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1.
Cell ; 187(11): 2767-2784.e23, 2024 May 23.
Article in English | MEDLINE | ID: mdl-38733989

ABSTRACT

The vasculature of the central nervous system is a 3D lattice composed of laminar vascular beds interconnected by penetrating vessels. The mechanisms controlling 3D lattice network formation remain largely unknown. Combining viral labeling, genetic marking, and single-cell profiling in the mouse retina, we discovered a perivascular neuronal subset, annotated as Fam19a4/Nts-positive retinal ganglion cells (Fam19a4/Nts-RGCs), directly contacting the vasculature with perisomatic endfeet. Developmental ablation of Fam19a4/Nts-RGCs led to disoriented growth of penetrating vessels near the ganglion cell layer (GCL), leading to a disorganized 3D vascular lattice. We identified enriched PIEZO2 expression in Fam19a4/Nts-RGCs. Piezo2 loss from all retinal neurons or Fam19a4/Nts-RGCs abolished the direct neurovascular contacts and phenocopied the Fam19a4/Nts-RGC ablation deficits. The defective vascular structure led to reduced capillary perfusion and sensitized the retina to ischemic insults. Furthermore, we uncovered a Piezo2-dependent perivascular granule cell subset for cerebellar vascular patterning, indicating neuronal Piezo2-dependent 3D vascular patterning in the brain.


Subject(s)
Cerebellum , Neurons , Retina , Animals , Female , Male , Mice , Cerebellum/metabolism , Cerebellum/blood supply , Cerebellum/cytology , Ion Channels/metabolism , Mice, Inbred C57BL , Neurons/metabolism , Retina/cytology , Retina/metabolism , Retinal Ganglion Cells/metabolism , Retinal Vessels/metabolism
2.
Nature ; 625(7996): 788-796, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38029793

ABSTRACT

The expansion of the neocortex, a hallmark of mammalian evolution1,2, was accompanied by an increase in cerebellar neuron numbers3. However, little is known about the evolution of the cellular programmes underlying the development of the cerebellum in mammals. In this study we generated single-nucleus RNA-sequencing data for around 400,000 cells to trace the development of the cerebellum from early neurogenesis to adulthood in human, mouse and the marsupial opossum. We established a consensus classification of the cellular diversity in the developing mammalian cerebellum and validated it by spatial mapping in the fetal human cerebellum. Our cross-species analyses revealed largely conserved developmental dynamics of cell-type generation, except for Purkinje cells, for which we observed an expansion of early-born subtypes in the human lineage. Global transcriptome profiles, conserved cell-state markers and gene-expression trajectories across neuronal differentiation show that cerebellar cell-type-defining programmes have been overall preserved for at least 160 million years. However, we also identified many orthologous genes that gained or lost expression in cerebellar neural cell types in one of the species or evolved new expression trajectories during neuronal differentiation, indicating widespread gene repurposing at the cell-type level. In sum, our study unveils shared and lineage-specific gene-expression programmes governing the development of cerebellar cells and expands our understanding of mammalian brain evolution.


Subject(s)
Cerebellum , Evolution, Molecular , Mammals , Neurogenesis , Animals , Humans , Mice , Cell Lineage/genetics , Cerebellum/cytology , Cerebellum/embryology , Cerebellum/growth & development , Fetus/cytology , Fetus/embryology , Gene Expression Regulation, Developmental , Neurogenesis/genetics , Neurons/cytology , Neurons/metabolism , Opossums/embryology , Opossums/growth & development , Purkinje Cells/cytology , Purkinje Cells/metabolism , Single-Cell Gene Expression Analysis , Species Specificity , Transcriptome , Mammals/embryology , Mammals/growth & development
3.
Nature ; 624(7991): 403-414, 2023 Dec.
Article in English | MEDLINE | ID: mdl-38092914

ABSTRACT

The brain controls nearly all bodily functions via spinal projecting neurons (SPNs) that carry command signals from the brain to the spinal cord. However, a comprehensive molecular characterization of brain-wide SPNs is still lacking. Here we transcriptionally profiled a total of 65,002 SPNs, identified 76 region-specific SPN types, and mapped these types into a companion atlas of the whole mouse brain1. This taxonomy reveals a three-component organization of SPNs: (1) molecularly homogeneous excitatory SPNs from the cortex, red nucleus and cerebellum with somatotopic spinal terminations suitable for point-to-point communication; (2) heterogeneous populations in the reticular formation with broad spinal termination patterns, suitable for relaying commands related to the activities of the entire spinal cord; and (3) modulatory neurons expressing slow-acting neurotransmitters and/or neuropeptides in the hypothalamus, midbrain and reticular formation for 'gain setting' of brain-spinal signals. In addition, this atlas revealed a LIM homeobox transcription factor code that parcellates the reticulospinal neurons into five molecularly distinct and spatially segregated populations. Finally, we found transcriptional signatures of a subset of SPNs with large soma size and correlated these with fast-firing electrophysiological properties. Together, this study establishes a comprehensive taxonomy of brain-wide SPNs and provides insight into the functional organization of SPNs in mediating brain control of bodily functions.


Subject(s)
Brain , Gene Expression Profiling , Neural Pathways , Neurons , Spinal Cord , Animals , Mice , Hypothalamus , Neurons/metabolism , Neuropeptides , Spinal Cord/cytology , Spinal Cord/metabolism , Brain/cytology , Brain/metabolism , Neurotransmitter Agents , Mesencephalon/cytology , Reticular Formation/cytology , Electrophysiology , Cerebellum/cytology , Cerebral Cortex/cytology
4.
Nature ; 612(7941): 787-794, 2022 12.
Article in English | MEDLINE | ID: mdl-36450980

ABSTRACT

Medulloblastoma (MB) is the most common malignant childhood brain tumour1,2, yet the origin of the most aggressive subgroup-3 form remains elusive, impeding development of effective targeted treatments. Previous analyses of mouse cerebella3-5 have not fully defined the compositional heterogeneity of MBs. Here we undertook single-cell profiling of freshly isolated human fetal cerebella to establish a reference map delineating hierarchical cellular states in MBs. We identified a unique transitional cerebellar progenitor connecting neural stem cells to neuronal lineages in developing fetal cerebella. Intersectional analysis revealed that the transitional progenitors were enriched in aggressive MB subgroups, including group 3 and metastatic tumours. Single-cell multi-omics revealed underlying regulatory networks in the transitional progenitor populations, including transcriptional determinants HNRNPH1 and SOX11, which are correlated with clinical prognosis in group 3 MBs. Genomic and Hi-C profiling identified de novo long-range chromatin loops juxtaposing HNRNPH1/SOX11-targeted super-enhancers to cis-regulatory elements of MYC, an oncogenic driver for group 3 MBs. Targeting the transitional progenitor regulators inhibited MYC expression and MYC-driven group 3 MB growth. Our integrated single-cell atlases of human fetal cerebella and MBs show potential cell populations predisposed to transformation and regulatory circuitries underlying tumour cell states and oncogenesis, highlighting hitherto unrecognized transitional progenitor intermediates predictive of disease prognosis and potential therapeutic vulnerabilities.


Subject(s)
Brain Neoplasms , Cell Transformation, Neoplastic , Fetus , Medulloblastoma , Humans , Brain Neoplasms/pathology , Cell Transformation, Neoplastic/pathology , Cerebellar Neoplasms/pathology , Cerebellum/cytology , Cerebellum/pathology , Fetus/cytology , Fetus/pathology , Medulloblastoma/pathology , Neural Stem Cells/cytology , Neural Stem Cells/pathology , Prognosis
5.
Development ; 151(13)2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38860486

ABSTRACT

Cerebellar granule neuron progenitors (GNPs) originate from the upper rhombic lip (URL), a germinative niche in which developmental defects produce human diseases. T-cell factor (TCF) responsiveness and Notch dependence are hallmarks of self-renewal in neural stem cells. TCF activity, together with transcripts encoding proneural gene repressors hairy and enhancer of split (Hes/Hey), are detected in the URL; however, their functions and regulatory modes are undeciphered. Here, we established amphibian as a pertinent model for studying vertebrate URL development. The amphibian long-lived URL is TCF active, whereas the external granular layer (EGL) is non-proliferative and expresses hes4 and hes5 genes. Using functional and transcriptomic approaches, we show that TCF activity is necessary for URL emergence and maintenance. We establish that the transcription factor Barhl1 controls GNP exit from the URL, acting partly through direct TCF inhibition. Identification of Barhl1 target genes suggests that, besides TCF, Barhl1 inhibits transcription of hes5 genes independently of Notch signaling. Observations in amniotes suggest a conserved role for Barhl in maintenance of the URL and/or EGL via co-regulation of TCF, Hes and Hey genes.


Subject(s)
Cerebellum , Neural Stem Cells , Animals , Neural Stem Cells/metabolism , Neural Stem Cells/cytology , Cerebellum/cytology , Cerebellum/metabolism , Gene Expression Regulation, Developmental , Neurons/metabolism , Neurons/cytology , Receptors, Notch/metabolism , Receptors, Notch/genetics , Basic Helix-Loop-Helix Transcription Factors/metabolism , Basic Helix-Loop-Helix Transcription Factors/genetics , Signal Transduction , Transcription Factors/metabolism , Transcription Factors/genetics , Rhombencephalon/metabolism , Rhombencephalon/cytology , Stem Cell Niche , Nerve Tissue Proteins/metabolism , Nerve Tissue Proteins/genetics
6.
Cell ; 148(1-2): 296-308, 2012 Jan 20.
Article in English | MEDLINE | ID: mdl-22265417

ABSTRACT

Although uridine-rich small nuclear RNAs (U-snRNAs) are essential for pre-mRNA splicing, little is known regarding their function in the regulation of alternative splicing or of the biological consequences of their dysfunction in mammals. Here, we demonstrate that mutation of Rnu2-8, one of the mouse multicopy U2 snRNA genes, causes ataxia and neurodegeneration. Coincident with the observed pathology, the level of mutant U2 RNAs was highest in the cerebellum and increased after granule neuron maturation. Furthermore, neuron loss was strongly dependent on the dosage of mutant and wild-type snRNA genes. Comprehensive transcriptome analysis identified a group of alternative splicing events, including the splicing of small introns, which were disrupted in the mutant cerebellum. Our results suggest that the expression of mammalian U2 snRNA genes, previously presumed to be ubiquitous, is spatially and temporally regulated, and dysfunction of a single U2 snRNA causes neuron degeneration through distortion of pre-mRNA splicing.


Subject(s)
Alternative Splicing , RNA, Small Nuclear/genetics , Animals , Ataxia/genetics , Base Sequence , Cerebellum/cytology , Cerebellum/metabolism , Gene Expression Profiling , Mice , Molecular Sequence Data , Mutagenesis , Mutation , Neurodegenerative Diseases/genetics , Sequence Alignment
7.
Cell ; 151(7): 1417-30, 2012 Dec 21.
Article in English | MEDLINE | ID: mdl-23260135

ABSTRACT

The high level of 5-hydroxymethylcytosine (5hmC) present in neuronal genomes suggests that mechanisms interpreting 5hmC in the CNS may differ from those present in embryonic stem cells. Here, we present quantitative, genome-wide analysis of 5hmC, 5-methylcytosine (5mC), and gene expression in differentiated CNS cell types in vivo. We report that 5hmC is enriched in active genes and that, surprisingly, strong depletion of 5mC is observed over these regions. The contribution of these epigenetic marks to gene expression depends critically on cell type. We identify methyl-CpG-binding protein 2 (MeCP2) as the major 5hmC-binding protein in the brain and demonstrate that MeCP2 binds 5hmC- and 5mC-containing DNA with similar high affinities. The Rett-syndrome-causing mutation R133C preferentially inhibits 5hmC binding. These findings support a model in which 5hmC and MeCP2 constitute a cell-specific epigenetic mechanism for regulation of chromatin structure and gene expression.


Subject(s)
Cerebellum/metabolism , Cytosine/analogs & derivatives , Epigenesis, Genetic , Methyl-CpG-Binding Protein 2/metabolism , 5-Methylcytosine/analogs & derivatives , Animals , Cerebellum/cytology , Chromatin/metabolism , Cytosine/metabolism , Humans , Mice , Mice, Knockout , Neuroglia/metabolism , Neurons/metabolism , Purkinje Cells/metabolism , Rett Syndrome/metabolism
8.
Nature ; 600(7888): 269-273, 2021 12.
Article in English | MEDLINE | ID: mdl-34789878

ABSTRACT

The brain is the seat of body weight homeostasis. However, our inability to control the increasing prevalence of obesity highlights a need to look beyond canonical feeding pathways to broaden our understanding of body weight control1-3. Here we used a reverse-translational approach to identify and anatomically, molecularly and functionally characterize a neural ensemble that promotes satiation. Unbiased, task-based functional magnetic resonance imaging revealed marked differences in cerebellar responses to food in people with a genetic disorder characterized by insatiable appetite. Transcriptomic analyses in mice revealed molecularly and topographically -distinct neurons in the anterior deep cerebellar nuclei (aDCN) that are activated by feeding or nutrient infusion in the gut. Selective activation of aDCN neurons substantially decreased food intake by reducing meal size without compensatory changes to metabolic rate. We found that aDCN activity terminates food intake by increasing striatal dopamine levels and attenuating the phasic dopamine response to subsequent food consumption. Our study defines a conserved satiation centre that may represent a novel therapeutic target for the management of excessive eating, and underscores the utility of a 'bedside-to-bench' approach for the identification of neural circuits that influence behaviour.


Subject(s)
Body Weight Maintenance/genetics , Body Weight Maintenance/physiology , Cerebellum/physiology , Food , Protein Biosynthesis , Reverse Genetics , Satiety Response/physiology , Adult , Animals , Appetite Regulation/genetics , Appetite Regulation/physiology , Cerebellar Nuclei/cytology , Cerebellar Nuclei/physiology , Cerebellum/cytology , Cues , Dopamine/metabolism , Eating/genetics , Eating/physiology , Feeding Behavior/physiology , Female , Homeostasis , Humans , Magnetic Resonance Imaging , Male , Mice , Mice, Inbred C57BL , Neostriatum/metabolism , Neurons/physiology , Obesity/genetics , Philosophy , Young Adult
9.
Annu Rev Neurosci ; 41: 233-253, 2018 07 08.
Article in English | MEDLINE | ID: mdl-29986160

ABSTRACT

Supervised learning plays a key role in the operation of many biological and artificial neural networks. Analysis of the computations underlying supervised learning is facilitated by the relatively simple and uniform architecture of the cerebellum, a brain area that supports numerous motor, sensory, and cognitive functions. We highlight recent discoveries indicating that the cerebellum implements supervised learning using the following organizational principles: ( a) extensive preprocessing of input representations (i.e., feature engineering), ( b) massively recurrent circuit architecture, ( c) linear input-output computations, ( d) sophisticated instructive signals that can be regulated and are predictive, ( e) adaptive mechanisms of plasticity with multiple timescales, and ( f) task-specific hardware specializations. The principles emerging from studies of the cerebellum have striking parallels with those in other brain areas and in artificial neural networks, as well as some notable differences, which can inform future research on supervised learning and inspire next-generation machine-based algorithms.


Subject(s)
Cerebellum/physiology , Models, Neurological , Nerve Net/physiology , Neurons/physiology , Supervised Machine Learning , Algorithms , Animals , Cerebellum/cytology , Humans , Neuronal Plasticity/physiology , Time Factors
10.
Cell ; 147(7): 1601-14, 2011 Dec 23.
Article in English | MEDLINE | ID: mdl-22196734

ABSTRACT

The assembly of synapses and neuronal circuits relies on an array of molecular recognition events and their modification by neuronal activity. Neurexins are a highly polymorphic family of synaptic receptors diversified by extensive alternative splicing. Neurexin variants exhibit distinct isoform-specific biochemical interactions and synapse assembly functions, but the mechanisms governing splice isoform choice are not understood. We demonstrate that Nrxn1 alternative splicing is temporally and spatially controlled in the mouse brain. Neuronal activity triggers a shift in Nrxn1 splice isoform choice via calcium/calmodulin-dependent kinase IV signaling. Activity-dependent alternative splicing of Nrxn1 requires the KH-domain RNA-binding protein SAM68 that associates with RNA response elements in the Nrxn1 pre-mRNA. Our findings uncover SAM68 as a key regulator of dynamic control of Nrxn1 molecular diversity and activity-dependent alternative splicing in the central nervous system.


Subject(s)
Adaptor Proteins, Signal Transducing/metabolism , Alternative Splicing , Cerebellum/metabolism , Neural Cell Adhesion Molecules/metabolism , RNA-Binding Proteins/metabolism , Adaptor Proteins, Signal Transducing/genetics , Animals , Base Sequence , Calcium-Binding Proteins , Cerebellum/cytology , Humans , Mice , Mice, Knockout , Molecular Sequence Data , Neurons/metabolism , RNA-Binding Proteins/genetics , Response Elements
11.
J Neurosci ; 44(27)2024 Jul 03.
Article in English | MEDLINE | ID: mdl-38839301

ABSTRACT

Phospholipids (PLs) are asymmetrically distributed at the plasma membrane. This asymmetric lipid distribution is transiently altered during calcium-regulated exocytosis, but the impact of this transient remodeling on presynaptic function is currently unknown. As phospholipid scramblase 1 (PLSCR1) randomizes PL distribution between the two leaflets of the plasma membrane in response to calcium activation, we set out to determine its role in neurotransmission. We report here that PLSCR1 is expressed in cerebellar granule cells (GrCs) and that PLSCR1-dependent phosphatidylserine egress occurred at synapses in response to neuron stimulation. Synaptic transmission is impaired at GrC Plscr1 -/- synapses, and both PS egress and synaptic vesicle (SV) endocytosis are inhibited in Plscr1 -/- cultured neurons from male and female mice, demonstrating that PLSCR1 controls PL asymmetry remodeling and SV retrieval following neurotransmitter release. Altogether, our data reveal a novel key role for PLSCR1 in SV recycling and provide the first evidence that PL scrambling at the plasma membrane is a prerequisite for optimal presynaptic performance.


Subject(s)
Cerebellum , Phospholipid Transfer Proteins , Synapses , Synaptic Transmission , Synaptic Vesicles , Animals , Synaptic Vesicles/metabolism , Synaptic Transmission/physiology , Mice , Phospholipid Transfer Proteins/metabolism , Phospholipid Transfer Proteins/genetics , Female , Male , Cerebellum/cytology , Synapses/metabolism , Synapses/physiology , Cells, Cultured , Mice, Knockout , Mice, Inbred C57BL , Neurons/metabolism , Neurons/physiology , Endocytosis/physiology
12.
Nature ; 572(7767): 67-73, 2019 08.
Article in English | MEDLINE | ID: mdl-31043743

ABSTRACT

Study of the origin and development of cerebellar tumours has been hampered by the complexity and heterogeneity of cerebellar cells that change over the course of development. Here we use single-cell transcriptomics to study more than 60,000 cells from the developing mouse cerebellum and show that different molecular subgroups of childhood cerebellar tumours mirror the transcription of cells from distinct, temporally restricted cerebellar lineages. The Sonic Hedgehog medulloblastoma subgroup transcriptionally mirrors the granule cell hierarchy as expected, while group 3 medulloblastoma resembles Nestin+ stem cells, group 4 medulloblastoma resembles unipolar brush cells, and PFA/PFB ependymoma and cerebellar pilocytic astrocytoma resemble the prenatal gliogenic progenitor cells. Furthermore, single-cell transcriptomics of human childhood cerebellar tumours demonstrates that many bulk tumours contain a mixed population of cells with divergent differentiation. Our data highlight cerebellar tumours as a disorder of early brain development and provide a proximate explanation for the peak incidence of cerebellar tumours in early childhood.


Subject(s)
Cerebellar Neoplasms/genetics , Cerebellar Neoplasms/pathology , Evolution, Molecular , Fetus/metabolism , Gene Expression Regulation, Developmental , Gene Expression Regulation, Neoplastic , Transcription, Genetic , Animals , Cerebellar Neoplasms/classification , Cerebellum/cytology , Cerebellum/embryology , Cerebellum/metabolism , Child , Female , Fetus/cytology , Glioma/classification , Glioma/genetics , Glioma/pathology , Humans , Medulloblastoma/classification , Medulloblastoma/genetics , Medulloblastoma/pathology , Mice , Sequence Analysis, RNA , Single-Cell Analysis , Time Factors , Transcriptome/genetics
13.
Pediatr Res ; 96(1): 97-103, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38172213

ABSTRACT

BACKGROUND: Premature infants may suffer from high levels of bilirubin that could lead to neurotoxicity. Bilirubin has been shown to decrease L1-mediated ERK1/2 signaling, L1 phosphorylation, and L1 tyrosine 1176 dephosphorylation. Furthermore, bilirubin redistributes L1 into lipid rafts (LR) and decreases L1-mediated neurite outgrowth. We demonstrate that choline supplementation improves L1 function and signaling in the presence of bilirubin. METHODS: Cerebellar granule neurons (CGN) were cultured with and without supplemental choline, and the effects on L1 signaling and function were measured in the presence of bilirubin. L1 activation of ERK1/2, L1 phosphorylation and dephosphorylation were measured. L1 distribution in LR was quantified and neurite outgrowth of CGN was determined. RESULTS: Forty µM choline significantly reduced the effect of bilirubin on L1 activation of ERK1/2 by 220% (p = 0.04), and increased L1 triggered changes in tyrosine phosphorylation /dephosphorylation of L1 by 34% (p = 0.026) and 35% (p = 0.02) respectively. Choline ameliorated the redistribution of L1 in lipid rafts by 38% (p = 0.02) and increased L1-mediated mean neurite length by 11% (p = 0.04). CONCLUSION: Choline pretreatment of CGN significantly reduced the disruption of L1 function by bilirubin. The supplementation of pregnant women and preterm infants with choline may increase infant resilience to the effects of bilirubin. IMPACT: This article establishes choline as an intervention for the neurotoxic effects of bilirubin on lipid rafts. This article provides clear evidence toward establishing one intervention for bilirubin neurotoxicity, where little is understood. This article paves the way for future investigation into the mechanism of the ameliorative effect of choline on bilirubin neurotoxicity.


Subject(s)
Bilirubin , Cerebellum , Choline , Neurons , Bilirubin/pharmacology , Bilirubin/metabolism , Choline/metabolism , Neurons/drug effects , Neurons/metabolism , Cerebellum/drug effects , Cerebellum/cytology , Animals , Phosphorylation , Cells, Cultured , Membrane Microdomains/metabolism , Membrane Microdomains/drug effects , Dietary Supplements , Neural Cell Adhesion Molecule L1/metabolism , Signal Transduction/drug effects , MAP Kinase Signaling System/drug effects , Humans , Neurites/drug effects , Neurites/metabolism
14.
Nature ; 563(7729): 113-116, 2018 11.
Article in English | MEDLINE | ID: mdl-30333626

ABSTRACT

Persistent and ramping neural activity in the frontal cortex anticipates specific movements1-6. Preparatory activity is distributed across several brain regions7,8, but it is unclear which brain areas are involved and how this activity is mediated by multi-regional interactions. The cerebellum is thought to be primarily involved in the short-timescale control of movement9-12; however, roles for this structure in cognitive processes have also been proposed13-16. In humans, cerebellar damage can cause defects in planning and working memory13. Here we show that persistent representation of information in the frontal cortex during motor planning is dependent on the cerebellum. Mice performed a sensory discrimination task in which they used short-term memory to plan a future directional movement. A transient perturbation in the medial deep cerebellar nucleus (fastigial nucleus) disrupted subsequent correct responses without hampering movement execution. Preparatory activity was observed in both the frontal cortex and the cerebellar nuclei, seconds before the onset of movement. The silencing of frontal cortex activity abolished preparatory activity in the cerebellar nuclei, and fastigial activity was necessary to maintain cortical preparatory activity. Fastigial output selectively targeted the behaviourally relevant part of the frontal cortex through the thalamus, thus closing a cortico-cerebellar loop. Our results support the view that persistent neural dynamics during motor planning is maintained by neural circuits that span multiple brain regions17, and that cerebellar computations extend beyond online motor control13-15,18.


Subject(s)
Cerebellum/physiology , Frontal Lobe/physiology , Psychomotor Performance/physiology , Animals , Cerebellum/cytology , Cues , Female , Frontal Lobe/cytology , Male , Mice , Movement/physiology , Neural Pathways , Neurons/physiology , Thalamus/cytology , Thalamus/physiology
15.
Int J Mol Sci ; 25(11)2024 May 21.
Article in English | MEDLINE | ID: mdl-38891784

ABSTRACT

The central nervous system of Pacific salmon retains signs of embryonic structure throughout life and a large number of neuroepithelial neural stem cells (NSCs) in the proliferative areas of the brain, in particular. However, the adult nervous system and neurogenesis studies on rainbow trout, Oncorhynchus mykiss, are limited. Here, we studied the localization of glutamine synthetase (GS), vimentin (Vim), and nestin (Nes), as well as the neurons formed in the postembryonic period, labeled with doublecortin (DC), under conditions of homeostatic growth in adult cerebellum and brainstem of Oncorhynchus mykiss using immunohistochemical methods and Western Immunoblotting. We observed that the distribution of vimentin (Vim), nestin (Nes), and glutamine synthetase (GS), which are found in the aNSPCs of both embryonic types (neuroepithelial cells) and in the adult type (radial glia) in the cerebellum and the brainstem of trout, has certain features. Populations of the adult neural stem/progenitor cells (aNSPCs) expressing GS, Vim, and Nes have different morphologies, localizations, and patterns of cluster formation in the trout cerebellum and brainstem, which indicates the morphological and, obviously, functional heterogeneity of these cells. Immunolabeling of PCNA revealed areas in the cerebellum and brainstem of rainbow trout containing proliferating cells which coincide with areas expressing Vim, Nes, and GS. Double immunolabeling revealed the PCNA/GS PCNA/Vim coexpression patterns in the neuroepithelial-type cells in the PVZ of the brainstem. PCNA/GS coexpression in the RG was detected in the submarginal zone of the brainstem. The results of immunohistochemical study of the DC distribution in the cerebellum and brainstem of trout have showed a high level of expression of this marker in various cell populations. This may indicate: (i) high production of the adult-born neurons in the cerebellum and brainstem of adult trout, (ii) high plasticity of neurons in the cerebellum and brainstem of trout. We assume that the source of new cells in the trout brain, along with PVZ and SMZ, containing proliferating cells, may be local neurogenic niches containing the PCNA-positive and silent (PCNA-negative), but expressing NSC markers, cells. The identification of cells expressing DC, Vim, and Nes in the IX-X cranial nerve nuclei of trout was carried out.


Subject(s)
Brain Stem , Cerebellum , Neural Stem Cells , Neurogenesis , Neuronal Plasticity , Oncorhynchus mykiss , Animals , Oncorhynchus mykiss/metabolism , Oncorhynchus mykiss/growth & development , Cerebellum/metabolism , Cerebellum/cytology , Cerebellum/growth & development , Neurogenesis/physiology , Neuronal Plasticity/physiology , Neural Stem Cells/metabolism , Neural Stem Cells/cytology , Brain Stem/metabolism , Brain Stem/cytology , Vimentin/metabolism , Neurons/metabolism , Neurons/cytology , Proliferating Cell Nuclear Antigen/metabolism , Glutamate-Ammonia Ligase/metabolism
16.
J Neurosci ; 42(4): 581-600, 2022 01 26.
Article in English | MEDLINE | ID: mdl-34857649

ABSTRACT

Proprioception, the sense of limb and body position, generates a map of the body that is essential for proper motor control, yet we know little about precisely how neurons in proprioceptive pathways are wired. Defining the anatomy of secondary neurons in the spinal cord that integrate and relay proprioceptive and potentially cutaneous information from the periphery to the cerebellum is fundamental to understanding how proprioceptive circuits function. Here, we define the unique anatomic trajectories of long-range direct and indirect spinocerebellar pathways as well as local intersegmental spinal circuits using genetic tools in both male and female mice. We find that Clarke's column neurons, a major contributor to the direct spinocerebellar pathway, has mossy fiber terminals that diversify extensively in the cerebellar cortex with axons terminating bilaterally, but with no significant axon collaterals within the spinal cord, medulla, or cerebellar nuclei. By contrast, we find that two of the indirect pathways, the spino-lateral reticular nucleus and spino-olivary pathways, are in part, derived from cervical Atoh1-lineage neurons, whereas thoracolumbar Atoh1-lineage neurons project mostly locally within the spinal cord. Notably, while cervical and thoracolumbar Atoh1-lineage neurons connect locally with motor neurons, no Clarke's column to motor neuron connections were detected. Together, we define anatomic differences between long-range direct, indirect, and local proprioceptive subcircuits that likely mediate different components of proprioceptive-motor behaviors.SIGNIFICANCE STATEMENT We define the anatomy of long-range direct and indirect spinocerebellar pathways as well as local spinal proprioceptive circuits. We observe that mossy fiber axon terminals of Clarke's column neurons diversify proprioceptive information across granule cells in multiple lobules on both ipsilateral and contralateral sides, sending no significant collaterals within the spinal cord, medulla, or cerebellar nuclei. Strikingly, we find that cervical spinal cord Atoh1-lineage neurons form mainly the indirect spino-lateral reticular nucleus and spino-olivary tracts and thoracolumbar Atoh1-lineage neurons project locally within the spinal cord, whereas only a few Atoh1-lineage neurons form a direct spinocerebellar tract.


Subject(s)
Cerebellum/physiology , Nerve Net/physiology , Proprioception/physiology , Spinal Cord/physiology , Spinocerebellar Tracts/physiology , Animals , Animals, Newborn , Cerebellum/chemistry , Cerebellum/cytology , Mice , Mice, Inbred C57BL , Mice, Transgenic , Nerve Net/chemistry , Nerve Net/cytology , Spinal Cord/chemistry , Spinal Cord/cytology , Spinocerebellar Tracts/chemistry , Spinocerebellar Tracts/cytology
17.
J Biol Chem ; 298(3): 101712, 2022 03.
Article in English | MEDLINE | ID: mdl-35150738

ABSTRACT

Alpha-tocopherol (vitamin E) is an essential nutrient that functions as a major lipid-soluble antioxidant in humans. The alpha-tocopherol transfer protein (TTP) binds α-tocopherol with high affinity and selectivity and regulates whole-body distribution of the vitamin. Heritable mutations in the TTPA gene result in familial vitamin E deficiency, elevated indices of oxidative stress, and progressive neurodegeneration that manifest primarily in spinocerebellar ataxia. Although the essential role of vitamin E in neurological health has been recognized for over 50 years, the mechanisms by which this essential nutrient is transported in the central nervous system are poorly understood. Here we found that, in the murine cerebellum, TTP is selectively expressed in glial fibrillary acidic protein-positive astrocytes, where it facilitates efflux of vitamin E to neighboring neurons. We also show that induction of oxidative stress enhances the transcription of the TtpA gene in cultured cerebellar astrocytes. Furthermore, secretion of vitamin E from astrocytes is mediated by an ABC-type transporter, and uptake of the vitamin into neurons involves the low-density lipoprotein receptor-related protein 1. Taken together, our data indicate that TTP-expressing astrocytes control the delivery of vitamin E from astrocytes to neurons, and that this process is homeostatically responsive to oxidative stress. These are the first observations that address the detailed molecular mechanisms of vitamin E transport in the central nervous system, and these results have important implications for understanding the molecular underpinnings of oxidative stress-related neurodegenerative diseases.


Subject(s)
Astrocytes , Carrier Proteins , Cerebellum , Neurons , Vitamin E , alpha-Tocopherol , ATP-Binding Cassette Transporters/metabolism , Animals , Astrocytes/cytology , Astrocytes/metabolism , Carrier Proteins/metabolism , Cerebellum/cytology , Cerebellum/metabolism , Humans , Mice , Neurons/cytology , Neurons/metabolism , Tissue Plasminogen Activator/metabolism , Tocopherols , Vitamin E/metabolism , Vitamins , alpha-Tocopherol/metabolism
18.
Development ; 147(3)2020 02 03.
Article in English | MEDLINE | ID: mdl-31932349

ABSTRACT

Cerebellar granule cell (GC) development relies on precise regulation of sonic hedgehog (Shh)-Gli signalling activity, failure of which is associated with motor disorders and medulloblastoma. Mutations in the pathway regulator suppressor of fused (Sufu), which modulates Gli activators and repressors, are linked to cerebellar dysfunction and tumourigenesis. The mechanism by which Sufu calibrates Shh signalling in GCs is unknown. Math1-Cre-mediated deletion of Sufu in mouse GC progenitors (GCPs) demonstrated that Sufu restricts GCP proliferation and promotes cell cycle exit, by promoting expression of Gli3R and suppressing Gli2 levels. Sufu is also required to promote a high threshold of pathway activity in GCPs. Remarkably, central cerebellar lobules are more deleteriously impacted by Sufu deletion, but are less sensitive to downstream genetic manipulations to reduce Gli2 expression or overexpress a Gli3R mimic, compared with anterior lobules. Transcriptome sequencing uncovered new Sufu targets, especially Fgf8, which is upregulated in Sufu-mutant GCPs. We demonstrate that Fgf8 is necessary and sufficient to drive Sufu-mutant GCP proliferation. This study reveals new insights into the spatial and temporal regulation of cerebellar Shh-Gli signalling, while uncovering new targets, such as Fgf8.


Subject(s)
Cell Proliferation/genetics , Cerebellum/cytology , Fibroblast Growth Factor 8/metabolism , Nerve Tissue Proteins/metabolism , Neurons/metabolism , Repressor Proteins/metabolism , Zinc Finger Protein Gli2/metabolism , Zinc Finger Protein Gli3/metabolism , Animals , Cell Cycle/genetics , Cerebellum/growth & development , Female , Fibroblast Growth Factor 8/genetics , Gene Expression Regulation, Developmental , Hedgehog Proteins/metabolism , Male , Mice , Mice, Transgenic , Nerve Tissue Proteins/genetics , Repressor Proteins/genetics , Signal Transduction/genetics , Transcriptome , Zinc Finger Protein Gli2/genetics , Zinc Finger Protein Gli3/genetics
19.
PLoS Biol ; 18(1): e3000596, 2020 01.
Article in English | MEDLINE | ID: mdl-31905212

ABSTRACT

Neurons store information by changing synaptic input weights. In addition, they can adjust their membrane excitability to alter spike output. Here, we demonstrate a role of such "intrinsic plasticity" in behavioral learning in a mouse model that allows us to detect specific consequences of absent excitability modulation. Mice with a Purkinje-cell-specific knockout (KO) of the calcium-activated K+ channel SK2 (L7-SK2) show intact vestibulo-ocular reflex (VOR) gain adaptation but impaired eyeblink conditioning (EBC), which relies on the ability to establish associations between stimuli, with the eyelid closure itself depending on a transient suppression of spike firing. In these mice, the intrinsic plasticity of Purkinje cells is prevented without affecting long-term depression or potentiation at their parallel fiber (PF) input. In contrast to the typical spike pattern of EBC-supporting zebrin-negative Purkinje cells, L7-SK2 neurons show reduced background spiking but enhanced excitability. Thus, SK2 plasticity and excitability modulation are essential for specific forms of motor learning.


Subject(s)
Action Potentials/genetics , Learning/physiology , Memory/physiology , Motor Activity/physiology , Purkinje Cells/metabolism , Small-Conductance Calcium-Activated Potassium Channels/physiology , Animals , Cerebellum/cytology , Cerebellum/metabolism , Female , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Neuronal Plasticity/physiology , Reflex, Vestibulo-Ocular , Small-Conductance Calcium-Activated Potassium Channels/metabolism
20.
Nature ; 544(7648): 96-100, 2017 04 06.
Article in English | MEDLINE | ID: mdl-28321129

ABSTRACT

The human brain contains approximately 60 billion cerebellar granule cells, which outnumber all other brain neurons combined. Classical theories posit that a large, diverse population of granule cells allows for highly detailed representations of sensorimotor context, enabling downstream Purkinje cells to sense fine contextual changes. Although evidence suggests a role for the cerebellum in cognition, granule cells are known to encode only sensory and motor context. Here, using two-photon calcium imaging in behaving mice, we show that granule cells convey information about the expectation of reward. Mice initiated voluntary forelimb movements for delayed sugar-water reward. Some granule cells responded preferentially to reward or reward omission, whereas others selectively encoded reward anticipation. Reward responses were not restricted to forelimb movement, as a Pavlovian task evoked similar responses. Compared to predictable rewards, unexpected rewards elicited markedly different granule cell activity despite identical stimuli and licking responses. In both tasks, reward signals were widespread throughout multiple cerebellar lobules. Tracking the same granule cells over several days of learning revealed that cells with reward-anticipating responses emerged from those that responded at the start of learning to reward delivery, whereas reward-omission responses grew stronger as learning progressed. The discovery of predictive, non-sensorimotor encoding in granule cells is a major departure from the current understanding of these neurons and markedly enriches the contextual information available to postsynaptic Purkinje cells, with important implications for cognitive processing in the cerebellum.


Subject(s)
Anticipation, Psychological/physiology , Cerebellum/cytology , Cerebellum/physiology , Learning/physiology , Neurons/physiology , Reward , Animals , Behavior, Animal/physiology , Calcium/analysis , Calcium/metabolism , Cognition/physiology , Conditioning, Classical/physiology , Conditioning, Operant/physiology , Female , Forelimb/physiology , Male , Mice , Molecular Imaging , Movement , Purkinje Cells/physiology
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