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1.
Neural Dev ; 12(1): 16, 2017 Sep 01.
Article in English | MEDLINE | ID: mdl-28863786

ABSTRACT

BACKGROUND: Amacrine interneurons that modulate synaptic plasticity between bipolar and ganglion cells constitute the most diverse cell type in the retina. Most are inhibitory neurons using either GABA or glycine as neurotransmitters. Although several transcription factors involved in amacrine cell fate determination have been identified, mechanisms underlying amacrine cell subtype specification remain to be further understood. The Prdm13 histone methyltransferase encoding gene is a target of the transcription factor Ptf1a, an essential regulator of inhibitory neuron cell fate in the retina. Here, we have deepened our knowledge on its interaction with Ptf1a and investigated its role in amacrine cell subtype determination in the developing Xenopus retina. METHODS: We performed prdm13 gain and loss of function in Xenopus and assessed the impact on retinal cell fate determination using RT-qPCR, in situ hybridization and immunohistochemistry. RESULTS: We found that prdm13 in the amphibian Xenopus is expressed in few retinal progenitors and in about 40% of mature amacrine cells, predominantly in glycinergic ones. Clonal analysis in the retina reveals that prdm13 overexpression favours amacrine cell fate determination, with a bias towards glycinergic cells. Conversely, knockdown of prdm13 specifically inhibits glycinergic amacrine cell genesis. We also showed that, as in the neural tube, prdm13 is subjected to a negative autoregulation in the retina. Our data suggest that this is likely due to its ability to repress the expression of its inducer, ptf1a. CONCLUSIONS: Our results demonstrate that Prdm13, downstream of Ptf1a, acts as an important regulator of glycinergic amacrine subtype specification in the Xenopus retina. We also reveal that Prdm13 regulates ptf1a expression through a negative feedback loop.


Subject(s)
Amacrine Cells/metabolism , Basic Helix-Loop-Helix Transcription Factors/metabolism , Histone-Lysine N-Methyltransferase/metabolism , Neurogenesis/physiology , Retina/embryology , Xenopus Proteins/metabolism , Amacrine Cells/cytology , Animals , Feedback, Physiological/physiology , Gene Expression Regulation, Developmental , Glycine/metabolism , Retina/metabolism , Xenopus laevis
2.
Dev Biol ; 386(2): 340-57, 2014 Feb 15.
Article in English | MEDLINE | ID: mdl-24370451

ABSTRACT

The basic helix-loop-helix (bHLH) transcriptional activator Ptf1a determines inhibitory GABAergic over excitatory glutamatergic neuronal cell fate in progenitors of the vertebrate dorsal spinal cord, cerebellum and retina. In an in situ hybridization expression survey of PR domain containing genes encoding putative chromatin-remodeling zinc finger transcription factors in Xenopus embryos, we identified Prdm13 as a histone methyltransferase belonging to the Ptf1a synexpression group. Gain and loss of Ptf1a function analyses in both frog and mice indicates that Prdm13 is positively regulated by Ptf1a and likely constitutes a direct transcriptional target. We also showed that this regulation requires the formation of the Ptf1a-Rbp-j complex. Prdm13 knockdown in Xenopus embryos and in Ptf1a overexpressing ectodermal explants lead to an upregulation of Tlx3/Hox11L2, which specifies a glutamatergic lineage and a reduction of the GABAergic neuronal marker Pax2. It also leads to an upregulation of Prdm13 transcription, suggesting an autonegative regulation. Conversely, in animal caps, Prdm13 blocks the ability of the bHLH factor Neurog2 to activate Tlx3. Additional gain of function experiments in the chick neural tube confirm that Prdm13 suppresses Tlx3(+)/glutamatergic and induces Pax2(+)/GABAergic neuronal fate. Thus, Prdm13 is a novel crucial component of the Ptf1a regulatory pathway that, by modulating the transcriptional activity of bHLH factors such as Neurog2, controls the balance between GABAergic and glutamatergic neuronal fate in the dorsal and caudal part of the vertebrate neural tube.


Subject(s)
Cell Differentiation/physiology , GABAergic Neurons/physiology , Gene Expression Regulation, Developmental/physiology , Histone-Lysine N-Methyltransferase/metabolism , Neural Tube/embryology , Xenopus Proteins/metabolism , Animals , Basic Helix-Loop-Helix Transcription Factors/metabolism , Chick Embryo , DNA Primers/genetics , Electroporation , Histone Methyltransferases , Histone-Lysine N-Methyltransferase/genetics , Immunohistochemistry , Immunoprecipitation , In Situ Hybridization , Mice , Neural Tube/cytology , PAX2 Transcription Factor/metabolism , Reverse Transcriptase Polymerase Chain Reaction , Xenopus Proteins/genetics , Xenopus laevis
3.
PLoS Genet ; 8(12): e1003121, 2012.
Article in English | MEDLINE | ID: mdl-23271979

ABSTRACT

During echinoderm development, expression of nodal on the right side plays a crucial role in positioning of the rudiment on the left side, but the mechanisms that restrict nodal expression to the right side are not known. Here we show that establishment of left-right asymmetry in the sea urchin embryo relies on reciprocal signaling between the ectoderm and a left-right organizer located in the endomesoderm. FGF/ERK and BMP2/4 signaling are required to initiate nodal expression in this organizer, while Delta/Notch signaling is required to suppress formation of this organizer on the left side of the archenteron. Furthermore, we report that the H(+)/K(+)-ATPase is critically required in the Notch signaling pathway upstream of the S3 cleavage of Notch. Our results identify several novel players and key early steps responsible for initiation, restriction, and propagation of left-right asymmetry during embryogenesis of a non-chordate deuterostome and uncover a functional link between the H(+)/K(+)-ATPase and the Notch signaling pathway.


Subject(s)
Ectoderm/growth & development , H(+)-K(+)-Exchanging ATPase , Left-Right Determination Factors/genetics , Receptors, Notch , Sea Urchins , Animals , Body Patterning/genetics , Bone Morphogenetic Protein 2/genetics , Bone Morphogenetic Protein 2/metabolism , Embryo, Nonmammalian , Embryonic Development/genetics , Gene Expression Regulation, Developmental , H(+)-K(+)-Exchanging ATPase/genetics , H(+)-K(+)-Exchanging ATPase/metabolism , MAP Kinase Signaling System , Receptors, Notch/genetics , Receptors, Notch/metabolism , Sea Urchins/embryology , Sea Urchins/growth & development , Signal Transduction
4.
PLoS Genet ; 6(12): e1001259, 2010 Dec 23.
Article in English | MEDLINE | ID: mdl-21203442

ABSTRACT

Echinoderms, which are phylogenetically related to vertebrates and produce large numbers of transparent embryos that can be experimentally manipulated, offer many advantages for the analysis of the gene regulatory networks (GRN) regulating germ layer formation. During development of the sea urchin embryo, the ectoderm is the source of signals that pattern all three germ layers along the dorsal-ventral axis. How this signaling center controls patterning and morphogenesis of the embryo is not understood. Here, we report a large-scale analysis of the GRN deployed in response to the activity of this signaling center in the embryos of the Mediterranean sea urchin Paracentrotus lividus, in which studies with high spatial resolution are possible. By using a combination of in situ hybridization screening, overexpression of mRNA, recombinant ligand treatments, and morpholino-based loss-of-function studies, we identified a cohort of transcription factors and signaling molecules expressed in the ventral ectoderm, dorsal ectoderm, and interposed neurogenic ("ciliary band") region in response to the known key signaling molecules Nodal and BMP2/4 and defined the epistatic relationships between the most important genes. The resultant GRN showed a number of striking features. First, Nodal was found to be essential for the expression of all ventral and dorsal marker genes, and BMP2/4 for all dorsal genes. Second, goosecoid was identified as a central player in a regulatory sub-circuit controlling mouth formation, while tbx2/3 emerged as a critical factor for differentiation of the dorsal ectoderm. Finally, and unexpectedly, a neurogenic ectoderm regulatory circuit characterized by expression of "ciliary band" genes was triggered in the absence of TGF beta signaling. We propose a novel model for ectoderm regionalization, in which neural ectoderm is the default fate in the absence of TGF beta signaling, and suggest that the stomodeal and neural subcircuits that we uncovered may represent ancient regulatory pathways controlling embryonic patterning.


Subject(s)
Bone Morphogenetic Protein 2/metabolism , Bone Morphogenetic Protein 4/metabolism , Ectoderm/metabolism , Evolution, Molecular , Gene Expression Regulation, Developmental , Gene Regulatory Networks , Nodal Protein/metabolism , Paracentrotus/genetics , Animals , Bone Morphogenetic Protein 2/genetics , Bone Morphogenetic Protein 4/genetics , Ectoderm/embryology , Nodal Protein/genetics , Paracentrotus/embryology , Paracentrotus/metabolism , Signal Transduction
5.
Development ; 137(2): 223-35, 2010 Jan.
Article in English | MEDLINE | ID: mdl-20040489

ABSTRACT

Nodal factors play fundamental roles in induction and patterning of the mesoderm and endoderm in vertebrates, but whether this reflects an ancient role or one that evolved recently in vertebrates is not known. Here, we report that in addition to its primary role in patterning the ectoderm, sea urchin Nodal is crucial for patterning of the endoderm and skeletogenic mesoderm through the regulation of the expression of key transcription factors and signalling molecules, including BMP2/4 and FGFA. In addition, we uncovered an essential role for Nodal and BMP2/4 in the formation and patterning of the non-skeletogenic mesoderm. By comparing the effects of misexpressing Nodal or an activated Nodal receptor in clones of cells, we provide evidence that Nodal acts over a long range in the endomesoderm and that its effects on the blastocoelar cell precursors are likely to be direct. The activity of Nodal and BMP2/4 are antagonistic, and although bmp2/4 is transcribed in the ventral ectoderm downstream of Nodal, the BMP2/4 ligand is translocated to the dorsal side, where it activates signalling in the dorsal primary mesenchyme cells, the dorsal endoderm and in pigment cell precursors. Therefore, correct patterning of the endomesoderm depends on a balance between ventralising Nodal signals and dorsalising BMP2/4 signals. These experiments confirm that Nodal is a key regulator of dorsal-ventral polarity in the sea urchin and support the idea that the ventral ectoderm, like the Spemann organiser in vertebrates, is an organising centre that is required for patterning all three germ layers of the embryo.


Subject(s)
Bone Morphogenetic Protein 2/metabolism , Bone Morphogenetic Protein 4/metabolism , Endoderm/embryology , Mesoderm , Nodal Protein/metabolism , Paracentrotus/embryology , Sea Urchins/embryology , Animals , Bone Morphogenetic Protein 2/genetics , Bone Morphogenetic Protein 4/genetics , Embryo, Nonmammalian , Endoderm/metabolism , Gene Expression Regulation, Developmental , Mesoderm/embryology , Mesoderm/metabolism , Nodal Protein/genetics , Oligoribonucleotides, Antisense , Paracentrotus/genetics , Paracentrotus/metabolism , Sea Urchins/genetics , Sea Urchins/metabolism
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