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Brislinger-Engelhardt, M. M.

Publications and source records attributed to Brislinger-Engelhardt, M. M..

3 recordsLinked to original sources

A homozygous human WNT11 loss-of-function variant associated with laterality, heart and renal defects

Wnt signaling plays important roles during vertebrate development, including left-right axis specification as well as heart and kidney organogenesis. We identified a homozygous human WNT11 variant in an infant with Situs inversus totalis, complex heart defects and renal hypodysplasia, and we used Xenopus embryos to functionally characterize this variant. WNT11c.814delG encodes a loss-of-function protein with reduced stability that lost signaling activity in vivo. This is remarkable, because the variant encodes a truncated ligand with nearly identical length and predicted structure to dominant-negative Wnts. Furthermore, we demonstrate that alteration of the truncated C-terminal end can restore stability and dominant-negative signaling activity. Our study also suggests similar functions for WNT11 in human development as described in model organisms. Therefore, biallelic WNT11 dysfunction should be considered as novel genetic cause in syndromal human phenotypes presenting with congenital heart defects and renal hypoplasia, with or without laterality defects. The work presented here enhances our understanding of human development and structure-function relationships in Wnt ligands.

developmental biology↗

Foxi1 regulates multiple steps of mucociliary development and ionocyte specification through transcriptional and epigenetic mechanisms

Foxi1 is a master regulator of ionocytes (ISCs / INCs) across species and organs. Two subtypes of ISCs exist, and both -and {beta}-ISCs regulate pH-and ion-homeostasis in epithelia. Gain and loss of FOXI1 function are associated with human diseases, including Pendred syndrome, male infertility, renal acidosis and cancers. Foxi1 was predominantly studied in the context of ISC specification, however, reports indicate additional functions in early and ectodermal development. Here, we re-investigated the functions of Foxi1 in Xenopus laevis embryonic mucociliary epidermis development and found a novel function for Foxi1 in the generation of Notch-ligand expressing mucociliary multipotent progenitors (MPPs). We demonstrate that Foxi1 has multiple concentration-dependent functions: At low levels, Foxi1 maintains ectodermal competence in MPPs through transcriptional and epigenetic mechanisms, while at high levels, Foxi1 induces a multi-step process of ISC specification and differentiation in cooperation with Ubp1 and Dmrt2. We further describe how foxi1 expression is affected through auto-and Notch-regulation, and how this developmental program affects mucociliary patterning. Together, we reveal novel functions for Foxi1 in Xenopus mucociliary epidermis formation, relevant to our understanding of vertebrate development and human disease.

developmental biology↗

Temporal Notch signaling regulates mucociliary cell fates through Hes-mediated competitive de-repression

Mucociliary epithelia are found across different organs in animals, where they release bioactive substances and generate extracellular fluid flows. One key function of mucociliary epithelia is the clearance of pathogens, e.g. in the vertebrate lung and the epidermis of amphibian tadpoles. Mucociliary clearance relies on the correct balance between secretory cells that release mucus, ciliated cells that generate fluid flow as well as specialized cell types, including pH-regulating ionocytes and basal stem cells. Notch signaling, Hes repressors and cell type-inducing transcription factors (e.g. Foxi1, Mcidas, Spdef and Tp63) regulate cell fates and cell type proportions across mucociliary systems. Lateral inhibition was proposed to control mucociliary cell fates, but current models cannot explain how more than two cell types are generated and how Hes genes are employed as mediators during patterning. Using the Xenopus tadpole epidermis, we addressed these open questions in mucociliary biology through a combination of in vivo and organoid experiments, time-resolved transcriptomic studies and mathematical modeling. This revealed that ionocytes, ciliated cells, secretory cells and basal cells are preferentially specified at different time points and Notch signaling levels via sequentially expressed Hes factors. We termed this mode of patterning "competitive de-repression", because cell fates are selected by suppression of alternative fate choices, and demonstrate that this relies on differential active repression of cell fate transcription factors. Mathematical modeling further indicated the need for a positively Notch-regulated patterning factor, and we provide evidence that Spdef mediates Notch input for secretory and basal cell specification. Collectively, this work presents a coherent model for Notch- and Hes-mediated mucociliary cell fate specification in a vertebrate tissue, which allows for the specification of more than two cell fates within the Notch lateral-inhibition paradigm.

developmental biology↗