Search bioRxiv⌕ Search

Biology subjects

Sarrazin, A. F.

Publications and source records attributed to Sarrazin, A. F..

2 recordsLinked to original sources

Wnt and Fgf signaling pharmacological inhibition affect posterior growth during Tribolium castaneum germband elongation

Axial elongation and sequential segmentation are developmental processes that occur simultaneously and are highly conserved in vertebrates and most arthropods. These features rely on the dynamic expression of a genetic network that establishes the segmented patterning and regulates various cellular behaviors, including tissue rearrangements and cell divisions. In vertebrates, Wnt and Fgf signaling are essential for these processes. While some studies in arthropods have linked these pathways to segmentation, there is still much to discuss regarding their regulatory role in cellular processes. In this study, we pharmacologically inhibited Wnt and Fgf signaling pathways by exposing developing Tribolium castaneum embryos to IWP-3 and SU5402, respectively. We observed that both treatments resulted in a shortening of the embryos and a decrease in the number of cell divisions during a period characterized by high proliferation rates. Although the segmented patterning was not disrupted, the segments were smaller in the embryos treated with the Fgf inhibitor than in the controls. Additionally, time-lapse imaging revealed that cell movement along the anteroposterior axis was affected in the IWP-3-treated embryos. In contrast, Fgf inhibition primarily altered the direction of cell movements at the posterior end of the embryo. Our findings provide insight into the roles of Wnt and Fgf signaling pathways in regulating significant cellular behaviors during the posterior growth of Tribolium and possibly other arthropods.

developmental biology↗

Sox2 and Sox3 are essential for development and regeneration of the zebrafish lateral line

The recovery of injured or lost sensory neurons after trauma, disease or aging is a major scientific challenge. Upon hearing loss or balance disorder, regeneration of mechanosensory hair cells has been observed in fish, some amphibians and under special circumstances in birds, but is absent in adult mammals. In aquatic vertebrates, hair cells are not only present in the inner ear but also in neuromasts of the lateral line system. The zebrafish lateral line neuromast has an almost unlimited capacity to regenerate hair cells. This remarkable ability is possible due to the presence of neural stem/progenitor cells within neuromasts. In order to further characterize these stem cells, we use the expression of the neural progenitor markers Sox2 and Sox3, transgenic reporter lines, and morphological and topological analysis of the different cell types within the neuromast. We reveal new sub-populations of supporting cells, the sustentacular supporting cells and the neuromast stem cells. In addition, using loss-of-function and mutants of sox2 and sox3, we find that the combined activity of both genes is essential for lateral line development and regeneration. The capability of sox2/sox3 expressing stem cells to produce new hair cells, hair cell-precursors, and supporting cells after damage was analyzed in detail by time-lapse microscopy and immunofluorescence. We are able to provide evidence that sox2/3 expressing cells are the main contributors to the regenerated neuromast, and that their daughter cells are able to differentiate into most cell types of the neuromast.

developmental biology↗