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Biology subjects

Hein, R. F. C.

Publications and source records attributed to Hein, R. F. C..

3 recordsLinked to original sources

Distinct airway progenitor cells drive epithelial heterogeneity in the developing human lung

Recent advances using single cell genomic approaches have identified new epithelial cell types and uncovered cellular heterogeneity in the murine and human lung (1). Here, using scRNA-seq and microscopy we identify and describe a secretory-like cell that is enriched in the small airways of the developing human lung and identified by the unique co-expression of SCGB3A2/SFTPB/CFTR. To place these cells in the hierarchy of airway development, we apply a single cell barcode-based lineage tracing method track the fate of SCGB3A2/SFTPB/CFTR cells during airway organoid differentiation in vitro (2). Lineage tracing revealed that these cells have distinct developmental potential from basal cells, giving rise predominantly to pulmonary neuroendocrine cells (PNECs) and a subset of multiciliated cells distinguished by high C6 and low MUC16 expression. We conclude that SCGB3A2/SFTPB/CFTR cells act as a progenitor cell contributing to the cellular diversity and heterogeneity in the developing human airway. SIGNIFICANCE STATEMENTThe current study identifies a novel secretory cell type that is present predominantly in the small airway of the developing human lung. These secretory cells are defined by co-expression of SCGB3A2/SFTPB/CFTR, and functional studies show that this cell gives rise to pulmonary neuroendocrine cells and a sub-population of multiciliated cells, thereby leading to cellular heterogeneity.

developmental biology↗

Stable iPSC-derived NKX2-1+ Lung Bud Tip Progenitor Organoids Give Rise to Airway and Alveolar Cell Types

Bud tip progenitors (BTPs) in the developing lung give rise to all epithelial cell types found in the airways and alveoli. The current work aimed to develop an iPSC organoid model enriched with stable NKX2-1+ BTP-like cells. Building on prior work, we optimized a directed differentiation paradigm to generate spheroids with robust NKX2-1 expression. Spheroids were expanded into organoids that possessed NKX2-1+/CPM+ BTP-like cells, which increased in number over time. Single cell RNA-sequencing analysis revealed a high degree of transcriptional similarity between induced BTPs (iBTPs) and in vivo BTPs. Using FACS, iBTPs can be purified and expanded as induced bud tip organoids (iBTO), which maintain an enriched population of bud tip progenitors. When iBTOs are directed to differentiate into airway or alveolar cell types using well-established methods, they give rise to organoids composed of organized airway or alveolar epithelium, respectively. Collectively, iBTOs are transcriptionally and functionally similar to in vivo BTPs, providing an important model to study human lung development and differentiation. SUMMARY STATEMENTiPSC-derived lung bud tip progenitors emerge in organoid culture, can be isolated and expanded, are transcriptionally similar to primary bud tip progenitors, and can differentiate into airway or alveolar organoids.

developmental biology↗

R-SPONDIN2+ Mesenchymal Cells Form the Bud Tip Progenitor Niche During Human Lung Development

Mammalian respiratory system development is regulated by complex reciprocal signaling events that take place between epithelial cells and the surrounding mesenchymal cells; however, mesenchymal heterogeneity and function in the developing human lung is poorly understood. We interrogated single cell RNA sequencing data from multiple human lung specimens and identified a mesenchymal cell population present during development that is highly enriched for expression of the WNT agonist R-SPONDIN2 (RSPO2), and we found that adjacent epithelial bud tip progenitors are enriched for the RSPO2 receptor LGR5. By carrying out functional experiments using organoid models, lung explant cultures, and FACS-isolated RSPO2+ mesenchyme, we show that RSPO2 is a critical niche cue that potentiates WNT signaling in human lung progenitors to maintain their multipotency.

developmental biology↗