Conditional blastocyst complementation of a defective Foxa2 lineage efficiently promotes the generation of the whole lung

Author:

Miura Akihiro12ORCID,Sarmah Hemanta1ORCID,Tanaka Junichi1,Hwang Youngmin1ORCID,Sawada Anri1,Shimamura Yuko1,Otoshi Takehiro1,Kondo Yuri1,Fang Yinshan1,Shimizu Dai1,Ninish Zurab1,Suer Jake Le34,Dubois Nicole C5,Davis Jennifer6,Toyooka Shinichi2,Wu Jun7ORCID,Que Jianwen1,Hawkins Finn J34,Lin Chyuan-Sheng8,Mori Munemasa1ORCID

Affiliation:

1. Columbia Center for Human Development and Division of Pulmonary, Allergy, Critical Care, Department of Medicine, Columbia University Medical Center

2. Department of Thoracic, Breast and Endocrinological Surgery, Okayama University Graduate School of Medicine, Dentistry and Pharmaceutical Sciences

3. The Pulmonary Center and Department of Medicine, Boston University School of Medicine

4. Center for Regenerative Medicine, Boston University and Boston Medical Center

5. Department of Cell, Developmental and Regenerative Biology, Icahn School of Medicine at Mount Sinai

6. Department of Pathology, University of Washington

7. Department of Molecular Biology, University of Texas Southwestern Medical Center

8. Bernard and Shirlee Brown Glaucoma Laboratory, Department of Pathology and Cell Biology, College of Physicians and Surgeons, Columbia University Irving Medical Center

Abstract

Millions suffer from incurable lung diseases, and the donor lung shortage hampers organ transplants. Generating the whole organ in conjunction with the thymus is a significant milestone for organ transplantation because the thymus is the central organ to educate immune cells. Using lineage-tracing mice and human pluripotent stem cell (PSC)-derived lung-directed differentiation, we revealed that gastrulating Foxa2 lineage contributed to both lung mesenchyme and epithelium formation. Interestingly, Foxa2 lineage-derived cells in the lung mesenchyme progressively increased and occupied more than half of the mesenchyme niche, including endothelial cells, during lung development. Foxa2 promoter-driven, conditional Fgfr2 gene depletion caused the lung and thymus agenesis phenotype in mice. Wild-type donor mouse PSCs injected into their blastocysts rescued this phenotype by complementing the Fgfr2-defective niche in the lung epithelium and mesenchyme and thymic epithelium. Donor cell is shown to replace the entire lung epithelial and robust mesenchymal niche during lung development, efficiently complementing the nearly entire lung niche. Importantly, those mice survived until adulthood with normal lung function. These results suggest that our Foxa2 lineage-based model is unique for the progressive mobilization of donor cells into both epithelial and mesenchymal lung niches and thymus generation, which can provide critical insights into studying lung transplantation post-transplantation shortly.

Funder

NHLBI Division of Intramural Research

U.S. Department of Defense

Japan Society for the Promotion of Science

The Uehara Memorial Foundation

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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