4.8 Article

Interplay between mucus mobility and alveolar macrophage targeting of surface-modified liposomes

Journal

JOURNAL OF CONTROLLED RELEASE
Volume 352, Issue -, Pages 15-24

Publisher

ELSEVIER
DOI: 10.1016/j.jconrel.2022.10.006

Keywords

Liposome; Hyaluronic acid; Poly(ethylene glycol); M1 macrophages; CD44; Lung injury

Funding

  1. Agence Nationale pour la Recherche (ANR JCJC NANOSEPSIS FF)
  2. EuroNanomed III [ARROWNANO 2017-1892 EF]

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Alveolar macrophages are crucial in lung immune response and can be targeted for treating inflammatory and infectious pulmonary diseases. This study investigates the behavior of liposomal platforms with different coatings in a murine lung inflammation model. The results show that the liposomes with different coatings display distinct cell specificity, which is related to the balance between mucus penetration and receptor targeting.
Alveolar macrophages play a crucial role in the initiation and resolution of the immune response in the lungs. Pro-inflammatory M1 alveolar macrophages are an interesting target for treating inflammatory and infectious pulmonary diseases. One commune targeting strategy is to use nanoparticles conjugated with hyaluronic acid, which interact with CD44 overexpressed on the membrane of those cells. Unfortunately, this coating strategy may be countered by the presence on the surface of the nanoparticles of a poly(ethylene glycol) corona employed to improve nanoparticles' diffusion in the lung mucus. This study aims to measure this phenomenon by comparing the behavior in a murine lung inflammation model of three liposomal platforms designed to represent different poly(ethylene glycol) and hyaluronic acid densities (Liposome-PEG, Liposome-PEG-HA and Liposome -HA). In this work, the liposomes were obtained by a one-step ethanol injection method. Their interaction with mucin and targeting ability toward pro-inflammatory macrophages were then investigated in vitro and in vivo in a LPS model of lung inflammation. In vitro, poly(ethylene glycol) free HA-liposomes display a superior targeting efficiency toward M1 macrophages, while the addition of poly(ethylene glycol) induces better mucus mobility. Interestingly in vivo studies revealed that the three liposomes showed distinct cell specificity with alveolar macrophages demonstrating an avidity for poly(ethylene glycol) free HA-liposomes, while neutrophils favored PEGylated liposomes exempt of HA. Those results could be explained by the presence of two forces exercising a balance between mucus penetration and receptor targeting. This study corroborates the importance of consid-ering the site of action and the targeted cells when designing nanoparticles to treat lung diseases.

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