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Mouginot, M.

Publications and source records attributed to Mouginot, M..

3 recordsLinked to original sources

Patterns of molecular conservation along tooth development are only partly shaped by evolutionary pressures on tooth

Although it is well established that certain stages of development are molecularly 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 the cause of conservation of expression and of coding sequences changes over molar development. Gene expression levels display a classical increase of divergence as development progresses. In terms of genes expressed, the composition of early and late stages is better conserved and enriched in pleiotropic genes, yet each stage mobilizes different sets of pleiotropic genes, cell division for bud growth and secretion for tooth mineralization. Moreover similar patterns of higher divergence of gene sets and of coding sequences at mid development, are caused by different biological phenomena, in that case heterochronies and blood colonisation respectively. In conclusion, the patterns of molecular conservation in developing molars are shaped by a combination of processes intrinsic to the teeth, and by negative and positive selection on functions which are mostly extrinsic to the teeth. This is likely translatable to explain molecular conservation patterns in many other biological systems. AUTHOR SUMMARYFor species to evolve different adaptations to different life styles, their anatomy has to evolve correspondingly. This in turn implies evolution of the embryonic development of anatomical structures. Notably, tooth shape can evolve rapidly as an adaptation to different diets. Mice and hamsters are closely related rodents who yet differ in the shape of their molars, and thus in their development. In this study, we investigated why the genes active in molar development are more or less similar between the two species from early tooth bud to fully formed embryo molar. We found that early and late molar development were slow evolving, while mid-development was evolving faster. But surprisingly, this was in part due not to tooth evolution, but to the involvement of genes which are active in other processes in the body. For example an influx of immune cells also brings fast evolving immune genes. This helps us understand better the complexity of causes of apparently simple evolutionary patterns.

evolutionary biology↗

Inverse hourglass pattern of conservation in rodent molar development.

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.

evolutionary biology↗

Convergent transcriptomic and genomic adaptation in xeric rodents

Repeated adaptations rely in part on convergent genetic changes. The extent of convergent changes at the genomic scale is debated and may depend on the interplay between different factors. Rodents have repeatedly adapted to life in arid conditions, notably with altered renal morphology and physiology. This occurred at different time periods, allowing us to test the importance of time in convergent genomic evolution. We analyzed kidney transcriptomes from 34 species to quantify and characterize convergent evolution at the level of gene expression, tissue composition, and coding sequences. We found that several genes showed convergent expression changes, some of which also carried convergent changes in their coding sequence. We then subdivided these data to test the influence of evolutionary history. First, within the subfamily Murinae, we found more convergent gene expression, reflecting convergent changes in cell proportions. Second, we compared data for recent (within genera) and ancient (between genera) adaptations, and observed more convergent changes in the latter. Our study shows that adaptation to xeric environments in rodents involves repeated changes in tissue composition, gene expression and coding sequences, and that the degree of convergent evolution increases with both the age of the adaptations and species relatedness.

evolutionary biology↗