Using ex vivo bioengineered lungs to model pathologies and screening therapeutics: A proof‐of‐concept study

Author:

Ahmadipour Mohammadali123ORCID,Prado Jorge Castilo34,Hakak‐Zargar Benyamin2,Mahmood Malik Quasir2,Rogers Ian M.3456ORCID

Affiliation:

1. Institute of Biomedical Engineering University of Toronto Toronto Ontario Canada

2. School of Medicine, Faculty of Health Deakin University Geelong Victoria Australia

3. Lunenfeld‐Tanenbaum Research Institute, Mount Sinai Hospital Toronto Ontario Canada

4. Department of Physiology University of Toronto Toronto Ontario Canada

5. Department of Obstetrics and Gynecology University of Toronto Toronto Ontario Canada

6. Soham & Shaila Ajmera Family Transplant Centre, University Health Network Toronto Ontario Canada

Abstract

AbstractRespiratory diseases, claim over eight million lives annually. However, the transition from preclinical to clinical phases in research studies is often hindered, partly due to inadequate representation of preclinical models in clinical trials. To address this, we conducted a proof‐of‐concept study using an ex vivo model to identify lung pathologies and to screen therapeutics in a humanized rodent model. We extracted and decellularized mouse heart‐lung tissues using a detergent‐based technique. The lungs were then seeded and cultured with human cell lines (BEAS‐2B, A549, and Calu3) for 6−10 days, representing healthy lungs, cancerous states, and congenital pathologies, respectively. By manipulating cultural conditions and leveraging the unique characteristics of the cell lines, we successfully modeled various pathologies, including advanced‐stage solid tumors and the primary phase of SARS‐CoV‐2 infection. Validation was conducted through histology, immunofluorescence staining, and pathology analysis. Additionally, our study involved pathological screening of the efficacy and impact of key anti‐neoplastic therapeutics (Cisplatin and Wogonin) in cancer models. The results highlight the versatility and strength of the ex vivo model in representing crucial lung pathologies and screening therapeutics during the preclinical phase. This approach holds promise for bridging the gap between preclinical and clinical research, aiding in the development of effective treatments for respiratory diseases, including lung cancer.

Funder

Mitacs

Publisher

Wiley

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