and the poor entry of antibiotics into infected macrophages is conducive to the survival of intracellular bacteria. In this report, we prepared a quasi-opsonized chloramphenicol (Chl)-loaded micellar system (B-mLBP-M/Chl) assembled by a bacterial lipase-sensitive polymer with a conjugate of lipopolysaccharide-binding protein (LBP) analog and biotin (B) as a ligand, which could eliminate drug-resistant S. typhimurium with quasi-opsonization via 3 steps: (i) target and release antibiotics on bacteria lipase, (ii) opsonize S. typhimurium to be digested by the macrophage, and (iii) activate the macrophage for fighting. The B-mLBP-M/Chl could target bacterial LPS through mLBP by simulating the N-terminal sequence of native LBP, exhibiting a high ability to target the localized infection site in mice. It could also activate the phagocytosis of macrophages via coupled biotin, cooperating with antibiotics and effectively improving the survival of mice with little pathological damage to tissues. Moreover, compared with native opsonin, B-mLBP does not cause an excessive inflammatory response and could recover homeostasis after exerting the quasi-opsonization by regulating the levels of pro-inflammatory cytokines and anti-inflammatory cytokines. With a universal target site for Gram-negative bacteria and macrophage activation, this B-mLBP-M/Chl could be applied to other bacterial infections in the future. In particular, this analog may also serve as a useful template to design safe artificial opsonin, which could be a ligand for drug delivery systems or prodrugs.
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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