Photo-induced changes in tissue stiffness alter epithelial budding morphogenesis in the embryonic lung
Peak, K. E.; Rajaguru, P.; Khan, A.; Gleghorn, J. P.; Obaid, G.; Ferruzzi, J.; Varner, V. D.
Show abstract
Extracellular matrix (ECM) stiffness has been shown to influence the differentiation of progenitor cells in culture, but a lack of tools to perturb the mechanical properties within intact embryonic organs has made it difficult to determine how changes in tissue stiffness influence organ patterning and morphogenesis. Photocrosslinking of the ECM has been successfully used to stiffen soft tissues, such as the cornea and skin, which are optically accessible, but this technique has not yet been applied to developing embryos. Here, we use photocrosslinking with Rose Bengal (RB) to locally and ectopically stiffen the pulmonary mesenchyme of explanted embryonic lungs cultured ex vivo. This change in mechanical properties was sufficient to suppress FGF-10-mediated budding morphogenesis along the embryonic airway, without negatively impacting patterns of cell proliferation or apoptosis. A computational model of airway branching was used to determine that FGF-10-induced buds form via a growth-induced buckling mechanism and that increased mesenchymal stiffness is sufficient to inhibit epithelial buckling. Taken together, our data demonstrate that photocrosslinking can be used to create regional differences in mechanical properties within intact embryonic organs and that these differences influence epithelial morphogenesis and patterning. Further, this photocrosslinking assay can be readily adapted to other developing tissues and model systems.
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Directed biomechanical compressive forces enhance fusion efficiency in model placental trophoblast cultures 95%
- Epithelial layer unjamming shifts energy metabolism toward glycolysis 94%
- Computational 4D-OCM for label-free imaging of collective cell invasion and force-mediated deformations in collagen 94%
Similar papers in this journal
- Mechanophenotyping of 3D Multicellular Clusters using Displacement Arrays of Rendered Tractions 95%
- Mechanical coupling of supracellular stress amplification and tissue fluidization during exit from quiescence 95%
- Coupling During Collective Cell Migration is Controlled by a Vinculin Mechanochemical Switch 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.