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An in vivo model for extracellular vesicle–induced emphysema
Camilla Margaroli, Matthew C. Madison, Liliana Viera, Derek W. Russell, Amit Gaggar, Kristopher R. Genschmer, J. Edwin Blalock
Camilla Margaroli, Matthew C. Madison, Liliana Viera, Derek W. Russell, Amit Gaggar, Kristopher R. Genschmer, J. Edwin Blalock
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Research Article Pulmonology

An in vivo model for extracellular vesicle–induced emphysema

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Abstract

Chronic obstructive pulmonary disease (COPD) is a debilitating chronic disease and the third-leading cause of mortality worldwide. It is characterized by airway neutrophilia, promoting tissue injury through release of toxic mediators and proteases. Recently, it has been shown that neutrophil-derived extracellular vesicles (EVs) from lungs of patients with COPD can cause a neutrophil elastase–dependent (NE-dependent) COPD-like disease upon transfer to mouse airways. However, in vivo preclinical models elucidating the impact of EVs on disease are lacking, delaying opportunities for therapeutic testing. Here, we developed an in vivo preclinical mouse model of lung EV–induced COPD. EVs from in vivo LPS-activated mouse neutrophils induced COPD-like disease in naive recipients through an α-1 antitrypsin–resistant, NE-dependent mechanism. Together, these results show a key pathogenic and mechanistic role for neutrophil-derived EVs in a mouse model of COPD. Broadly, the in vivo model described herein could be leveraged to develop targeted therapies for severe lung disease.

Authors

Camilla Margaroli, Matthew C. Madison, Liliana Viera, Derek W. Russell, Amit Gaggar, Kristopher R. Genschmer, J. Edwin Blalock

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Figure 2

LPS-treated airway EVs induce alveolar damage in naive recipient mice.

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LPS-treated airway EVs induce alveolar damage in naive recipient mice.
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(A) EVs were transferred i.t. into 11-week-old female A/J mice. Mice received 108, 107, 106, or 105 EVs in a single dose over 1 week. (B) Lm were quantified 1 week from the initial treatment (n = 5 per group). (C) Representative images (H&E) of EV-treated mice (LPS and saline). Scale bars: 100 μm. (D) EVs were transferred i.t. into 11-week-old female C57BL/6 mice. Mice received 108, 107, 106, or 105 EVs in a single dose over 1 week. (E) Lm were quantified 1 week from the initial treatment (n = 5 per group). (F) Representative images (H&E) of EV-treated mice (LPS and saline). Scale bars: 100 μm. Data are shown as median and IQR (representative of 2 independent experiments). Statistical analyses were performed using Wilcoxon’s signed-rank test; **P < 0.01.

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