Inhalable Plant Exosome-like Nanoparticles from Houttuynia cordata Ameliorate Acute Lung Injury via Redox Modulation and Immune Reprogramming

Background: Acute lung injury (ALI) features oxidative stress, macrophage dysfunction, and barrier disruption, with limited safe therapies. Plant-derived exosome-like nanovesicles (PENs) delivered noninvasively to the lung are promising but understudied. Methods: In vitro, HELNs were evaluated for their ability to scavenge ROS, restore mitochondrial membrane potential (MMP) modulate M1/M2 polarization, and suppress pro-inflammatory cytokines. RNA-seq was also used to evaluate the TNF/NOD-like pathway and mitochondrial-related gene expression. In vivo, the evaluated parameters included biodistribution, therapeutic outcomes (lung wet/dry weight ratio, BALF protein concentration, MPO and MDA levels, histology), immune cell profiles, and cytokines. Biosafety was assessed via hematology, serum biochemistry, and histology. Results: In vitro, HELNs acted dose-dependently by scavenging ROS, recovering MMP, promoting M2 and suppressing M1 polarization, and reducing TNF-α, IL-6 release. Additionally, RNA-seq confirmed downregulation of TNF/NOD-like signals and regulated mitochondrial gene expression. In vivo, nebulized HELNs preferentially accumulated in inflamed lungs, with significantly higher pulmonary retention than intravenous delivery. HELNs reduced lung wet/dry weight ratio, BALF protein, MPO and MDA levels, and histological injury scores; decreased neutrophils and CD4+/CD8+ T cells; increased alveolar macrophages and Tregs; and lowered TNF-α, IL-1β, IL-6. No significant systemic toxicity was observed. Conclusions: Nebulized HELNs offer a safe, effective, noninvasive ALI therapy by disrupting the oxidative stress-inflammation vicious cycles, reprogramming pulmonary immunity, and restoring barrier integrity, with strong translational potential.

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Publication Details

Journal
Pharmaceutics
Published
2026-09-29
DOI
https://doi.org/10.3390/pharmaceutics18101235
Primary Topic
Extracellular vesicles in disease
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article
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article

Inhalable Plant Exosome-like Nanoparticles from Houttuynia cordata Ameliorate Acute Lung Injury via Redox Modulation and Immune Reprogramming

Jincheng Zeng, Long Qiu, Zhengjie Zhou, Daxiang Cui et al.
Pharmaceutics
Extracellular vesicles in disease
article

Inhalable Plant Exosome-like Nanoparticles from Houttuynia cordata Ameliorate Acute Lung Injury via Redox Modulation and Immune Reprogramming

Jincheng Zeng, Long Qiu, Zhengjie Zhou, Daxiang Cui, Menglei Zha, Zhang Bao, Ting Yin, Yanlei Liu, Junjian Hu, Shichen Huang, Lijuan Xu
article en

Abstract

Background: Acute lung injury (ALI) features oxidative stress, macrophage dysfunction, and barrier disruption, with limited safe therapies. Plant-derived exosome-like nanovesicles (PENs) delivered noninvasively to the lung are promising but understudied. Methods: In vitro, HELNs were evaluated for their ability to scavenge ROS, restore mitochondrial membrane potential (MMP) modulate M1/M2 polarization, and suppress pro-inflammatory cytokines. RNA-seq was also used to evaluate the TNF/NOD-like pathway and mitochondrial-related gene expression. In vivo, the evaluated parameters included biodistribution, therapeutic outcomes (lung wet/dry weight ratio, BALF protein concentration, MPO and MDA levels, histology), immune cell profiles, and cytokines. Biosafety was assessed via hematology, serum biochemistry, and histology. Results: In vitro, HELNs acted dose-dependently by scavenging ROS, recovering MMP, promoting M2 and suppressing M1 polarization, and reducing TNF-α, IL-6 release. Additionally, RNA-seq confirmed downregulation of TNF/NOD-like signals and regulated mitochondrial gene expression. In vivo, nebulized HELNs preferentially accumulated in inflamed lungs, with significantly higher pulmonary retention than intravenous delivery. HELNs reduced lung wet/dry weight ratio, BALF protein, MPO and MDA levels, and histological injury scores; decreased neutrophils and CD4+/CD8+ T cells; increased alveolar macrophages and Tregs; and lowered TNF-α, IL-1β, IL-6. No significant systemic toxicity was observed. Conclusions: Nebulized HELNs offer a safe, effective, noninvasive ALI therapy by disrupting the oxidative stress-inflammation vicious cycles, reprogramming pulmonary immunity, and restoring barrier integrity, with strong translational potential.

PharmaceuticsVol. 18(10)
Guangdong Medical College (CN), Dongguan University of Technology (CN), Key Laboratory of Guangdong Province (CN), Dongguan People’s Hospital (CN)
Good health and well-being
Openalex Percentile: Top 20%
Extracellular vesicles in disease
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