Inverse hourglass pattern of conservation in rodent molar development.
Ganofsky, J.; Estevez-Villar, M.; Mouginot, M.; Moretti, S.; Nyamari, M.; Robinson-Rechavi, M.; Semon, M.; Pantalacci, S.
Show abstract
Although it is well established that certain stages of development are more conserved than others, the reasons for this phenomenon remain largely unknown. We study molecular conservation in the development of an organ, the molar, by comparing the temporal profiles of expression in mice and hamsters. We find that molar development is characterized by a rarely observed pattern of conservation of expression level and coding sequences forming an inverse hourglass, with more conservation at the beginning and end of morphogenesis than at intermediate stages. As the development of the rodent molar is well described, we were able to link this pattern to the properties of the expressed genes and the activity of different developmental processes. Early and late stages mobilize different sets of pleiotropic genes, cell division for bud growth and secretion for tooth mineralization. The particularities of dental morphogenesis and homeostasis, with the degradation of certain tissues at the end of development and the hosting of immune cells, as well as heterochronies linked to adaptations, also probably contribute to the pattern. Our study of the different actors explains the inverted hourglass of molars by a combination of processes intrinsic to the teeth, and by negative and positive selection which is mostly extrinsic to the teeth. This is likely translatable to explain molecular conservation patterns in many other biological systems.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Single molecule imaging and modelling of mRNA decay dynamics in the Drosophila embryo 94%
- Comparative gene annotation and orthology assignments across 301 species of Drosophilidae 94%
- Krüppel-like factor 4 is required for development and regeneration of germline and yolk cells from somatic stem cells in planarians 93%
Similar papers in this journal
"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.