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Rouhani, M. J.

Publications and source records attributed to Rouhani, M. J..

3 recordsLinked to original sources

Podoplanin expression identifies human airway basal cells with higher progenitor cell potential

Basal cells are key to maintaining and repairing a functioning airway epithelium. Understanding how basal cells maintain normal airways provides a foundation for interpreting their dysfunction in disease states and for the development of novel therapies. The airway epithelium exists in a dynamic state in which basal stem cells replace lost luminal mucosecretory and multiciliated cell types via an intermediate suprabasal cell state. The ability to isolate basal cells with high progenitor cell potential would be beneficial in regenerative medicine applications, but the molecular identity of this population is unclear. Here, we evaluate candidate surface markers to isolate human basal cells. As an individual marker, we found that podoplanin (PDPN) had a favorable sensitivity and specificity compared with integrin alpha 6 (ITGA6) or nerve growth factor receptor (NGFR). We found that KRT5-expressing basal cells could be subdivided into those with high or low PDPN expression; KRT5-negative cells did not express PDPN. In vitro, PDPN-high basal cells had higher colony-forming capacity, increased population doubling potential and formed larger colonies than PDPN-low basal cells. PDPN-high basal cells expressed higher levels of TP63, as well as other genes expressed by quiescent or resting basal cells identified in single cell RNA sequencing studies. PDPN-low basal cells expressed genes associated with a differentiating basal cell state, including KRT4, NOTCH3 and serpin B family genes. Our results demonstrate that PDPN expression can identify basal cells with high progenitor cell potential, enabling high efficiency sorting of airway stem cells.

cell biology↗

WS6 enables scalable ex vivo expansion and gene editing of epithelial basal stem cells

Modeling human epithelial diseases and developing cell-based therapies require robust methods to expand and manipulate epithelial stem and progenitor cells in vitro. Basal stem/progenitor cells from stratified epithelia can be expanded in 3T3-J2 fibroblast feeder cell co-culture systems, and the addition of the ROCK inhibitor Y-27632 enhances proliferation and culture longevity, a phenomenon described as conditional reprogramming. Here, we present a method incorporating the small molecule WS6 to further improve the proliferation and lifespan of cultured epithelial cells from multiple tissues, including airway, skin, and thymus. Cells maintained in this medium ( EpMED; FAD+Y+WS6) retain basal stem/progenitor cell identity and function, including the capacity to differentiate. We demonstrate their capacity to engraft in vivo in a tracheal transplantation model. In a second application, we generate clonal CRISPR-Cas9 genome edited nasal cultures, introducing targeted knockouts of DNAH5 or DNAI2 to create primary ciliary dyskinesia disease models. We anticipate that our method will have broad applications in epithelial cell biology, disease modeling, and regenerative medicine, while reducing reliance on immortalized or cancer cell lines and animal experimentation.

cell biology↗

Airway injury induces alveolar epithelial and mesenchymal responses mediated by macrophages

Airway injury activates local progenitors and stimulates cell-cell interactions to restore homeostasis, but it is unknown how distal niches are impacted. We utilized mouse models of airway-specific epithelial injury to examine secondary tissue-wide alveolar and immune responses. Single-cell transcriptomics and in vivo validation of mouse models of airway-specific epithelial injury revealed transient, tissue-wide proliferation of alveolar type 2 (AT2) progenitor cells after club cell-specific injury or ablation. Myeloid cells exhibited altered gene expression after club cell loss and were detectable in the bronchoalveolar lavage fluid. The AT2 cell proliferative response was reliant on alveolar macrophages (AMs) exhibiting an injury-induced gene expression program. Overall, these results demonstrate that acute airway damage can trigger myeloid-mediated lung alveolar responses that may contribute to disease susceptibility or dysfunction.

cell biology↗