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Published on: February 5, 2019
Mannosylated Systems for Targeted Delivery of Antibacterial Drugs to Activated Macrophages
Igor D Zlotnikov1, Maksim A Vigovskiy2,3, Maria P Davydova3
1Faculty of Chemistry, Lomonosov Moscow State University, Leninskie Gory, 1/3, 119991 Moscow, Russia.
Abstract:
Macrophages are a promising target for drug delivery to influence macrophage-associated processes in the body, namely due to the presence of resistant microorganisms in macrophages. In this work, a series of mannosylated carriers based on mannan, polyethylenimine (PEI) and cyclodextrin (CD) was synthesized. The molecular architecture was studied using FTIR and 1H NMR spectroscopy. The particle size, from small 10-50 nm to large 500 nm, depending on the type of carrier, is potentially applicable for the creation of various medicinal forms: intravenous, oral and inhalation. Non-specific capture by cells with a simultaneous increase in selectivity to CD206+ macrophages was achieved. ConA was used as a model mannose receptor, binding galactosylated (CD206 non-specific) carriers with constants of the order of 104 M-1 and mannosylated conjugates of 106-107 M-1. The results of such primary "ConA-screening" of ligands are in a good agreement in terms of the comparative effectiveness of the interaction of ligands with the CD206+ macrophages: non-specific (up to 10%) absorption of highly charged and small particles; weakly specific uptake of galactosylated polymers (up to 50%); and high affine capture (more than 70-80%) of the ligands with grafted trimannoside was demonstrated using the cytometry method. Double and multi-complexes of antibacterials (moxifloxacin with its adjuvants from the class of terpenoids) were proposed as enhanced forms against resistant pathogens. In vivo pharmacokinetic experiments have shown that polymeric carriers significantly improve the efficiency of the antibiotic: the half-life of moxifloxacin is increased by 2-3 times in conjugate-loaded forms, bio-distribution to the lungs in the first hours after administration of the drug is noticeably greater, and, after 4 h of observation, free moxifloxacin was practically removed from the lungs of rats. Although, in polymer systems, its content is significant-1.2 µg/g. Moreover, the importance of the covalent crosslinking carrier with mannose label was demonstrated. Thus, this paper describes experimental, scientifically based methods of targeted drug delivery to macrophages to create enhanced medicinal forms.
Insights
Researchers developed mannosylated drug carriers for targeted delivery to macrophages, enhancing antibiotic efficacy against resistant pathogens. These carriers show improved pharmacokinetics and lung distribution, offering new strategies for infectious disease treatment.
Area of Science:
- Biomaterials Science
- Nanotechnology
- Pharmacology
Background:
- Macrophages are key targets for treating intracellular infections due to resistant microorganisms.
- Developing targeted drug delivery systems is crucial for enhancing therapeutic outcomes.
Purpose of the Study:
- To synthesize and characterize mannosylated carriers for targeted drug delivery to macrophages.
- To evaluate the efficacy of these carriers in enhancing antibiotic performance against resistant pathogens.
Main Methods:
- Synthesis of mannosylated carriers using mannan, polyethylenimine (PEI), and cyclodextrin (CD).
- Characterization via FTIR and 1H NMR spectroscopy; particle size analysis.
- In vitro assessment of macrophage uptake using flow cytometry and ConA binding assays.
- In vivo pharmacokinetic and biodistribution studies of antibiotic-loaded carriers in rats.
Main Results:
- Mannosylated carriers demonstrated selective and high-affinity binding to CD206+ macrophages (70-80% uptake).
- Polymeric carriers significantly increased moxifloxacin's half-life (2-3 times) and lung distribution.
- Covalent crosslinking of the carrier with mannose label proved essential for enhanced delivery.
Conclusions:
- Mannosylated carriers represent a promising platform for targeted drug delivery to macrophages.
- These systems effectively enhance antibiotic pharmacokinetics and therapeutic potential against resistant infections.
- The study provides a scientifically validated approach for developing advanced medicinal forms for macrophage-targeted therapies.

