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Gaul, U.

Publications and source records attributed to Gaul, U..

3 recordsLinked to original sources

The cAMP effector PKA mediates Moody GPCR signaling in Drosophila blood-brain barrier formation and maturation

The blood-brain barrier (BBB) of Drosophila is comprised of a thin epithelial layer of subperineural glia (SPG), which ensheath the nerve cord and insulate it against the potassium-rich hemolymph by forming intercellular septate junctions (SJs). Previously, we identified a novel Gi/Go protein-coupled receptor (GPCR), Moody, as a key factor in BBB formation at the embryonic stage. However, the molecular and cellular mechanisms of Moody signaling in BBB formation and maturation remain unclear. Here, we identify cAMP-dependent protein kinase A (PKA) as a crucial antagonistic Moody effector that is required for the formation, as well as for the continued SPG growth and BBB maintenance in the larva and adult stage. We show that PKA is enriched at the basal side of the SPG cell and that this polarized Moody/PKA pathway finely tunes the enormous cell growth and BBB integrity, by precisely regulating the actomyosin contractility, vesicle trafficking, and the proper SJ organization in a highly coordinated spatiotemporal manner. These effects are mediated in part by PKAs molecular targets MLCK and Rho1. Moreover, 3D reconstruction of SJ ultrastructure demonstrates that the continuity of individual SJ segments and not their total length is crucial for generating a proper paracellular seal. Based on these findings, we propose a model that polarized Moody/PKA signaling plays a central role in controlling the cell growth and maintaining BBB integrity during the continuous morphogenesis of the SPG secondary epithelium, which is critical for maintain tissue size and brain homeostasis during organogenesis.

developmental biology

Context dependent activation/repression by Hunchback binding sites in Drosophila embryo

Hunchback (Hb) is considered a context-dependent transcription factor, able to activate or repress different enhancers during Drosophila embryo segmentation. The mechanism driving the contextdependent activity of Hb is however not well understood. Here we measure the activity of a large set of 20 synthetic enhancers that we design to elucidate the effect of Hb binding sites in Drosophila segmentation. We obtain quantitative data on the spatiotemporal dynamics of activity of all synthetic enhancers in-vivo, by using a quantitative and sensitive reporter system we recently developed. Our data reveal the dual role of Hb binding sites in segmentation enhancers: on the one hand, Hb act as a typical short range repressor by binding to its cognate sequences; on the other hand, we report a novel effect of a sequence containing multiple Hb binding sites, which is able to increase enhancer activity independently from Hb binding. This sequence, which contains multiple Poly-dA stretches, increases the activity of enhancers driven by different activators, possibly by disfavoring nucleosome occupancy. AUTHOR SUMMARYThe control of gene expression is a fundamental process that allows cells to respond to external stimuli and take on various identities in complex organisms. Enhancers are DNA sequences that play a key role in this process. In the simplest model of an enhancer, small parts of its sequence can be specifically bound by proteins called transcription factors and the occupancy pattern of these proteins on the enhancer determines the expression level of a specific gene. In this research work we have studied enhancers in the context of the development of a fruit fly embryo. We have built synthetic enhancer sequences containing binding sites for a few specific factors and measured their activity in living embryos using fluorescence microscopy. Our results revealed that binding sites for a particular protein, Hunchback, are able to influence the activity of the enhancer even independently from Hunchback binding to them. This discovery might help to explain the complex effects that have been observed when studying Hunchback binding sites in natural enhancers.

developmental biology

Large-scale analysis of Drosophila core promoter function using synthetic promoters

The core promoter, the region immediately surrounding the transcription start site, plays a central role in setting metazoan gene expression levels, but how exactly it computes expression remains poorly understood. To dissect core promoter function, we carried out a comprehensive structure-function analysis to measure synthetic promoters activities, with and without an external stimulus (hormonal activation). By using robotics and a dual-luciferase reporter assay, we tested [~]3000 mutational variants representing 19 different Drosophila melanogaster promoter architectures. We explored the impact of different types of mutations, including knockout of individual sequence motifs and motif combinations, variations of motif strength, positioning, and flanking sequences. We observe strong effects of the mutations on activity, and a linear combination of the individual motif features can largely account for the combinatorial effects on core promoter activity. Our findings shed new light on the quantitative assessment of gene expression, a fundamental process in all metazoans.

systems biology