TY - CHAP
T1 - Multipotent Embryonic Lung Progenitors
T2 - Foundational Units of In Vitro and In Vivo Lung Organogenesis
AU - Ikonomou, Laertis
AU - Yampolskaya, Maria
AU - Mehta, Pankaj
N1 - Publisher Copyright:
© 2023, The Author(s), under exclusive license to Springer Nature Switzerland AG.
PY - 2023
Y1 - 2023
N2 - Transient, tissue-specific, embryonic progenitors are important cell populations in vertebrate development. In the course of respiratory system development, multipotent mesenchymal and epithelial progenitors drive the diversification of fates that results to the plethora of cell types that compose the airways and alveolar space of the adult lungs. Use of mouse genetic models, including lineage tracing and loss-of-function studies, has elucidated signaling pathways that guide proliferation and differentiation of embryonic lung progenitors as well as transcription factors that underlie lung progenitor identity. Furthermore, pluripotent stem cell-derived and ex vivo expanded respiratory progenitors offer novel, tractable, high-fidelity systems that allow for mechanistic studies of cell fate decisions and developmental processes. As our understanding of embryonic progenitor biology deepens, we move closer to the goal of in vitro lung organogenesis and resulting applications in developmental biology and medicine.
AB - Transient, tissue-specific, embryonic progenitors are important cell populations in vertebrate development. In the course of respiratory system development, multipotent mesenchymal and epithelial progenitors drive the diversification of fates that results to the plethora of cell types that compose the airways and alveolar space of the adult lungs. Use of mouse genetic models, including lineage tracing and loss-of-function studies, has elucidated signaling pathways that guide proliferation and differentiation of embryonic lung progenitors as well as transcription factors that underlie lung progenitor identity. Furthermore, pluripotent stem cell-derived and ex vivo expanded respiratory progenitors offer novel, tractable, high-fidelity systems that allow for mechanistic studies of cell fate decisions and developmental processes. As our understanding of embryonic progenitor biology deepens, we move closer to the goal of in vitro lung organogenesis and resulting applications in developmental biology and medicine.
KW - Cell date decisions
KW - Cell similarity scores
KW - Embryonic lung progenitors
KW - Gene regulatory networks
KW - Organoid culture
UR - https://www.scopus.com/pages/publications/85159761322
U2 - 10.1007/978-3-031-26625-6_4
DO - 10.1007/978-3-031-26625-6_4
M3 - Chapter
C2 - 37195526
AN - SCOPUS:85159761322
T3 - Advances in Experimental Medicine and Biology
SP - 49
EP - 70
BT - Advances in Experimental Medicine and Biology
PB - Springer
ER -