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Updated: Jun 5, 2025

Bronchoalveolar Lavage Exosomes in Lipopolysaccharide-induced Septic Lung Injury
Published on: May 21, 2018
Advanced MicroRNA delivery for lung inflammatory therapy: surfactant protein A controls cellular internalisation and
Miji Kim1,2,3, Sujeong Park1,3,4, Nayoung Lee1
1Department of Biology and Chemistry, Changwon National University, Changwon, South Korea.
Introduction:
Alveolar macrophages (AMs) are the first line of defence against pathogens that initiate an inflammatory response in the lungs and exhibit a strong affinity for surfactant protein A (SP-A). Extracellular vesicles (EVs) have emerged as a promising drug delivery platform due to their minimal cytotoxicity. However, precise targeting of specific cell types and the rapid lysosomal degradation of EVs within recipient cells remain persistent challenges.
Method:
In this study, we explored the biological significance of SP-A-EVs as novel drug delivery systems for combating lung inflammation. We first verified that respiratory EVs express SP-A receptor (SP-R210), facilitating the conjugation of SP-A with EVs. The delivery efficiency, cellular internalisation pathways and therapeutic effects were evaluated using an in vivo mouse model.
Results:
SP-A-EVs were robustly internalised into AMs both in vitro and in vivo. Furthermore, our investigation revealed that the toll-like receptor 4-mediated endocytosis pathway was employed for the uptake of SP-A-EVs, significantly delaying their degradation compared with natural EVs, which primarily followed the conventional lysosomal degradation pathway within AMs. In a functional study, we successfully loaded anti-inflammatory microRNA (let-7b) into SP-A-EVs, leading to the suppression of AM activation and the alleviation of lung inflammation induced by lipopolysaccharide.
Conclusion:
These findings underscore the potential of SP-A-EVs as highly effective drug delivery systems for targeted therapeutics in lung-related disorders, capitalising on the strong affinity between AMs and SP-A and the modulation of cellular internalisation.
Insights
Surfactant protein A-conjugated extracellular vesicles (SP-A-EVs) effectively target alveolar macrophages, enhancing drug delivery for lung inflammation. SP-A-EVs show delayed degradation and deliver anti-inflammatory let-7b, suppressing macrophage activation and reducing lung inflammation.
Area of Science:
- Nanomedicine
- Cell Biology
- Immunology
Background:
- Alveolar macrophages (AMs) are key lung immune cells with high affinity for surfactant protein A (SP-A).
- Extracellular vesicles (EVs) are promising drug carriers but face challenges in cell targeting and rapid degradation.
- Targeting AMs is crucial for treating lung inflammatory diseases.
Purpose of the Study:
- To investigate SP-A-conjugated EVs (SP-A-EVs) as a novel drug delivery system for lung inflammation.
- To evaluate the targeting efficiency, cellular uptake mechanisms, and therapeutic potential of SP-A-EVs in AMs.
- To assess the impact of SP-A conjugation on EV degradation within AMs.
Main Methods:
- Verification of SP-A receptor (SP-R210) expression on respiratory EVs for SP-A conjugation.
- In vitro and in vivo evaluation of SP-A-EVs' delivery efficiency and cellular internalization pathways in AMs.
- Assessment of SP-A-EVs' therapeutic effects in a lipopolysaccharide-induced mouse lung inflammation model.
Main Results:
- SP-A-EVs demonstrated robust internalization into AMs via toll-like receptor 4-mediated endocytosis.
- SP-A-EVs exhibited significantly delayed degradation compared to natural EVs within AMs.
- Delivery of anti-inflammatory microRNA (let-7b) via SP-A-EVs suppressed AM activation and alleviated lung inflammation.
Conclusions:
- SP-A-EVs represent a highly effective drug delivery platform for targeted lung therapeutics.
- The strong AM-SP-A affinity and modulated cellular internalization enhance therapeutic outcomes.
- SP-A-EVs offer a promising strategy for managing lung-related disorders.
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