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Chesneau, A.

Publications and source records attributed to Chesneau, A..

3 recordsLinked to original sources

Regeneration from three cellular sources and ectopic mini-retina formation upon neurotoxic retinal degeneration in Xenopus

Regenerative abilities are not evenly distributed across the animal kingdom. Interestingly, the underlying modalities are also highly variable, even among closely related species. In fish or amphibians, retinal repair can involve the mobilization of different cellular sources, including stem cells of the ciliary marginal zone (CMZ), retinal pigmented epithelial (RPE) cells, or Muller glia. The mechanisms that trigger the recruitment of one cell type over another remain elusive. To investigate whether the magnitude of retinal damage might influence the regeneration modality of the Xenopus retina, we developed a model based on cobalt chloride (CoCl2) intraocular injection, allowing for a dose-dependent control of cell death extent. Analyses in Xenopus laevis revealed that limited CoCl2-mediated neurotoxicity only triggers cone cell loss and results in a few Muller glia cells reentering the cell cycle, without affecting CMZ cell activity or recruiting RPE cells. Conversely, we found that severe CoCl2-induced retinal degeneration not only potentializes the proliferative response of Muller cells, but also enhances CMZ cell proliferation and, unexpectedly triggers an RPE reprogramming event. Although Muller glia could not regenerate cones under these conditions, both CMZ and RPE-derived proliferative cells could. Strikingly, RPE reprogrammed cells self-organized into an ectopic layered mini retina-like structure laid on top of the original retina. It is thus likely that the injury paradigm determines the awakening of different stem-like cell populations exhibiting distinct neurogenic capacities. Besides, we surprisingly found that Xenopus tropicalis also has the ability to recruit Muller cells and reprogram its RPE following CoCl2-induced damage, whereas only CMZ cell proliferation was reported in previously examined degenerative models. Altogether, these findings highlight the critical role of the injury paradigm and reveal that three cellular sources can be reactivated in the very same degenerative model.

developmental biology↗

Hnf1b renal expression directed by a distal enhancer responsive to Pax8

Xenopus provides a simple and efficient model system to study nephrogenesis and explore the mechanisms causing renal developmental defects in human. Hnf1b (hepatocyte nuclear factor 1 homeobox b), a gene whose mutations are the most commonly identified genetic cause of developmental kidney disease, is required for the acquisition of a proximo-intermediate nephron segment in Xenopus as well as in mouse. Genetic networks involved in Hnf1b expression during kidney development remain poorly understood. We decided to explore the transcriptional regulation of Hnf1b in the developing Xenopus pronephros and mammalian renal cells. Using phylogenetic footprinting, we identified an evolutionary conserved sequence (CNS1) located several kilobases (kb) upstream the Hnf1b transcription start and harboring epigenomic marks characteristics of a distal enhancer in embryonic and adult renal cells in mammals. By means of functional expression assays in Xenopus and mammalian renal cell lines we showed that CNS1 displays enhancer activity in renal tissue. Using CRISPR/cas9 editing in Xenopus tropicalis, we demonstrated the in vivo functional relevance of CNS1 in driving hnf1b expression in the pronephros. We further showed the importance of Pax8-CNS1 interaction for CNS1 enhancer activity allowing us to conclude that Hnf1b is a direct target of Pax8. Our work identified for the first time a Hnf1b renal specific enhancer and may open important perspectives into the diagnosis for congenital kidney anomalies in human, as well as modeling HNF1B-related diseases.

developmental biology↗

A non-transcriptional function of Yap orchestrates the DNA replication program

In multicellular eukaryotic organisms, the initiation of DNA replication occurs asynchronously throughout S-phase according to a regulated replication timing program. Here, using Xenopus egg extracts, we showed that Yap (Yes-associated protein 1), a downstream effector of the Hippo signaling pathway, is required for the control of DNA replication dynamics. We found that Yap is recruited to chromatin at the start of DNA replication and that Yap depletion accelerates DNA replication dynamics by increasing the number of activated replication origins. Furthermore, we identified Rif1, a major regulator of the DNA replication timing program, as a novel Yap binding protein. In Xenopus embryos, using a Trim-Away approach during cleavage stages devoid of transcription, we found that both Yap and Rif1 depletion trigger an acceleration of cell divisions, suggesting a shorter S-phase by alterations of the replication program. Finally, our data show that Rif1 knockdown leads to defects in the partitioning of early versus late replication foci in retinal stem cells, as we previously showed for Yap. Altogether, our findings unveil a non-transcriptional role for Yap in regulating replication dynamics. We propose that Yap and Rif1 function as breaks to control the DNA replication program in early embryos and post-embryonic stem cells. HighlightsO_LIYap is recruited to chromatin during DNA replication dependent on pre-replicative complex assembly. C_LIO_LIYap controls DNA replication dynamics by limiting origin firing. C_LIO_LIThe replication timing regulatory factor 1, Rif1, is a novel Yap binding-partner. C_LIO_LIBoth Yap and Rif1 regulate the length of the first embryonic cell cycles. C_LIO_LILike Yap, Rif1 controls retinal stem cell DNA replication timing. C_LI

developmental biology↗