A common pathway controls cell size in the sepal and leaf epidermis leading to a non-random pattern of giant cells
Clark, F. K.; Weissbart, G.; Wang, X.; Harline, K.; Li, C.-B.; Formosa-Jordan, P.; Roeder, A. H. K.
Show abstract
Arabidopsis leaf epidermal cells have a wide range of sizes and ploidies, but the mechanisms patterning their size and spatial distribution remain unclear. Here, we show that the same genetic pathway creating giant cells in sepals also regulates cell size in the leaf epidermis, leading to the formation of giant cells. In both sepals and leaves, giant cells are scattered among smaller cells; therefore, we asked whether their spatial arrangement is random. By comparing sepal and leaf epidermises with computationally generated randomized tissues we show that the giant cell pattern becomes less random across the epidermis as the cells surrounding giant cells divide, leading to clustered patterns in mature tissues. Our cell-autonomous and stochastic computational model reproduces the giant cell organization, suggesting that random giant cell initiation together with the divisions of surrounding cells lead to the observed clustered pattern. These findings reveal that cell-size patterning is developmentally regulated by common mechanisms in leaves and sepals, and the spatial pattern of giant cells emerges from the interplay between stochastic cell- autonomous gene expression and tissue growth.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- High-order mutants reveal an essential requirement for peroxidases but not laccases in Casparian strip lignification 96%
- The GPAT4/6/8 clade functions in Arabidopsis root suberization non-redundantly with the GPAT5/7 clade required for suberin lamellae 96%
- Suberin plasticity to developmental and exogenous cues is regulated by a set of MYB transcription factors 96%
Similar papers in this journal
Similar papers in this journal
- Two subtypes of GTPase-activating proteins coordinate tip growth and cell size regulation in Physcomitrium patens 95%
- Mechanodetection of neighbor plants elicits adaptive leaf movements through calcium dynamics 94%
- A hierarchical transcriptional network activates specific CDK inhibitors that regulate G2 to control cell size and number in Arabidopsis 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.