bioRxiv Science⌕ Search

Biology subjects

Minoo, P.

Publications and source records attributed to Minoo, P..

3 recordsLinked to original sources

FGF10 triggers de novo alveologenesis in a BPD model: impact on the resident mesenchymal niche cells

Bronchopulmonary dysplasia (BPD) is a neonatal lung disease developing in premature babies characterized by arrested alveologenesis and associated with decreased Fibroblast growth factor 10 (FGF10) expression. One-week hyperoxia (HYX) exposure of newborn mice leads to a permanent arrest in alveologenesis. To test the role of Fgf10 signaling to promote de novo alveologenesis following hyperoxia, we used transgenic mice allowing inducible expression of Fgf10 and recombinant FGF10 (rFGF10) protein delivered intraperitoneally. We carried out morphometry analysis, and IF on day 45. Alveolospheres assays were performed co-culturing AT2s from normoxia (NOX) with FACS-isolated Sca1Pos resident mesenchymal cells (rMC) from animals exposed to NOX, HYX+PBS, or HYX+FGF10. scRNAseq between rMC-Sca1Pos isolated from NOX and HYX+PBS were also carried out. Transgenic overexpression of Fgf10 and rFGF10 administration rescued the alveologenesis defects following HYX. Alveolosphere assays indicate that the activity of rMC-Sca1Pos is negatively impacted by HYX and partially rescued by rFGF10 treatment. Analysis by IF demonstrates a significant impact of rFGF10 on the activity of resident mesenchymal cells. scRNAseq results identified clusters expressing Fgf10, Fgf7, Pdgfra, and Axin2, which could represent the rMC niche cells for the AT2 stem cells. In conclusion, we demonstrate that rFGF10 administration is able to induce de-novo alveologenesis in a BPD mouse model and identified subpopulations of rMC-Sca1Pos niche cells potentially representing its cellular target.

cell biology↗

Decoding the IGF1 Signaling Gene Regulatory Network Behind Alveologenesis from A Mouse Model of Bronchopulmonary Dysplasia

Lung development is precisely controlled by underlying Gene Regulatory Networks (GRN). Disruption of genes in the network can interrupt normal development and cause diseases such as bronchopulmonary dysplasia (BPD)-a chronic lung disease in preterm infants with morbid and sometimes lethal consequences characterized by lung immaturity and reduced alveolarization. Here, we generated a transgenic mouse exhibiting a moderate severity BPD phenotype by blocking IGF1 signaling in secondary crest myofibroblasts (SCMF) at the onset of alveologenesis. Using approaches mirroring the construction of the model GRN in sea urchins development, we constructed the IGF1 signaling network underlying alveologenesis using this mouse model that phenocopies BPD. The constructed GRN, consisting of 43 genes, provides a birds-eye view of how the genes downstream of IGF1 are regulatorily connected. The GRN also reveals a mechanistic interpretation of how the effects of IGF1 signaling are transduced within SCMF from its specification genes to its effector genes and then from SCMF to its neighboring alveolar epithelial cells with WNT5A and FGF10 signaling as the bridge. Consistently, blocking WNT5A signaling in mice phenocopies BPD as inferred by the network. A comparative study on human samples suggests that a GRN of similar components and wiring underlies human BPD. Our network view of alveologenesis is transforming our perspective to understand and treat BPD. This new perspective calls for the construction of the full signaling GRN underlying alveologenesis, upon which targeted therapies for this neonatal chronic lung disease can be viably developed.

developmental biology↗

Identification a novel subset of alveolar type 2 cells expanding following pneumonectomy and enriched in PD-L1

Alveolar type 2 (AT2) cells are heterogeneous cells; where specialized AT2 subpopulations within this lineage exhibit stem cell properties. However, the existence of quiescent, immature cells within the AT2 lineage, which get activated during lung regeneration, is unknown. SftpcCreERT2/+; tdTomatoflox/flox mice were used for the labelling of AT2 cells and labeled subpopulations were analyzed by flow cytometry, qPCR, ATAC-seq, gene arrays, pneumonectomy, and culture of precision-cut lung slides. Human lungs from donor and IPF were also analyzed. In mice, we detected two distinct AT2 subpopulations with low tdTomato level (TomLow) and high tdTomato level (TomHigh). TomLow express lower level of AT2 differentiation markers, Fgfr2b and Etv5, while TomHigh, as bona fide mature AT2 cells, show higher level of Sftpc, Sftpb, Sftpa1, Fgfr2b, and Etv5. ATAC-seq analysis indicates that TomLow and TomHigh constitute two distinct cell populations with specific silencing of Sftpc, Rosa26 and cell cycle gene loci in TomLow. Upon pneumonectomy, TomLow but not TomHigh cells proliferate and upregulate the expression of Fgfr2b, Etv5, Sftpc, Ccnd1 and Ccnd2 compared to sham. TomLow cells overexpress PD-L1, an immune inhibitory membrane receptor ligand, which is used by flow cytometry to differentially isolate these two sub-populations. In the human lung, PD-L1 and HTII-280 antibodies are used by flow cytometry to differentially sort mature AT2 (HTII-280-high, PD-L1-low) as well as an additional subpopulation of epithelial cells characterized by HTII-280-Low and PD-L1-high. We have identified a novel population of AT2 quiescent immature progenitor cells in mouse that proliferate upon pneumonectomy and provided evidence for the existence of such cells in human. Significance of the workThe characterization and mechanism of the proliferation of a novel and relevant pool of AT2 progenitor cells for the repair/regeneration process after injury are critical to improving respiratory function in patients with lung disease.

cell biology↗