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1.
Cell Mol Life Sci ; 81(1): 286, 2024 Jul 06.
Article in English | MEDLINE | ID: mdl-38970652

ABSTRACT

Paralog factors are considered to ensure the robustness of biological processes by providing redundant activity in cells where they are co-expressed. However, the specific contribution of each factor is frequently underestimated. In the developing spinal cord, multiple families of transcription factors successively contribute to differentiate an initially homogenous population of neural progenitors into a myriad of neuronal subsets with distinct molecular, morphological, and functional characteristics. The LIM-homeodomain transcription factors Lhx3, Lhx4, Isl1 and Isl2 promote the segregation and differentiation of spinal motor neurons and V2 interneurons. Based on their high sequence identity and their similar distribution, the Lhx3 and Lhx4 paralogs are considered to contribute similarly to these processes. However, the specific contribution of Lhx4 has never been studied. Here, we provide evidence that Lhx3 and Lhx4 are present in the same cell populations during spinal cord development. Similarly to Lhx3, Lhx4 can form multiproteic complexes with Isl1 or Isl2 and the nuclear LIM interactor NLI. Lhx4 can stimulate a V2-specific enhancer more efficiently than Lhx3 and surpasses Lhx3 in promoting the differentiation of V2a interneurons in chicken embryo electroporation experiments. Finally, Lhx4 inactivation in mice results in alterations of differentiation of the V2a subpopulation, but not of motor neuron production, suggesting that Lhx4 plays unique roles in V2a differentiation that are not compensated by the presence of Lhx3. Thus, Lhx4 could be the major LIM-HD factor involved in V2a interneuron differentiation during spinal cord development and should be considered for in vitro differentiation of spinal neuronal populations.


Subject(s)
Cell Differentiation , Interneurons , LIM-Homeodomain Proteins , Spinal Cord , Transcription Factors , Animals , LIM-Homeodomain Proteins/metabolism , LIM-Homeodomain Proteins/genetics , Transcription Factors/metabolism , Transcription Factors/genetics , Interneurons/metabolism , Interneurons/cytology , Spinal Cord/cytology , Spinal Cord/metabolism , Spinal Cord/embryology , Chick Embryo , Mice , Motor Neurons/metabolism , Motor Neurons/cytology , Humans , Gene Expression Regulation, Developmental
2.
Cells ; 13(8)2024 Apr 09.
Article in English | MEDLINE | ID: mdl-38667267

ABSTRACT

The differential expression of transcription factors during embryonic development has been selected as the main feature to define the specific subclasses of spinal interneurons. However, recent studies based on single-cell RNA sequencing and transcriptomic experiments suggest that this approach might not be appropriate in the adult spinal cord, where interneurons show overlapping expression profiles, especially in the ventral region. This constitutes a major challenge for the identification and direct targeting of specific populations that could be involved in locomotor recovery after a traumatic spinal cord injury in adults. Current experimental therapies, including electrical stimulation, training, pharmacological treatments, or cell implantation, that have resulted in improvements in locomotor behavior rely on the modulation of the activity and connectivity of interneurons located in the surroundings of the lesion core for the formation of detour circuits. However, very few publications clarify the specific identity of these cells. In this work, we review the studies where premotor interneurons were able to create new intraspinal circuits after different kinds of traumatic spinal cord injury, highlighting the difficulties encountered by researchers, to classify these populations.


Subject(s)
Interneurons , Recovery of Function , Spinal Cord Injuries , Adult , Animals , Humans , Interneurons/metabolism , Spinal Cord/cytology , Spinal Cord/pathology , Spinal Cord Injuries/therapy , Spinal Cord Injuries/physiopathology
3.
Acta Physiol (Oxf) ; 238(3): e13973, 2023 07.
Article in English | MEDLINE | ID: mdl-37029761

ABSTRACT

AIM: This study mapped the spatiotemporal positions and connectivity of Onecut3+ neuronal populations in the developing and adult mouse brain. METHODS: We generated fluorescent reporter mice to chart Onecut3+ neurons for brain-wide analysis. Moreover, we crossed Onecut3-iCre and Mapt-mGFP (Tau-mGFP) mice to visualize axonal projections. A dual Cre/Flp-dependent AAV construct in Onecut3-iCre cross-bred with Slc17a6-FLPo mice was used in an intersectional strategy to map the connectivity of glutamatergic lateral hypothalamic neurons in the adult mouse. RESULTS: We first found that Onecut3 marks a hitherto undescribed Slc17a6+ /Vglut2+ neuronal cohort in the lateral hypothalamus, with the majority expressing thyrotropin-releasing hormone. In the adult, Onecut3+ /Vglut2+ neurons of the lateral hypothalamus had both intra- and extrahypothalamic efferents, particularly to the septal complex and habenula, where they targeted other cohorts of Onecut3+ neurons and additionally to the neocortex and hippocampus. This arrangement suggests that intrinsic reinforcement loops could exist for Onecut3+ neurons to coordinate their activity along the brain's midline axis. CONCLUSION: We present both a toolbox to manipulate novel subtypes of hypothalamic neurons and an anatomical arrangement by which extrahypothalamic targets can be simultaneously entrained.


Subject(s)
Hypothalamic Area, Lateral , Neurons , Mice , Animals , Mice, Transgenic , Neurons/physiology , Hypothalamus , Brain
4.
Genesis ; 59(7-8): e23435, 2021 08.
Article in English | MEDLINE | ID: mdl-34080769

ABSTRACT

In the spinal cord, ventral interneurons regulate the activity of motor neurons, thereby controlling motor activities including locomotion. Interneurons arise during embryonic development from distinct progenitor domains orderly distributed along the dorso-ventral axis of the neural tube. The p2 progenitor domain generates at least five V2 interneuron populations. However, identification and characterization of all V2 populations remain currently incomplete and the mechanisms that control their development remain only partly understood. In this study, we report the generation of a Vsx1-CreERT2 BAC transgenic mouse line that drives CreERT2 recombinase expression mimicking endogenous Vsx1 expression pattern in the developing spinal cord. We showed that the Vsx1-CreERT2 transgene can mediate recombination in V2 precursors with a high efficacy and specificity. Lineage tracing demonstrated that all the V2 interneurons in the mouse developing spinal cord derive from cells expressing Vsx1. Finally, we confirmed that V2 precursors generate additional V2 populations that are not characterized yet. Thus, the Vsx1-CreERT2 line described here is a useful genetic tool for lineage tracing and for functional studies of the mouse spinal V2 interneurons.


Subject(s)
Eye Proteins/genetics , Gene Targeting/methods , Homeodomain Proteins/genetics , Interneurons/metabolism , Neurogenesis , Spinal Cord/metabolism , Animals , Cell Lineage , Eye Proteins/metabolism , Homeodomain Proteins/metabolism , Integrases/genetics , Integrases/metabolism , Interneurons/cytology , Mice , Mice, Inbred C57BL , Spinal Cord/cytology , Spinal Cord/embryology , Tamoxifen/pharmacology , Transcriptional Activation/drug effects , Transgenes
6.
Nature ; 582(7811): 246-252, 2020 06.
Article in English | MEDLINE | ID: mdl-32499648

ABSTRACT

A wealth of specialized neuroendocrine command systems intercalated within the hypothalamus control the most fundamental physiological needs in vertebrates1,2. Nevertheless, we lack a developmental blueprint that integrates the molecular determinants of neuronal and glial diversity along temporal and spatial scales of hypothalamus development3. Here we combine single-cell RNA sequencing of 51,199 mouse cells of ectodermal origin, gene regulatory network (GRN) screens in conjunction with genome-wide association study-based disease phenotyping, and genetic lineage reconstruction to show that nine glial and thirty-three neuronal subtypes are generated by mid-gestation under the control of distinct GRNs. Combinatorial molecular codes that arise from neurotransmitters, neuropeptides and transcription factors are minimally required to decode the taxonomical hierarchy of hypothalamic neurons. The differentiation of γ-aminobutyric acid (GABA) and dopamine neurons, but not glutamate neurons, relies on quasi-stable intermediate states, with a pool of GABA progenitors giving rise to dopamine cells4. We found an unexpected abundance of chemotropic proliferation and guidance cues that are commonly implicated in dorsal (cortical) patterning5 in the hypothalamus. In particular, loss of SLIT-ROBO signalling impaired both the production and positioning of periventricular dopamine neurons. Overall, we identify molecular principles that shape the developmental architecture of the hypothalamus and show how neuronal heterogeneity is transformed into a multimodal neural unit to provide virtually infinite adaptive potential throughout life.


Subject(s)
Gene Expression Regulation, Developmental , Hypothalamus/cytology , Hypothalamus/embryology , Morphogenesis , Animals , Cell Differentiation , Cell Lineage , Dopamine/metabolism , Dopaminergic Neurons/cytology , Dopaminergic Neurons/metabolism , Ectoderm/cytology , Ectoderm/metabolism , Female , GABAergic Neurons/cytology , GABAergic Neurons/metabolism , Gene Regulatory Networks , Genome-Wide Association Study , Glutamic Acid/metabolism , Hypothalamus/metabolism , Male , Mice , Morphogenesis/genetics , Nerve Tissue Proteins/metabolism , Neuroglia/cytology , Neuroglia/metabolism , Neuropeptides/metabolism , Neurotransmitter Agents/metabolism , Receptors, Immunologic/metabolism , Regulon/genetics , Signal Transduction , Transcription Factors/metabolism , gamma-Aminobutyric Acid/metabolism , Roundabout Proteins
7.
Mol Brain ; 13(1): 85, 2020 05 29.
Article in English | MEDLINE | ID: mdl-32471461

ABSTRACT

Genetic and epigenetic factors contribute to the development of the spinal cord. Failure in correct exertion of the developmental programs, including neurulation, neural tube closure and neurogenesis of the diverse spinal cord neuronal subtypes results in defects of variable severity. We here report on the histone methyltransferase Disruptor of Telomeric 1 Like (DOT1L), which mediates histone H3 lysine 79 (H3K79) methylation. Conditional inactivation of DOT1L using Wnt1-cre as driver (Dot1l-cKO) showed that DOT1L expression is essential for spinal cord neurogenesis and localization of diverse neuronal subtypes, similar to its function in the development of the cerebral cortex and cerebellum. Transcriptome analysis revealed that DOT1L deficiency favored differentiation over progenitor proliferation. Dot1l-cKO mainly decreased the numbers of dI1 interneurons expressing Lhx2. In contrast, Lhx9 expressing dI1 interneurons did not change in numbers but localized differently upon Dot1l-cKO. Similarly, loss of DOT1L affected localization but not generation of dI2, dI3, dI5, V0 and V1 interneurons. The resulting derailed interneuron patterns might be responsible for increased cell death, occurrence of which was restricted to the late developmental stage E18.5. Together our data indicate that DOT1L is essential for subtype-specific neurogenesis, migration and localization of dorsal and ventral interneurons in the developing spinal cord, in part by regulating transcriptional activation of Lhx2.


Subject(s)
Cell Differentiation , Histone-Lysine N-Methyltransferase/metabolism , Interneurons/cytology , Interneurons/metabolism , Spinal Cord/cytology , Spinal Cord/embryology , Animals , Biomarkers/metabolism , Cell Differentiation/genetics , Cell Movement , Cell Proliferation , Chickens , Gene Expression Regulation, Developmental , Histone-Lysine N-Methyltransferase/deficiency , Histone-Lysine N-Methyltransferase/genetics , Homeodomain Proteins/metabolism , Integrases/metabolism , LIM-Homeodomain Proteins/metabolism , Mice, Transgenic , Neurogenesis/genetics , Stem Cells/metabolism , Transcription Factors/metabolism , Transcription, Genetic , Wnt1 Protein/metabolism
8.
Sci Rep ; 10(1): 996, 2020 01 22.
Article in English | MEDLINE | ID: mdl-31969659

ABSTRACT

In the developing spinal cord, Onecut transcription factors control the diversification of motor neurons into distinct neuronal subsets by ensuring the maintenance of Isl1 expression during differentiation. However, other genes downstream of the Onecut proteins and involved in motor neuron diversification have remained unidentified. In the present study, we generated conditional mutant embryos carrying specific inactivation of Onecut genes in the developing motor neurons, performed RNA-sequencing to identify factors downstream of Onecut proteins in this neuron population, and employed additional transgenic mouse models to assess the role of one specific Onecut-downstream target, the transcription factor Nkx6.2. Nkx6.2 expression was up-regulated in Onecut-deficient motor neurons, but strongly downregulated in Onecut-deficient V2a interneurons, indicating an opposite regulation of Nkx6.2 by Onecut factors in distinct spinal neuron populations. Nkx6.2-null embryos, neonates and adult mice exhibited alterations of locomotor pattern and spinal locomotor network activity, likely resulting from defective survival of a subset of limb-innervating motor neurons and abnormal migration of V2a interneurons. Taken together, our results indicate that Nkx6.2 regulates the development of spinal neuronal populations and the formation of the spinal locomotor circuits downstream of the Onecut transcription factors.


Subject(s)
Gene Expression Regulation, Developmental , Homeodomain Proteins/metabolism , Motor Neurons/metabolism , Onecut Transcription Factors/metabolism , Spinal Cord/metabolism , Transcription Factors/metabolism , Animals , Gene Expression , Homeodomain Proteins/genetics , Locomotion/physiology , Mice , Mice, Transgenic , Onecut Transcription Factors/genetics , Transcription Factors/genetics
9.
Cell Mol Life Sci ; 77(20): 4117-4131, 2020 Oct.
Article in English | MEDLINE | ID: mdl-31822965

ABSTRACT

Paralog factors are usually described as consolidating biological systems by displaying redundant functionality in the same cells. Here, we report that paralogs can also cooperate in distinct cell populations at successive stages of differentiation. In mouse embryonic spinal cord, motor neurons and V2 interneurons differentiate from adjacent progenitor domains that share identical developmental determinants. Therefore, additional strategies secure respective cell fate. In particular, Hb9 promotes motor neuron identity while inhibiting V2 differentiation, whereas Chx10 stimulates V2a differentiation while repressing motor neuron fate. However, Chx10 is not present at the onset of V2 differentiation and in other V2 populations. In the present study, we show that Vsx1, the single paralog of Chx10, which is produced earlier than Chx10 in V2 precursors, can inhibit motor neuron differentiation and promote V2 interneuron production. However, the single absence of Vsx1 does not impact on V2 fate consolidation, suggesting that lack of Vsx1 may be compensated by other factors. Nevertheless, Vsx1 cooperates with Chx10 to prevent motor neuron differentiation in early V2 precursors although these two paralog factors are not produced in the same cells. Hence, this study uncovers an original situation, namely labor division, wherein paralog genes cooperate at successive steps of neuronal development.


Subject(s)
Eye Proteins/genetics , Homeodomain Proteins/genetics , Interneurons/physiology , Motor Neurons/physiology , Spinal Cord/physiology , Transcription Factors/genetics , Animals , Cell Differentiation/genetics , Cell Line , Gene Expression Regulation, Developmental/genetics , HEK293 Cells , Humans , Mice
10.
Front Mol Neurosci ; 12: 263, 2019.
Article in English | MEDLINE | ID: mdl-31787878

ABSTRACT

Spinal dorsal interneurons, which are generated during embryonic development, relay and process sensory inputs from the periphery to the central nervous system. Proper integration of these cells into neuronal circuitry depends on their correct positioning within the spinal parenchyma. Molecular cues that control neuronal migration have been extensively characterized but the genetic programs that regulate their production remain poorly investigated. Onecut (OC) transcription factors have been shown to control the migration of the dorsal interneurons (dINs) during spinal cord development. Here, we report that the OC factors moderate the expression of Pou2f2, a transcription factor essential for B-cell differentiation, in spinal dINs. Overexpression or inactivation of Pou2f2 leads to alterations in the differentiation of dI2, dI3 and Phox2a-positive dI5 populations and to defects in the distribution of dI2-dI6 interneurons. Thus, an OC-Pou2f2 genetic cascade regulates adequate diversification and distribution of dINs during embryonic development.

11.
Mol Cell Neurosci ; 101: 103411, 2019 12.
Article in English | MEDLINE | ID: mdl-31648029

ABSTRACT

Onecut transcription factors are required to maintain Islet1 (Isl1) expression in developing spinal motor neurons (MNs), and this process is critical for proper MN differentiation. However, the mechanisms whereby OC stimulate Isl1 expression remain unknown. CREB-binding protein (CBP) and p300 paralogs are transcriptional coactivators that interact with OC proteins in hepatic cells. In the embryonic spinal cord, CBP and p300 play key roles in neurogenesis and MN differentiation. Here, using chromatin immunoprecipitation and in ovo electroporation in chicken spinal cord, we provide evidence that CBP and p300 contribute to the regulation of Isl1 expression by the OC factors in embryonic spinal MNs. CBP and p300 are detected on the CREST2 enhancer of Isl1 where OC factors are also bound. Inhibition of CBP and p300 activity inhibits activation of the CREST2 enhancer and prevents the stimulation of Isl1 expression by the OC factors. These observations suggest that CBP and p300 coactivators cooperate with OC factors to maintain Isl1 expression in postmitotic MNs.


Subject(s)
CREB-Binding Protein/metabolism , Enhancer Elements, Genetic , LIM-Homeodomain Proteins/genetics , Motor Neurons/metabolism , Onecut Transcription Factors/metabolism , Spinal Cord/metabolism , Transcription Factors/genetics , p300-CBP Transcription Factors/metabolism , Animals , Chick Embryo , LIM-Homeodomain Proteins/metabolism , Spinal Cord/cytology , Transcription Factors/metabolism
12.
Front Cell Neurosci ; 13: 184, 2019.
Article in English | MEDLINE | ID: mdl-31231191

ABSTRACT

Acquisition of proper neuronal identity and position is critical for the formation of neural circuits. In the embryonic spinal cord, cardinal populations of interneurons diversify into specialized subsets and migrate to defined locations within the spinal parenchyma. However, the factors that control interneuron diversification and migration remain poorly characterized. Here, we show that the Onecut transcription factors are necessary for proper diversification and distribution of the V2 interneurons in the developing spinal cord. Furthermore, we uncover that these proteins restrict and moderate the expression of spinal isoforms of Pou2f2, a transcription factor known to regulate B-cell differentiation. By gain- or loss-of-function experiments, we show that Pou2f2 contribute to regulate the position of V2 populations in the developing spinal cord. Thus, we uncovered a genetic pathway that regulates the diversification and the distribution of V2 interneurons during embryonic development.

13.
Front Mol Neurosci ; 10: 157, 2017.
Article in English | MEDLINE | ID: mdl-28603487

ABSTRACT

During embryonic development, the dorsal spinal cord generates numerous interneuron populations eventually involved in motor circuits or in sensory networks that integrate and transmit sensory inputs from the periphery. The molecular mechanisms that regulate the specification of these multiple dorsal neuronal populations have been extensively characterized. In contrast, the factors that contribute to their diversification into smaller specialized subsets and those that control the specific distribution of each population in the developing spinal cord remain unknown. Here, we demonstrate that the Onecut transcription factors, namely Hepatocyte Nuclear Factor-6 (HNF-6) (or OC-1), OC-2 and OC-3, regulate the diversification and the distribution of spinal dorsal interneuron (dINs). Onecut proteins are dynamically and differentially distributed in spinal dINs during differentiation and migration. Analyzes of mutant embryos devoid of Onecut factors in the developing spinal cord evidenced a requirement in Onecut proteins for proper production of a specific subset of dI5 interneurons. In addition, the distribution of dI3, dI5 and dI6 interneuron populations was altered. Hence, Onecut transcription factors control genetic programs that contribute to the regulation of spinal dIN diversification and distribution during embryonic development.

14.
Nat Neurosci ; 20(2): 176-188, 2017 02.
Article in English | MEDLINE | ID: mdl-27991900

ABSTRACT

The hypothalamus contains the highest diversity of neurons in the brain. Many of these neurons can co-release neurotransmitters and neuropeptides in a use-dependent manner. Investigators have hitherto relied on candidate protein-based tools to correlate behavioral, endocrine and gender traits with hypothalamic neuron identity. Here we map neuronal identities in the hypothalamus by single-cell RNA sequencing. We distinguished 62 neuronal subtypes producing glutamatergic, dopaminergic or GABAergic markers for synaptic neurotransmission and harboring the ability to engage in task-dependent neurotransmitter switching. We identified dopamine neurons that uniquely coexpress the Onecut3 and Nmur2 genes, and placed these in the periventricular nucleus with many synaptic afferents arising from neuromedin S+ neurons of the suprachiasmatic nucleus. These neuroendocrine dopamine cells may contribute to the dopaminergic inhibition of prolactin secretion diurnally, as their neuromedin S+ inputs originate from neurons expressing Per2 and Per3 and their tyrosine hydroxylase phosphorylation is regulated in a circadian fashion. Overall, our catalog of neuronal subclasses provides new understanding of hypothalamic organization and function.


Subject(s)
Dopamine/metabolism , Dopaminergic Neurons/metabolism , Hypothalamus/metabolism , Neuropeptides/metabolism , Tyrosine 3-Monooxygenase/metabolism , Animals , Immunohistochemistry/methods , Mice, Inbred C57BL , Mice, Transgenic , Neurotransmitter Agents/physiology , Suprachiasmatic Nucleus/metabolism , Synaptic Transmission/physiology
15.
FASEB J ; 30(5): 1696-711, 2016 05.
Article in English | MEDLINE | ID: mdl-26718890

ABSTRACT

Besides its crucial role in the pathogenesis of Alzheimer's disease, the knowledge of amyloid precursor protein (APP) physiologic functions remains surprisingly scarce. Here, we show that APP regulates the transcription of the glial cell line-derived neurotrophic factor (GDNF). APP-dependent regulation of GDNF expression affects muscle strength, muscular trophy, and both neuronal and muscular differentiation fundamental for neuromuscular junction (NMJ) maturation in vivo In a nerve-muscle coculture model set up to modelize NMJ formation in vitro, silencing of muscular APP induces a 30% decrease in secreted GDNF levels and a 40% decrease in the total number of NMJs together with a significant reduction in the density of acetylcholine vesicles at the presynaptic site and in neuronal maturation. These defects are rescued by GDNF expression in muscle cells in the conditions where muscular APP has been previously silenced. Expression of GDNF in muscles of amyloid precursor protein null mice corrected the aberrant synaptic morphology of NMJs. Our findings highlight for the first time that APP-dependent GDNF expression drives the process of NMJ formation, providing new insights into the link between APP gene regulatory network and physiologic functions.-Stanga, S., Zanou, N., Audouard, E., Tasiaux, B., Contino, S., Vandermeulen, G., René, F., Loeffler, J.-P., Clotman, F., Gailly, P., Dewachter, I., Octave, J.-N., Kienlen-Campard, P. APP-dependent glial cell line-derived neurotrophic factor gene expression drives neuromuscular junction formation.


Subject(s)
Amyloid beta-Protein Precursor/metabolism , Fibroblasts/physiology , Gene Expression Regulation/physiology , Glial Cell Line-Derived Neurotrophic Factor/metabolism , Neuromuscular Junction/physiology , Animals , Cells, Cultured , Glial Cell Line-Derived Neurotrophic Factor/genetics , Mice , Mice, Knockout , Muscle, Skeletal/physiology
16.
Front Mol Neurosci ; 9: 145, 2016.
Article in English | MEDLINE | ID: mdl-28082864

ABSTRACT

Spinal ventral interneurons regulate the activity of motor neurons, thereby controlling motor activities. Interneurons arise during embryonic development from distinct progenitor domains distributed orderly along the dorso-ventral axis of the neural tube. A single ventral progenitor population named p2 generates at least five V2 interneuron subsets. Whether the diversification of V2 precursors into multiple subsets occurs within the p2 progenitor domain or involves a later compartment of early-born V2 interneurons remains unsolved. Here, we provide evidence that the p2 domain produces an intermediate V2 precursor compartment characterized by the transient expression of the transcriptional repressor Vsx1. These cells display an original repertoire of cellular markers distinct from that of any V2 interneuron population. They have exited the cell cycle but have not initiated neuronal differentiation. They coexpress Vsx1 and Foxn4, suggesting that they can generate the known V2 interneuron populations as well as possible additional V2 subsets. Unlike V2 interneurons, the generation of Vsx1-positive precursors does not depend on the Notch signaling pathway but expression of Vsx1 in these cells requires Pax6. Hence, the p2 progenitor domain generates an intermediate V2 precursor compartment, characterized by the presence of the transcriptional repressor Vsx1, that contributes to V2 interneuron development.

17.
PLoS One ; 10(11): e0142280, 2015.
Article in English | MEDLINE | ID: mdl-26540198

ABSTRACT

Thioredoxin-2 (Trx2) is a mitochondrial protein using a dithiol active site to reduce protein disulfides. In addition to the cytoprotective function of this enzyme, several studies have highlighted the implication of Trx2 in cellular signaling events. In particular, growing evidence points to such roles of redox enzymes in developmental processes taking place in the central nervous system. Here, we investigate the potential implication of Trx2 in embryonic development of chick spinal cord. To this end, we first studied the distribution of the enzyme in this tissue and report strong expression of Trx2 in chick embryo post-mitotic neurons at E4.5 and in motor neurons at E6.5. Using in ovo electroporation, we go on to highlight a cytoprotective effect of Trx2 on the programmed cell death (PCD) of neurons during spinal cord development and in a novel cultured spinal cord explant model. These findings suggest an implication of Trx2 in the modulation of developmental PCD of neurons during embryonic development of the spinal cord, possibly through redox regulation mechanisms.


Subject(s)
Cell Death/physiology , Motor Neurons/metabolism , Motor Neurons/physiology , Spinal Cord/metabolism , Spinal Cord/physiology , Thioredoxins/metabolism , Animals , Apoptosis/physiology , Cell Differentiation/physiology , Chick Embryo , Gene Expression Regulation, Developmental/genetics
18.
Dev Neurobiol ; 75(7): 721-37, 2015 Jul.
Article in English | MEDLINE | ID: mdl-25369423

ABSTRACT

Motor activities are controlled by neural networks in the ventral spinal cord and consist in motor neurons and a set of distinct cardinal classes of spinal interneurons. These interneurons arise from distinct progenitor domains (p0-p3) delineated according to a transcriptional code. Neural progenitors of each domain express a unique combination of transcription factors (TFs) that largely contribute to determine the fate of four classes of interneurons (V0-V3) and motor neurons. In p2 domain, at least four subtypes of interneurons namely V2a, V2b, V2c, and Pax6(+) V2 are generated. Although genetic and molecular mechanisms that specify V2a and V2b are dependent on complex interplay between several TFs including Nkx6.1, Irx3, Gata2, Foxn4, and Ascl1, and signaling pathways such as Notch and TGF-ß, the sequence order of the activation of these regulators and their respective contribution are not completely elucidated yet. Here, we provide evidence by loss- or gain-of-function experiments that Gata2 is necessary for the normal development of both V2a and V2b neurons. We demonstrate that Nkx6.1 and Dll4 positively regulate the activation of Gata2 and Foxn4 in p2 progenitors. Gata2 also participates in the maintenance of p2 domain by repressing motor neuron differentiation and exerting a feedback control on patterning genes. Finally, Gata2 promotes the selective activation of V2b program at the expense of V2a fate. Thus our results provide new insights on the hierarchy and complex interactions between regulators of V2 genetic program.


Subject(s)
Avian Proteins/metabolism , GATA2 Transcription Factor/metabolism , Interneurons/physiology , Spinal Cord/embryology , Spinal Cord/physiology , Adaptor Proteins, Signal Transducing , Animals , Basic Helix-Loop-Helix Transcription Factors/genetics , Basic Helix-Loop-Helix Transcription Factors/metabolism , Calcium-Binding Proteins , Chick Embryo , Eye Proteins/genetics , Eye Proteins/metabolism , Forkhead Transcription Factors/metabolism , GATA2 Transcription Factor/genetics , Homeodomain Proteins/genetics , Homeodomain Proteins/metabolism , Interneurons/cytology , Intracellular Signaling Peptides and Proteins/genetics , Intracellular Signaling Peptides and Proteins/metabolism , Membrane Proteins/genetics , Membrane Proteins/metabolism , Mice, Knockout , Mice, Transgenic , Motor Neurons/cytology , Motor Neurons/physiology , Neurogenesis/physiology , PAX6 Transcription Factor , Paired Box Transcription Factors/genetics , Paired Box Transcription Factors/metabolism , RNA, Untranslated/genetics , RNA, Untranslated/metabolism , Repressor Proteins/genetics , Repressor Proteins/metabolism , Spinal Cord/cytology , Transcription Factors/metabolism , Transforming Growth Factor beta/metabolism
19.
Nat Neurosci ; 17(9): 1171-9, 2014 Sep.
Article in English | MEDLINE | ID: mdl-25108913

ABSTRACT

The cadherin Celsr3 regulates the directional growth and targeting of axons in the CNS, but whether it acts in collaboration with or in parallel to other guidance cues is unknown. Furthermore, the function of Celsr3 in the peripheral nervous system is still largely unexplored. Here we show that Celsr3 mediates pathfinding of motor axons innervating the hindlimb. In mice, Celsr3-deficient axons of the peroneal nerve segregate from those of the tibial nerve but fail to extend dorsally, and they stall near the branch point. Mutant axons respond to repulsive ephrinA-EphA forward signaling and glial cell-derived neurotrophic factor (GDNF). However, they are insensitive to attractive EphA-ephrinA reverse signaling. In transfected cells, Celsr3 immunoprecipitates with ephrinA2, ephrinA5, Ret, GDNF family receptor α1 (GFRα1) and Frizzled3 (Fzd3). The function of Celsr3 is Fzd3 dependent but Vangl2 independent. Our results provide evidence that the Celsr3-Fzd3 pathway interacts with EphA-ephrinA reverse signaling to guide motor axons in the hindlimb.


Subject(s)
Axons/physiology , Cadherins/genetics , Hindlimb/innervation , Motor Neurons/physiology , Peroneal Nerve/physiology , Receptors, Cell Surface/genetics , Tibial Nerve/physiology , Animals , Cadherins/metabolism , Cells, Cultured , Clubfoot/embryology , Clubfoot/genetics , Ephrin-A2/metabolism , Ephrin-A5/metabolism , Female , Frizzled Receptors/metabolism , Green Fluorescent Proteins/genetics , HEK293 Cells , Hindlimb/abnormalities , Humans , Male , Mice, Knockout , Motor Neurons/ultrastructure , Peroneal Nerve/cytology , Peroneal Nerve/embryology , Pregnancy , Receptors, Cell Surface/metabolism , Signal Transduction/physiology , Tibial Nerve/cytology , Tibial Nerve/embryology
20.
J Biomed Mater Res A ; 102(7): 2345-55, 2014 Jul.
Article in English | MEDLINE | ID: mdl-23946111

ABSTRACT

We hypothesized that vascular endothelial growth factor (VEGF)-containing hydrogels that gelify in situ after injection into a traumatized spinal cord, could stimulate spinal cord regeneration. Injectable hydrogels composed of 0.5% Pronova UPMVG MVG alginate, supplemented or not with fibrinogen, were used. The addition of fibrinogen to alginate had no effect on cell proliferation in vitro but supported neurite growth ex vivo. When injected into a rat spinal cord in a hemisection model, alginate supplemented with fibrinogen was well tolerated. The release of VEGF that was incorporated into the hydrogel was influenced by the VEGF formulation [encapsulated in microspheres or in nanoparticles or in solution (free)]. A combination of free VEGF and VEGF-loaded nanoparticles was mixed with alginate:fibrinogen and injected into the lesion of the spinal cord. Four weeks post injection, angiogenesis and neurite growth were increased compared to hydrogel alone. The local delivery of VEGF by injectable alginate:fibrinogen-based hydrogel induced some plasticity in the injured spinal cord involving fiber growth into the lesion site.


Subject(s)
Hydrogels , Neuronal Plasticity , Spinal Cord Injuries/physiopathology , Vascular Endothelial Growth Factor A/administration & dosage , Animals , Biocompatible Materials , Mice , NIH 3T3 Cells , Rats
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