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19
result(s) for
"Mangin, Jean-Marie"
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Adult-born SVZ progenitors receive transient synapses during remyelination in corpus callosum
by
Aguirre, Adan
,
Etxeberria, Ainhoa
,
Gallo, Vittorio
in
631/378/2596/1705
,
631/378/2606
,
631/378/548
2010
After a focal demyelination of the corpus callosum in adult mice, the demyelinated axons form functional excitatory synapses onto adult-born oligodendrocyte progenitor cells. This input is lost later on.
We found that demyelinated axons formed functional glutamatergic synapses onto adult-born NG2
+
oligodendrocyte progenitor cells (OPCs) migrating from the subventricular zone after focal demyelination of adult mice corpus callosum. This glutamatergic input was substantially reduced compared with endogenous callosal OPCs 1 week after lesion and was lost on differentiation into oligodendrocytes. Therefore, axon–oligodendrocyte progenitor synapse formation is a transient and regulated step that occurs during remyelination of callosal axons.
Journal Article
Mapping astrocyte activity domains by light sheet imaging and spatio-temporal correlation screening
by
Moro, Daniela Herrera
,
Didienne, Steve
,
Li, Dongdong
in
Animals
,
Astrocytes
,
Astrocytes - physiology
2020
Astrocytes are a major type of glial cell in the mammalian brain, essentially regulating neuronal development and function. Quantitative imaging represents an important approach to study astrocytic signaling in neural circuits. Focusing on astrocytic Ca2+ activity, a key pathway implicated in astrocye-neuron interaction, we here report a strategy combining fast light sheet fluorescence microscopy (LSFM) and correlative screening-based time series analysis, to map activity domains in astrocytes in living mammalian nerve tissue. Light sheet of micron-scale thickness enables wide-field optical sectioning to image astrocytes in acute mouse brain slices. Using both chemical and genetically encoded Ca2+ indicators, we demonstrate the complementary advantages of LSFM in mapping Ca2+ domains in astrocyte populations as compared to epifluorescence and two-photon microscopy. Our approach then revealed distinct kinetics of Ca2+ signals between cortical and hypothalamic astrocytes in resting conditions and following the activation of adrenergic G protein coupled receptor (GPCR). This observation highlights the activity heterogeneity across regionally distinct astrocyte populations, and indicates the potential of our method for investigating dynamic signals in astrocytes.
•Light sheet optical sectioning used for astrocyte imaging.•Spatio-temporal correlation screening for dynamic signal detection.•Combining both tools enables mapping of astrocyte Ca2+ domains.•Activity heterogeneity is revealed between cortical and hypothalamic astrocytes.
Journal Article
Cholinergic left-right asymmetry in the habenulo-interpeduncular pathway
by
Thisse, Christine
,
Thisse, Bernard
,
Santhakumar, Kirankumar
in
acetylcholine
,
Acetylcholine - metabolism
,
Addiction
2013
The habenulo-interpeduncular pathway, a highly conserved cholinergic system, has emerged as a valuable model to study left-right asymmetry in the brain. In larval zebrafish, the bilaterally paired dorsal habenular nuclei (dHb) exhibit prominent left-right differences in their organization, gene expression, and connectivity, but their cholinergic nature was unclear. Through the discovery of a duplicated cholinergic gene locus, we now show that choline acetyltransferase and vesicular acetylcholine transporter homologs are preferentially expressed in the right dHb of larval zebrafish. Genes encoding the nicotinic acetylcholine receptor subunits α2 and β4 are transcribed in the target interpeduncular nucleus (IPN), suggesting that the asymmetrical cholinergic pathway is functional. To confirm this, we activated channelrhodopsin-2 specifically in the larval dHb and performed whole-cell patch-clamp recording of IPN neurons. The response to optogenetic or electrical stimulation of the right dHb consisted of an initial fast glutamatergic excitatory postsynaptic current followed by a slow-rising cholinergic current. In adult zebrafish, the dHb are divided into discrete cholinergic and peptidergic subnuclei that differ in size between the left and right sides of the brain. After exposing adults to nicotine, fos expression was activated in subregions of the IPN enriched for specific nicotinic acetylcholine receptor subunits. Our studies of the newly identified cholinergic gene locus resolve the neurotransmitter identity of the zebrafish habenular nuclei and reveal functional asymmetry in a major cholinergic neuromodulatory pathway of the vertebrate brain.
Journal Article
Experience-dependent regulation of NG2 progenitors in the developing barrel cortex
by
Gallo, Vittorio
,
Scafidi, Joseph
,
Mangin, Jean-Marie
in
631/378/1697
,
631/378/2571
,
Animal Genetics and Genomics
2012
NG2 proteoglycan
+
cells are neural and oligodendrocyte progenitors, and NG2
+
cells in the developing barrel cortex receive glutamatergic thalamocortical inputs. Here, the authors show that NG2
+
cells are primarily localized in barrel septa and that sensory deprivation induces NG2
+
cell proliferation and differential localization in and around the barrels.
We found that, during the formation of the mouse barrel cortex, NG2 cells received glutamatergic synapses from thalamocortical fibers and preferentially accumulated along septa separating the barrels. Sensory deprivation reduced thalamocortical inputs on NG2 cells and increased their proliferation, leading to a more uniform distribution in the deprived barrels. Thus, early sensory experience regulates thalamocortical innervation on NG2 cells, as well as their proliferation and distribution during development.
Journal Article
Dynamic regulation of the cholinergic system in the spinal central nervous system
by
Rima, Mohamad
,
Abi Younes, Maroun
,
Lattouf, Yara
in
631/136
,
631/378
,
Acetylcholine receptors (nicotinic)
2020
While the role of cholinergic neurotransmission from motoneurons is well established during neuromuscular development, whether it regulates central nervous system development in the spinal cord is unclear. Zebrafish presents a powerful model to investigate how the cholinergic system is set up and evolves during neural circuit formation. In this study, we carried out a detailed spatiotemporal analysis of the cholinergic system in embryonic and larval zebrafish. In 1-day-old embryos, we show that spinal motoneurons express presynaptic cholinergic genes including
choline acetyltransferase
(
chata
)
, vesicular acetylcholine transporters
(
vachta
,
vachtb
)
, high-affinity choline transporter
(
hacta
) and acetylcholinesterase (
ache
), while nicotinic acetylcholine receptor (nAChR) subunits are mainly expressed in interneurons. However, in 3-day-old embryos, we found an unexpected decrease in presynaptic cholinergic transcript expression in a rostral to caudal gradient in the spinal cord, which continued during development. On the contrary, nAChR subunits remained highly expressed throughout the spinal cord. We found that protein and enzymatic activities of presynaptic cholinergic genes were also reduced in the rostral spinal cord. Our work demonstrating that cholinergic genes are initially expressed in the embryonic spinal cord, which is dynamically downregulated during development suggests that cholinergic signaling may play a pivotal role during the formation of intra-spinal locomotor circuit.
Journal Article
Two opposite voltage-dependent currents control the unusual early development pattern of embryonic Renshaw cell electrical activity
by
Meunier, Claude
,
Arulkandarajah, Hervé
,
Czarnecki, Antonny
in
biophysical modeling
,
development
,
embryo
2021
Renshaw cells (V1 R ) are excitable as soon as they reach their final location next to the spinal motoneurons and are functionally heterogeneous. Using multiple experimental approaches, in combination with biophysical modeling and dynamical systems theory, we analyzed, for the first time, the mechanisms underlying the electrophysiological properties of V1 R during early embryonic development of the mouse spinal cord locomotor networks (E11.5–E16.5). We found that these interneurons are subdivided into several functional clusters from E11.5 and then display an unexpected transitory involution process during which they lose their ability to sustain tonic firing. We demonstrated that the essential factor controlling the diversity of the discharge pattern of embryonic V1 R is the ratio of a persistent sodium conductance to a delayed rectifier potassium conductance. Taken together, our results reveal how a simple mechanism, based on the synergy of two voltage-dependent conductances that are ubiquitous in neurons, can produce functional diversity in embryonic V1 R and control their early developmental trajectory.
Journal Article
Adult-born SVZ progenitors receive transient glutamatergic synapses during remyelination of the corpus callosum
2010
We demonstrate that, after focal demyelination of adult mice corpus callosum, demyelinated axons form functional glutamatergic synapses onto adult-born NG2+ oligodendrocyte progenitor cells (OPCs) migrating from the subventricular zone (SVZ). One week after lesion, this glutamatergic input is significantly reduced compared to endogenous callosal OPCs, and is lost upon differentiation into oligodendrocytes. Therefore, axon-OP synapse formation is a transient and regulated step that occurs during remyelination of callosal axons.
Journal Article
Birth order specified recruitment of motor circuits during spontaneous neural activity in zebrafish embryo
2024
Modular organization of spinal neural circuits control dynamic regulation of locomotion. However, it is unknown when or how the distinct microcircuits emerge during development. We carried out high-resolution calcium imaging of neural activity driving the first motor behavior in one day old zebrafish embryo. During this period, at least two waves of neurogenesis occur to generate primary and secondary motoneurons. We found that embryos first display a single highly synchronized rhythmic neuronal circuit containing interneurons and motoneurons. Later, two distinct interneuron-motoneuron circuits emerge with one containing early-born motoneurons displaying low-frequency activity and the other containing later-born motoneurons with high-frequency activity. The results indicate a mode of birth order determined microcircuits where neurons that are born together are recruited together. Nicotine affected neuronal activity frequency, revealing a functional role for cholinergic signaling in the emergence of patterned spinal circuits. Indeed, we found aberrant arrhythmic synchronized activity in mutants for cholineacetyltransferase-a where acetylcholine is no longer synthesized. Overall, we reveal the sequential recruitment of birth order specified microcircuits during the emergence of the earliest motor behavior and highlight a conserved role for cholinergic signaling in regulating rhythmic neural activity in the embryonic spinal cord.
Physiology of Oligodendrocytes
2012
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