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1.
Dev Biol ; 433(2): 310-323, 2018 01 15.
Article in English | MEDLINE | ID: mdl-29108673

ABSTRACT

Wnt/ß-Catenin signaling plays crucial roles in regenerative processes in eumetazoans. It also acts in regeneration and axial patterning in the simple freshwater polyp Hydra, whose morphallactic regenerative capacity is unparalleled in the animal kingdom. Previous studies have identified ß-catenin as an early response gene activated within the first 30min in Hydra head regeneration. Here, we have studied the role of ß-Catenin in more detail. First, we show that nuclear ß-Catenin signaling is required for head and foot regeneration. Loss of nuclear ß-Catenin function blocks head and foot regeneration. Transgenic Hydra tissue, in which ß-Catenin is over-expressed, regenerates more heads and feet. In addition, we have identified a set of putative ß-Catenin target genes by transcriptional profiling, and these genes exhibit distinct expression patterns in the hypostome, in the tentacles, or in an apical gradient in the body column. All of them are transcriptionally up-regulated in the tips of early head and foot regenerates. In foot regenerates, this is a transient response, and expression starts to disappear after 12-36h. ChIP experiments using an anti-HydraTcf antibody show Tcf binding at promoters of these targets. We propose that gene regulatory ß-Catenin activity in the pre-patterning phase is generally required as an early regeneration response. When regenerates are blocked with iCRT14, initial local transcriptional activation of ß-catenin and the target genes occurs, and all these genes remain upregulated at the site of both head and foot regeneration for the following 2-3 days. This indicates that the initial regulatory network is followed by position-specific programs that inactivate fractions of this network in order to proceed to differentiation of head or foot structures. brachyury1 (hybra1) has previously been described as early response gene in head and foot regeneration. The HyBra1 protein, however, appears in head regenerating tips not earlier than about twelve hours after decapitation, and HyBra1 translation does not occur in iCRT14-treated regenerates. Foot regenerates never show detectable levels of HyBra1 protein at all. These results suggest that translational control mechanisms may play a decisive role in the head- and foot-specific differentiation phase, and HyBra1 is an excellent candidate for such a key regulator of head specification.


Subject(s)
Hydra/physiology , Regeneration/physiology , Wnt Signaling Pathway , beta Catenin/physiology , Animals , Body Patterning , Fetal Proteins/physiology , Gene Expression Regulation , In Situ Hybridization , Organ Specificity , Protein Biosynthesis , Regeneration/drug effects , T-Box Domain Proteins/physiology , beta Catenin/antagonists & inhibitors , beta Catenin/genetics
2.
Curr Opin Neurobiol ; 42: 152-159, 2017 02.
Article in English | MEDLINE | ID: mdl-28092740

ABSTRACT

Tight control of developmental timing is pivotal to many major processes in developmental biology, such as patterning, fate specification, cell cycle dynamics, cell migration and connectivity. Temporal change in these ontogenetic sequences is known as heterochrony, a major force in the evolution of body plans and organogenesis. In the last 5 years, studies in fish and rodents indicate that heterochrony in signaling during early development generates diversity in forebrain size and complexity. Here, we summarize these findings and propose that, additionally to spatio-temporal tuning of neurogenesis, temporal and quantitative modulation of signaling events drive pivotal changes in shape, size and complexity of the forebrain across evolution, participating to the generation of diversity in animal behavior and emergence of cognition.


Subject(s)
Biological Evolution , Neurogenesis/physiology , Prosencephalon/embryology , Animals , Cell Movement , Time Factors
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