Indocyanine-enhanced mouse model of bleomycin-induced lung fibrosis with hallmarks of progressive emphysema

Author:

Grandi Andrea1,Ferrini Erica2ORCID,Mecozzi Laura3,Ciccimarra Roberta2ORCID,Zoboli Matteo2,Leo Ludovica3,Khalajzeyqami Zahra4ORCID,Kleinjan Alex5ORCID,Löwik Clemens W. G. M.6ORCID,Donofrio Gaetano2,Villetti Gino1,Stellari Franco Fabio1ORCID

Affiliation:

1. Chiesi Farmaceutici S.p.A., Corporate Pre-Clinical R&D, Parma, Italy

2. Department of Veterinary Science, University of Parma, Parma, Italy

3. Department of Medicine and Surgery, University of Parma, Parma, Italy

4. Department of Veterinary Medical Sciences, University of Bologna, Bologna, Italy

5. Department of Pulmonary Medicine, Erasmus University Medical Center, Rotterdam, The Netherlands

6. Department of Radiology and Nuclear Medicine, Erasmus University Medical Center, Rotterdam, The Netherlands

Abstract

The development of new drugs for idiopathic pulmonary fibrosis strongly relies on preclinical experimentation, which requires the continuous improvement of animal models and integration with in vivo imaging data. Here, we investigated the lung distribution of bleomycin (BLM) associated with the indocyanine green (ICG) dye by fluorescence imaging. A long-lasting lung retention (up to 21 days) was observed upon oropharyngeal aspiration (OA) of either ICG or BLM + ICG, with significantly more severe pulmonary fibrosis, accompanied by the progressive appearance of emphysema-like features, uniquely associated with the latter combination. More severe and persistent lung fibrosis, together with a progressive air space enlargement uniquely associated with the BLM + ICG group, was confirmed by longitudinal micro-computed tomography (CT) and histological analyses. Multiple inflammation and fibrosis biomarkers were found to be increased in the bronchoalveolar lavage fluid of BLM- and BLM + ICG-treated animals, but with a clear trend toward a much stronger increase in the latter group. Similarly, in vitro assays performed on macrophage and epithelial cell lines revealed a significantly more marked cytotoxicity in the case of BLM + ICG-treated mice. Also unique to this group was the synergistic upregulation of apoptotic markers both in lung sections and cell lines. Although the exact mechanism underlying the more intense lung fibrosis phenotype with emphysema-like features induced by BLM + ICG remains to be elucidated, we believe that this combination treatment, whose overall effects more closely resemble the human disease, represents a valuable alternative model for studying fibrosis development and for the identification of new antifibrotic compounds.

Funder

Chiesi Farmaceutici

Publisher

American Physiological Society

Subject

Cell Biology,Physiology (medical),Pulmonary and Respiratory Medicine,Physiology

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