Endowing Flexibility of Alveolar Type II Cells to Recapitulate Development From Lung Bud to Alveoli

Alveolar type 2 (AT2) cells, which originate from bud tip progenitors during lung development, maintain pulmonary homeostasis through surfactant secretion and regenerative capacity, yet their plasticity has been challenging to model in vitro, limiting their applications in disease modeling and regenerative therapy. Here, a chemically defined reprogramming strategy is developed that enables efficient conversion of adult human AT2 cells into a highly expandable alveolar progenitor-like state that, at late passages, closely resembles primitive lung bud tip epithelium. These progenitor cells robustly self-organize into three-dimensional alveolar progenitor-like organoids (APLOs), which can be further efficiently differentiated into mature alveolar-like organoids (ALOs). In vitro, ALOs serve as a physiologically relevant platform for modeling influenza A virus (IAV) infection and mounting innate immune responses characterized by interferon signaling, thereby enabling mechanistic studies of viral pathogenesis and host defense. In vivo, following intratracheal transplantation into lung-injured mice, APLO-derived cells exhibit stable engraftment and differentiate into alveolar epithelial lineages, leading to improvement in pulmonary function. In summary, this study establishes an adult-derived, expandable alveolar progenitor platform generated through chemical reprogramming that recapitulates key aspects of alveolar development, disease modeling, and regenerative potential.

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Publication Details

Journal
Advanced Science
Published
2026-10-04
DOI
https://doi.org/10.1002/advs.77773
Primary Topic
Neonatal Respiratory Health Research
Type
article
Field-Weighted Citation Impact
0.00

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article

Endowing Flexibility of Alveolar Type II Cells to Recapitulate Development From Lung Bud to Alveoli

He‐Xin Yan, Han Wu, Weijian Huang, Xinling Wang et al.
Advanced Science
Neonatal Respiratory Health Research
article

Endowing Flexibility of Alveolar Type II Cells to Recapitulate Development From Lung Bud to Alveoli

He‐Xin Yan, Han Wu, Weijian Huang, Xinling Wang, Caiyang Chen, Xiaoyan Jin, Wenming Liu, Weifeng Yu, Yuxin Zhang, Feihan Yan, Shenao Zhou, Lujia Sun, Yonghong Yin, Xu Zhou, Fan Li, Qiuqiu Zhang, Hong Jiang, Hongqian Ma, Mengting Wang
article en

Abstract

Alveolar type 2 (AT2) cells, which originate from bud tip progenitors during lung development, maintain pulmonary homeostasis through surfactant secretion and regenerative capacity, yet their plasticity has been challenging to model in vitro, limiting their applications in disease modeling and regenerative therapy. Here, a chemically defined reprogramming strategy is developed that enables efficient conversion of adult human AT2 cells into a highly expandable alveolar progenitor-like state that, at late passages, closely resembles primitive lung bud tip epithelium. These progenitor cells robustly self-organize into three-dimensional alveolar progenitor-like organoids (APLOs), which can be further efficiently differentiated into mature alveolar-like organoids (ALOs). In vitro, ALOs serve as a physiologically relevant platform for modeling influenza A virus (IAV) infection and mounting innate immune responses characterized by interferon signaling, thereby enabling mechanistic studies of viral pathogenesis and host defense. In vivo, following intratracheal transplantation into lung-injured mice, APLO-derived cells exhibit stable engraftment and differentiate into alveolar epithelial lineages, leading to improvement in pulmonary function. In summary, this study establishes an adult-derived, expandable alveolar progenitor platform generated through chemical reprogramming that recapitulates key aspects of alveolar development, disease modeling, and regenerative potential.

Advanced Science
Shanghai Medical College of Fudan University (CN), Second Military Medical University (CN), Renji Hospital (CN), Shanghai CASB Biotechnology (China) (CN), Eastern Hepatobiliary Surgery Hospital (CN), People's Liberation Army 411 Hospital (CN), Shanghai Cell Therapy Research Institute (CN), Duke Kunshan University (CN)
National Natural Science Foundation of China, Science and Technology Commission of Shanghai Municipality, National Key Research and Development Program of China, Fundamental Research Funds for the Central Universities
Good health and well-being
Openalex Percentile: Top 12%
Neonatal Respiratory Health Research
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