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Updated: Oct 2, 2025

Generation of 3D Whole Lung Organoids from Induced Pluripotent Stem Cells for Modeling Lung Developmental Biology and Disease
Published on: April 12, 2021
Organoid technology and lung injury mouse models evaluating effects of hydroxychloroquine on lung epithelial
Fuxiaonan Zhao1, Jianhai Wang1,2, Qi Wang3
1Department of Basic Medicine, Haihe Clinical School, Tianjin Medical University, No. 890 Jingu Road, Shuanggang Town, Jinnan District, Tianjin 300350, P.R. China.
Abstract:
Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) damages lung epithelial stem/progenitor cells. Ideal anti-SARS-CoV-2 drug candidates should be screened to prevent secondary injury to the lungs. Here, we propose that in vitro three-dimensional organoid and lung injury repair mouse models are powerful models for the screening antiviral drugs. Lung epithelial progenitor cells, including airway club cells and alveolar type 2 (AT2) cells, were co-cultured with supportive fibroblast cells in transwell inserts. The organoid model was used to evaluate the possible effects of hydroxychloroquine, which is administered as a symptomatic therapy to the coronavirus disease 2019 (COVID-19) patients, on the function of mouse lung stem/progenitor cells. Hydroxychloroquine was observed to promote the self-renewal of club cells and differentiation of ciliated and goblet cells in vitro. Additionally, it inhibited the self-renewal ability of AT2 cells in vitro. Naphthalene- or bleomycin-induced lung injury repair mouse models were used to investigate the in vivo effects of hydroxychloroquine on the regeneration of club and AT2 cells, respectively. The naphthalene model indicated that the proliferative ability and differentiation potential of club cells were unaffected in the presence of hydroxychloroquine. The bleomycin model suggested that hydroxychloroquine had a limited effect on the proliferation and differentiation abilities of AT2 cells. These findings suggest that hydroxychloroquine has limited effects on the regenerative ability of epithelial stem/progenitor cells. Thus, stem/progenitor cell-derived organoid technology and lung epithelial injury repair mouse models provide a powerful platform for drug screening, which could possibly help end the pandemic.
Insights
Hydroxychloroquine shows limited effects on lung stem cell regeneration in organoid and mouse models. These models are powerful tools for screening antiviral drugs to prevent lung injury from SARS-CoV-2.
Area of Science:
- Pulmonary Medicine
- Regenerative Medicine
- Pharmacology
Background:
- Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) infection causes lung epithelial stem/progenitor cell damage.
- Effective antiviral drug screening is crucial to prevent secondary lung injury.
- Hydroxychloroquine has been used for symptomatic treatment of coronavirus disease 2019 (COVID-19).
Purpose of the Study:
- To evaluate the effects of hydroxychloroquine on lung epithelial stem/progenitor cell function.
- To assess the utility of in vitro organoid and in vivo mouse models for antiviral drug screening.
Main Methods:
- Co-culture of lung epithelial progenitor cells (club cells, AT2 cells) with fibroblasts in transwell inserts to create organoids.
- In vitro assessment of hydroxychloroquine's effects on self-renewal and differentiation of lung stem/progenitor cells.
- In vivo evaluation of hydroxychloroquine's impact on club and AT2 cell regeneration in naphthalene- and bleomycin-induced lung injury mouse models, respectively.
Main Results:
- In vitro, hydroxychloroquine promoted club cell self-renewal and differentiation but inhibited AT2 cell self-renewal.
- In vivo, hydroxychloroquine had minimal impact on club cell proliferation and differentiation in the naphthalene model.
- Hydroxychloroquine demonstrated limited effects on AT2 cell proliferation and differentiation in the bleomycin model.
Conclusions:
- Hydroxychloroquine exhibits limited effects on the regenerative capacity of lung epithelial stem/progenitor cells.
- Organoid technology and lung injury repair mouse models are effective platforms for screening antiviral drugs.
- These models may aid in developing strategies to combat viral pandemics and associated lung damage.

