| Literature DB >> 34927678 |
Nicholas M Negretti1, Erin J Plosa1, John T Benjamin1, Bryce A Schuler1, A Christian Habermann2, Christopher S Jetter1, Peter Gulleman1, Claire Bunn1, Alice N Hackett1, Meaghan Ransom1, Chase J Taylor2, David Nichols2, Brittany K Matlock3, Susan H Guttentag1, Timothy S Blackwell2,4,5, Nicholas E Banovich6, Jonathan A Kropski2,4,5, Jennifer M S Sucre1,4.
Abstract
Lung organogenesis requires precise timing and coordination to effect spatial organization and function of the parenchymal cells. To provide a systematic broad-based view of the mechanisms governing the dynamic alterations in parenchymal cells over crucial periods of development, we performed a single-cell RNA-sequencing time-series yielding 102,571 epithelial, endothelial and mesenchymal cells across nine time points from embryonic day 12 to postnatal day 14 in mice. Combining computational fate-likelihood prediction with RNA in situ hybridization and immunofluorescence, we explore lineage relationships during the saccular to alveolar stage transition. The utility of this publicly searchable atlas resource (www.sucrelab.org/lungcells) is exemplified by discoveries of the complexity of type 1 pneumocyte function and characterization of mesenchymal Wnt expression patterns during the saccular and alveolar stages - wherein major expansion of the gas-exchange surface occurs. We provide an integrated view of cellular dynamics in epithelial, endothelial and mesenchymal cell populations during lung organogenesis.Entities:
Keywords: Lung development; Mouse; Progenitor cells; RNA velocity; Single-cell transcriptomics; Type 1 pneumocyte
Mesh:
Year: 2021 PMID: 34927678 PMCID: PMC8722390 DOI: 10.1242/dev.199512
Source DB: PubMed Journal: Development ISSN: 0950-1991 Impact factor: 6.868