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1.
Glia ; 2024 Apr 08.
Article in English | MEDLINE | ID: mdl-38587131

ABSTRACT

Oligodendrocytes and astrocytes are metabolically coupled to neuronal compartments. Pyruvate and lactate can shuttle between glial cells and axons via monocarboxylate transporters. However, lactate can only be synthesized or used in metabolic reactions with the help of lactate dehydrogenase (LDH), a tetramer of LDHA and LDHB subunits in varying compositions. Here we show that mice with a cell type-specific disruption of both Ldha and Ldhb genes in oligodendrocytes lack a pathological phenotype that would be indicative of oligodendroglial dysfunctions or lack of axonal metabolic support. Indeed, when combining immunohistochemical, electron microscopical, and in situ hybridization analyses in adult mice, we found that the vast majority of mature oligodendrocytes lack detectable expression of LDH. Even in neurodegenerative disease models and in mice under metabolic stress LDH was not increased. In contrast, at early development and in the remyelinating brain, LDHA was readily detectable in immature oligodendrocytes. Interestingly, by immunoelectron microscopy LDHA was particularly enriched at gap junctions formed between adjacent astrocytes and at junctions between astrocytes and oligodendrocytes. Our data suggest that oligodendrocytes metabolize lactate during development and remyelination. In contrast, for metabolic support of axons mature oligodendrocytes may export their own glycolysis products as pyruvate rather than lactate. Lacking LDH, these oligodendrocytes can also "funnel" lactate through their "myelinic" channels between gap junction-coupled astrocytes and axons without metabolizing it. We suggest a working model, in which the unequal cellular distribution of LDH in white matter tracts facilitates a rapid and efficient transport of glycolysis products among glial and axonal compartments.

2.
EMBO Mol Med ; 16(3): 616-640, 2024 Mar.
Article in English | MEDLINE | ID: mdl-38383802

ABSTRACT

Haplo-insufficiency of the gene encoding the myelin protein PMP22 leads to focal myelin overgrowth in the peripheral nervous system and hereditary neuropathy with liability to pressure palsies (HNPP). Conversely, duplication of PMP22 causes Charcot-Marie-Tooth disease type 1A (CMT1A), characterized by hypomyelination of medium to large caliber axons. The molecular mechanisms of abnormal myelin growth regulation by PMP22 have remained obscure. Here, we show in rodent models of HNPP and CMT1A that the PI3K/Akt/mTOR-pathway inhibiting phosphatase PTEN is correlated in abundance with PMP22 in peripheral nerves, without evidence for direct protein interactions. Indeed, treating DRG neuron/Schwann cell co-cultures from HNPP mice with PI3K/Akt/mTOR pathway inhibitors reduced focal hypermyelination. When we treated HNPP mice in vivo with the mTOR inhibitor Rapamycin, motor functions were improved, compound muscle amplitudes were increased and pathological tomacula in sciatic nerves were reduced. In contrast, we found Schwann cell dedifferentiation in CMT1A uncoupled from PI3K/Akt/mTOR, leaving partial PTEN ablation insufficient for disease amelioration. For HNPP, the development of PI3K/Akt/mTOR pathway inhibitors may be considered as the first treatment option for pressure palsies.


Subject(s)
Arthrogryposis , Charcot-Marie-Tooth Disease , Hereditary Sensory and Motor Neuropathy , Phosphatidylinositol 3-Kinases , Mice , Animals , Proto-Oncogene Proteins c-akt , Rodentia/metabolism , Charcot-Marie-Tooth Disease/genetics , Charcot-Marie-Tooth Disease/pathology , Myelin Proteins/genetics , Myelin Proteins/metabolism , TOR Serine-Threonine Kinases
3.
Elife ; 112022 05 11.
Article in English | MEDLINE | ID: mdl-35543322

ABSTRACT

Human myelin disorders are commonly studied in mouse models. Since both clades evolutionarily diverged approximately 85 million years ago, it is critical to know to what extent the myelin protein composition has remained similar. Here, we use quantitative proteomics to analyze myelin purified from human white matter and find that the relative abundance of the structural myelin proteins PLP, MBP, CNP, and SEPTIN8 correlates well with that in C57Bl/6N mice. Conversely, multiple other proteins were identified exclusively or predominantly in human or mouse myelin. This is exemplified by peripheral myelin protein 2 (PMP2), which was specific to human central nervous system myelin, while tetraspanin-2 (TSPAN2) and connexin-29 (CX29/GJC3) were confined to mouse myelin. Assessing published scRNA-seq-datasets, human and mouse oligodendrocytes display well-correlating transcriptome profiles but divergent expression of distinct genes, including Pmp2, Tspan2, and Gjc3. A searchable web interface is accessible via www.mpinat.mpg.de/myelin. Species-dependent diversity of oligodendroglial mRNA expression and myelin protein composition can be informative when translating from mouse models to humans.


Like the electrical wires in our homes, the processes of nerve cells ­ the axons, thin extensions that project from the cell bodies ­ need to be insulated to work effectively. This insulation takes the form of layers of a membrane called myelin, which is made of proteins and fats and produced by specialized cells called oligodendrocytes in the brain and the spinal cord. If this layer of insulation becomes damaged, the electrical impulses travelling along the nerves slow down, affecting the ability to walk, speak, see or think. This is the cause of several illnesses, including multiple sclerosis and a group of rare genetic diseases known as leukodystrophies. A lot of the research into myelin, oligodendrocytes and the diseases caused by myelin damage uses mice as an experimental model for humans. Using mice for this type of research is appropriate because of the ethical and technical limitations of experiments on humans. This approach can be highly effective because mice and humans share a large proportion of their genes. However, there are many obvious physical differences between the two species, making it important to determine whether the results of experiments performed in mice are applicable to humans. To do this, it is necessary to understand how myelin differs between these two species at the molecular level. Gargareta, Reuschenbach, Siems, Sun et al. approached this problem by studying the proteins found in myelin isolated from the brains of people who had passed away and donated their organs for scientific research. They used a technique called mass spectrometry, which identifies molecules based on their weight, to produce a list of proteins in human myelin that could then be compared to existing data from mouse myelin. This analysis showed that myelin is very similar in both species, but some proteins only appear in humans or in mice. Gargareta, Reuschenbach, Siems, Sun et al. then compared which genes are turned on in the oligodendrocytes making the myelin. The results of this comparison reflected most of the differences and similarities seen in the myelin proteins. Despite the similarities identified by Gargareta, Reuschenbach, Siems, Sun et al., it became evident that there are unexpected differences between the myelin of humans and mice that will need to be considered when applying results from mice research to humans. To enable this endeavor, Gargareta, Reuschenbach, Siems, Sun et al. have created a searchable web interface of the proteins in myelin and the genes expressed in oligodendrocytes in the two species.


Subject(s)
Myelin Sheath , Proteome , Animals , Connexins/metabolism , Humans , Mice , Mice, Inbred Strains , Myelin Proteins/genetics , Myelin Proteins/metabolism , Myelin Proteolipid Protein , Myelin Sheath/genetics , Myelin Sheath/metabolism , Nerve Tissue Proteins/metabolism , Oligodendroglia/metabolism , Proteome/metabolism , Tetraspanins/genetics , Tetraspanins/metabolism , Transcriptome
4.
Gene ; 830: 146513, 2022 Jul 01.
Article in English | MEDLINE | ID: mdl-35447247

ABSTRACT

A progressive neurological disorder was identified in purebred Dalmatian dogs. The disease is characterized by anxiety, pacing and circling, hypersensitivity, cognitive decline, sleep disturbance, loss of coordination, loss of control over urination and defecation, and visual impairment. Neurological signs first became apparent when the dogs were approximately 18 months of age and progressed slowly. Two affected littermates were euthanized at approximately 7 years, 5 months and 8 years, 2 months of age due to the severity of neurological impairment. The mother of the affected dogs and four other relatives exhibited milder, later-onset neurological signs. Pronounced accumulations of autofluorescent intracellular inclusions were found in cerebral cortex, cerebellum, optic nerve, and cardiac muscle of the affected dogs. These inclusions co-localized with immunolabeling of the lysosomal marker protein LAMP2 and bound antibodies to mitochondrial ATPase subunit c, indicating that the dogs suffered from a lysosomal storage disease with similarities to the neuronal ceroid lipofuscinoses. Ultrastructural analysis indicated that the storage bodies were surrounded by a single-layer membrane, but the storage granules were distinct from those reported for other lysosomal storage diseases. Whole genome sequences, generated with DNA from the two euthanized Dalmatians, both contained a rare, homozygous single-base deletion and reading-frame shift in CNP which encodes the enzyme CNPase (EC 3.1.4.37). The late-onset disease was exhibited by five of seven related Dalmatians that were heterozygous for the deletion allele and over 8 years of age, whereas none of 16 age-matched reference-allele homozygotes developed neurologic signs. No CNPase antigen could be detected with immunohistochemical labeling in tissues from the dogs with the earlier-onset disorder. Similar to the later-onset Dalmatians, autofluorescent storage granules were apparent in brain and cardiac tissue from transgenic mice that were nullizygous for Cnp. Based on the clinical signs, the histopathological, immunohistochemical, ultrastructural, and molecular-genetic findings, and the finding that nullizygous Cnp mice accumulate autofluorescent storage granules, we propose that the earlier-onset Dalmatian disorder is a novel lysosomal storage disease that results from a loss-of-function mutation in CNP and that shares features characteristic of the neuronal ceroid lipofuscinoses. That the later-onset disorder occurred only in dogs heterozygous for the CNP deletion variant suggests that this disorder is a result of the variant allele's presence.


Subject(s)
Lysosomal Storage Diseases , Neuronal Ceroid-Lipofuscinoses , Alleles , Animals , Cerebellum/pathology , Dogs , Homozygote , Lysosomal Storage Diseases/genetics , Lysosomal Storage Diseases/pathology , Lysosomal Storage Diseases/veterinary , Mice , Neuronal Ceroid-Lipofuscinoses/genetics
6.
Mol Psychiatry ; 26(11): 6125-6148, 2021 11.
Article in English | MEDLINE | ID: mdl-34188164

ABSTRACT

While the transcription factor NEUROD2 has recently been associated with epilepsy, its precise role during nervous system development remains unclear. Using a multi-scale approach, we set out to understand how Neurod2 deletion affects the development of the cerebral cortex in mice. In Neurod2 KO embryos, cortical projection neurons over-migrated, thereby altering the final size and position of layers. In juvenile and adults, spine density and turnover were dysregulated in apical but not basal compartments in layer 5 neurons. Patch-clamp recordings in layer 5 neurons of juvenile mice revealed increased intrinsic excitability. Bulk RNA sequencing showed dysregulated expression of many genes associated with neuronal excitability and synaptic function, whose human orthologs were strongly associated with autism spectrum disorders (ASD). At the behavior level, Neurod2 KO mice displayed social interaction deficits, stereotypies, hyperactivity, and occasionally spontaneous seizures. Mice heterozygous for Neurod2 had similar defects, indicating that Neurod2 is haploinsufficient. Finally, specific deletion of Neurod2 in forebrain excitatory neurons recapitulated cellular and behavioral phenotypes found in constitutive KO mice, revealing the region-specific contribution of dysfunctional Neurod2 in symptoms. Informed by these neurobehavioral features in mouse mutants, we identified eleven patients from eight families with a neurodevelopmental disorder including intellectual disability and ASD associated with NEUROD2 pathogenic mutations. Our findings demonstrate crucial roles for Neurod2 in neocortical development, whose alterations can cause neurodevelopmental disorders including intellectual disability and ASD.


Subject(s)
Autistic Disorder , Neuropeptides , Animals , Autistic Disorder/metabolism , Basic Helix-Loop-Helix Transcription Factors/genetics , Basic Helix-Loop-Helix Transcription Factors/metabolism , Cerebral Cortex/metabolism , Humans , Mice , Neurons/metabolism , Neuropeptides/metabolism , Prosencephalon/metabolism , Transcription Factors/metabolism
7.
Int J Mol Sci ; 22(6)2021 Mar 20.
Article in English | MEDLINE | ID: mdl-33804598

ABSTRACT

We previously introduced the brain erythropoietin (EPO) circle as a model to explain the adaptive 'brain hardware upgrade' and enhanced performance. In this fundamental circle, brain cells, challenged by motor-cognitive tasks, experience functional hypoxia, triggering the expression of EPO among other genes. We attested hypoxic cells by a transgenic reporter approach under the ubiquitous CAG promoter, with Hif-1α oxygen-dependent degradation-domain (ODD) fused to CreERT2-recombinase. To specifically focus on the functional hypoxia of excitatory pyramidal neurons, here, we generated CaMKIIα-CreERT2-ODD::R26R-tdTomato mice. Behavioral challenges, light-sheet microscopy, immunohistochemistry, single-cell mRNA-seq, and neuronal cultures under normoxia or hypoxia served to portray these mice. Upon complex running wheel performance as the motor-cognitive task, a distinct increase in functional hypoxic neurons was assessed immunohistochemically and confirmed three-dimensionally. In contrast, fear conditioning as hippocampal stimulus was likely too short-lived to provoke neuronal hypoxia. Transcriptome data of hippocampus under normoxia versus inspiratory hypoxia revealed increases in CA1 CaMKIIα-neurons with an immature signature, characterized by the expression of Dcx, Tbr1, CaMKIIα, Tle4, and Zbtb20, and consistent with accelerated differentiation. The hypoxia reporter response was reproduced in vitro upon neuronal maturation. To conclude, task-associated activity triggers neuronal functional hypoxia as a local and brain-wide reaction mediating adaptive neuroplasticity. Hypoxia-induced genes such as EPO drive neuronal differentiation, brain maturation, and improved performance.


Subject(s)
Calcium-Calmodulin-Dependent Protein Kinase Type 2/genetics , Cognition , Gene Expression , Hypoxia/genetics , Hypoxia/metabolism , Neurons/metabolism , Animals , Brain/physiology , Calcium-Calmodulin-Dependent Protein Kinase Type 2/metabolism , Cell Hypoxia/drug effects , Cells, Cultured , Computational Biology , Dose-Response Relationship, Drug , Doublecortin Protein , Fluorescent Antibody Technique , Gene Expression Profiling , Genes, Reporter , Immunohistochemistry , Mice , Mice, Transgenic , Neurons/drug effects , Pyramidal Cells/metabolism , Tamoxifen/pharmacology , Transcriptome
8.
Mol Psychiatry ; 26(6): 1790-1807, 2021 06.
Article in English | MEDLINE | ID: mdl-33564132

ABSTRACT

Physical activity and cognitive challenge are established non-invasive methods to induce comprehensive brain activation and thereby improve global brain function including mood and emotional well-being in healthy subjects and in patients. However, the mechanisms underlying this experimental and clinical observation and broadly exploited therapeutic tool are still widely obscure. Here we show in the behaving brain that physiological (endogenous) hypoxia is likely a respective lead mechanism, regulating hippocampal plasticity via adaptive gene expression. A refined transgenic approach in mice, utilizing the oxygen-dependent degradation (ODD) domain of HIF-1α fused to CreERT2 recombinase, allows us to demonstrate hypoxic cells in the performing brain under normoxia and motor-cognitive challenge, and spatially map them by light-sheet microscopy, all in comparison to inspiratory hypoxia as strong positive control. We report that a complex motor-cognitive challenge causes hypoxia across essentially all brain areas, with hypoxic neurons particularly abundant in the hippocampus. These data suggest an intriguing model of neuroplasticity, in which a specific task-associated neuronal activity triggers mild hypoxia as a local neuron-specific as well as a brain-wide response, comprising indirectly activated neurons and non-neuronal cells.


Subject(s)
Hypoxia , Neurons , Animals , Brain , Hippocampus , Humans , Mice , Neuronal Plasticity
9.
Cell Metab ; 32(2): 259-272.e10, 2020 08 04.
Article in English | MEDLINE | ID: mdl-32531201

ABSTRACT

An evolutionarily conserved function of glia is to provide metabolic and structural support for neurons. To identify molecules generated by glia and with vital functions for neurons, we used Drosophila melanogaster as a screening tool, and subsequently translated the findings to mice. We found that a cargo receptor operating in the secretory pathway of glia was essential to maintain axonal integrity by regulating iron buffering. Ferritin heavy chain was identified as the critical secretory cargo, required for the protection against iron-mediated ferroptotic axonal damage. In mice, ferritin heavy chain is highly expressed by oligodendrocytes and secreted by employing an unconventional secretion pathway involving extracellular vesicles. Disrupting the release of extracellular vesicles or the expression of ferritin heavy chain in oligodendrocytes causes neuronal loss and oxidative damage in mice. Our data point to a role of oligodendrocytes in providing an antioxidant defense system to support neurons against iron-mediated cytotoxicity.


Subject(s)
Antioxidants/metabolism , Apoferritins/metabolism , Neurons/metabolism , Oligodendroglia/metabolism , Animals , Male , Mice , Mice, Inbred C57BL
10.
Neuron ; 106(1): 37-65.e5, 2020 04 08.
Article in English | MEDLINE | ID: mdl-32027825

ABSTRACT

The Cre-loxP system is invaluable for spatial and temporal control of gene knockout, knockin, and reporter expression in the mouse nervous system. However, we report varying probabilities of unexpected germline recombination in distinct Cre driver lines designed for nervous system-specific recombination. Selective maternal or paternal germline recombination is showcased with sample Cre lines. Collated data reveal germline recombination in over half of 64 commonly used Cre driver lines, in most cases with a parental sex bias related to Cre expression in sperm or oocytes. Slight differences among Cre driver lines utilizing common transcriptional control elements affect germline recombination rates. Specific target loci demonstrated differential recombination; thus, reporters are not reliable proxies for another locus of interest. Similar principles apply to other recombinase systems and other genetically targeted organisms. We hereby draw attention to the prevalence of germline recombination and provide guidelines to inform future research for the neuroscience and broader molecular genetics communities.


Subject(s)
Gene Targeting/methods , Integrases/genetics , Neurons/metabolism , Oocytes/metabolism , Recombination, Genetic/genetics , Spermatozoa/metabolism , Animals , Female , Genes, Reporter , Germ Cells , Male , Mice , Mice, Transgenic , Mosaicism
11.
Sci Adv ; 5(10): eaax0080, 2019 10.
Article in English | MEDLINE | ID: mdl-31681843

ABSTRACT

The characteristics of DNA methylation changes that occur during neurogenesis in vivo remain unknown. We used whole-genome bisulfite sequencing to quantitate DNA cytosine modifications in differentiating neurons and their progenitors isolated from mouse brain at the peak of embryonic neurogenesis. Localized DNA hypomethylation was much more common than hypermethylation and often occurred at putative enhancers within genes that were upregulated in neurons and encoded proteins crucial for neuronal differentiation. The hypomethylated regions strongly overlapped with mapped binding sites of the key neuronal transcription factor NEUROD2. The 5-methylcytosine oxidase ten-eleven translocation 2 (TET2) interacted with NEUROD2, and its reaction product 5-hydroxymethylcytosine accumulated at the demethylated regions. NEUROD2-targeted differentially methylated regions retained higher methylation levels in Neurod2 knockout mice, and inducible expression of NEUROD2 caused TET2-associated demethylation at its in vivo binding sites. The data suggest that the reorganization of DNA methylation in developing neurons involves NEUROD2 and TET2-mediated DNA demethylation.


Subject(s)
Basic Helix-Loop-Helix Transcription Factors/metabolism , Cell Differentiation , Cerebral Cortex/cytology , DNA Methylation , Neurons/cytology , Neuropeptides/metabolism , 5-Methylcytosine/metabolism , Animals , Base Sequence , Cell Line , DNA-Binding Proteins/metabolism , Dioxygenases , Enhancer Elements, Genetic/genetics , Mice, Inbred C57BL , Mice, Knockout , Neurogenesis , Nucleotide Motifs/genetics , Oxidation-Reduction , Protein Binding , Proto-Oncogene Proteins/metabolism
12.
Int J Mol Sci ; 20(20)2019 Oct 16.
Article in English | MEDLINE | ID: mdl-31623261

ABSTRACT

Hallmarks of Theiler's murine encephalomyelitis virus (TMEV)-induced demyelinating disease (TMEV-IDD) include spinal cord (SC) inflammation, demyelination and axonal damage occurring approximately 5-8 weeks after classical intracerebral (i.c.) infection. The aim of this study was to elucidate the consequences of intraspinal (i.s.) TMEV infection and a direct comparison of classical i.c. and intraspinal infection. Swiss Jim Lambert (SJL)-mice were i.s. infected with the BeAn strain of TMEV. Clinical investigations including a scoring system and rotarod analysis were performed on a regular basis. Necropsies were performed at 3, 7, 14, 28 and 63 days post infection (dpi) following i.s. and at 4, 7, 14, 28, 56, 98, 147 and 196 dpi following i.c. infection. Serial sections of formalin-fixed, paraffin-embedded SC and peripheral nerves (PN) were investigated using hematoxylin and eosin (HE) and immunohistochemistry. I.s. infected mice developed clinical signs and a deterioration of motor coordination approximately 12 weeks earlier than i.c. infected animals. SC inflammation, demyelination and axonal damage occurred approximately 6 weeks earlier in i.s. infected animals. Interestingly, i.s. infected mice developed PN lesions, characterized by vacuolation, inflammation, demyelination and axonal damage, which was not seen following i.c. infection. The i.s. infection model offers the advantage of a significantly earlier onset of clinical signs, inflammatory and demyelinating SC lesions and additionally enables the investigation of virus-mediated PN lesions.


Subject(s)
Demyelinating Diseases/etiology , Demyelinating Diseases/pathology , Poliomyelitis/pathology , Poliomyelitis/virology , Theilovirus , Animals , Axons/pathology , Brain/pathology , Brain/virology , Disease Models, Animal , Female , Immunohistochemistry , Mice , Mice, Transgenic , Spinal Cord/pathology , Spinal Cord/virology , Viral Load
13.
Methods Mol Biol ; 1936: 249-274, 2019.
Article in English | MEDLINE | ID: mdl-30820904

ABSTRACT

Cell-type-specific gene targeting with the Cre/loxP system has become an indispensable technique in experimental neuroscience, particularly for the study of late-born glial cells that make myelin. A plethora of conditional mutants and Cre-expressing mouse lines is now available to the research community that allows laboratories to readily engage in in vivo analyses of oligodendrocytes and their precursor cells. This chapter summarizes concepts and strategies in targeting myelinating glial cells in mice for mutagenesis or imaging, and provides an overview of the most important Cre driver lines successfully used in this rapidly growing field.


Subject(s)
Gene Targeting/methods , Integrases/metabolism , Oligodendroglia/cytology , Tamoxifen/pharmacology , Animals , Cell Lineage , Gene Expression Regulation/drug effects , Integrases/genetics , Mice , Mice, Transgenic , Mutagenesis , Organ Specificity , Transgenes
14.
Sci Rep ; 9(1): 4588, 2019 03 14.
Article in English | MEDLINE | ID: mdl-30872675

ABSTRACT

Theiler's murine encephalomyelitis virus (TMEV)-induces a demyelinating disease in the spinal cord (SC) of susceptible but not in resistant (B6) mouse strains. The aim of the present study was to induce SC demyelination and a peripheral neuropathy in resistant mice by switching the infection site from cerebrum to SC. B6 mice were intraspinally inoculated with TMEV. Infected mice showed clinical signs starting at 7 days post infection (dpi). Histopathology revealed a mononuclear myelitis, centred on the injection site at 3 dpi with subsequent antero- and retrograde spread, accompanied by demyelination and axonal damage within the SC. Virus protein was detected in the SC at all time points. SC inflammation decreased until the end of the investigation period (28 dpi). Concurrent with the amelioration of SC inflammation, the emergence of a peripheral neuropathy, characterized by axonal damage, demyelination and macrophage infiltration, contributing to persistent clinical sings, was observed. Intraspinal TMEV infection of resistant mice induced inflammation, demyelination and delayed viral clearance in the spinal cord and more interestingly, subsequent, virus-triggered inflammation and degeneration within the PN associated with dramatic and progressive clinical signs. The lesions observed in the PN resemble important features of Guillain-Barré syndrome, especially of acute motor/motor-sensory axonal forms.


Subject(s)
Demyelinating Diseases/etiology , Demyelinating Diseases/pathology , Guillain-Barre Syndrome/diagnosis , Guillain-Barre Syndrome/etiology , Peripheral Nervous System Diseases/etiology , Peripheral Nervous System Diseases/pathology , Spinal Cord/pathology , Spinal Cord/virology , Animals , Biomarkers , Disease Models, Animal , Disease Susceptibility , Immunohistochemistry , Mice , Poliomyelitis/complications , Poliomyelitis/virology , Spinal Cord/metabolism , Theilovirus/physiology , Virus Diseases/complications
15.
Sci Rep ; 9(1): 1448, 2019 02 05.
Article in English | MEDLINE | ID: mdl-30723302

ABSTRACT

The cerebellar cortex is involved in the control of diverse motor and non-motor functions. Its principal circuit elements are the Purkinje cells that integrate incoming excitatory and local inhibitory inputs and provide the sole output of the cerebellar cortex. However, the transcriptional control of circuit assembly in the cerebellar cortex is not well understood. Here, we show that NeuroD2, a neuronal basic helix-loop-helix (bHLH) transcription factor, promotes the postnatal survival of both granule cells and molecular layer interneurons (basket and stellate cells). However, while NeuroD2 is not essential for the integration of surviving granule cells into the excitatory circuit, it is required for the terminal differentiation of basket cells. Axons of surviving NeuroD2-deficient basket cells follow irregular trajectories and their inhibitory terminals are virtually absent from Purkinje cells in Neurod2 mutants. As a result inhibitory, but not excitatory, input to Purkinje cells is strongly reduced in the absence of NeuroD2. Together, we conclude that NeuroD2 is necessary to instruct a terminal differentiation program in basket cells that regulates targeted axon growth and inhibitory synapse formation. An imbalance of excitation and inhibition in the cerebellar cortex affecting Purkinje cell output may underlay impaired adaptive motor learning observed in Neurod2 mutants.


Subject(s)
Basic Helix-Loop-Helix Transcription Factors/metabolism , Neurogenesis , Neuropeptides/metabolism , Purkinje Cells/metabolism , Animals , Basic Helix-Loop-Helix Transcription Factors/genetics , Excitatory Postsynaptic Potentials , Inhibitory Postsynaptic Potentials , Interneurons/cytology , Interneurons/metabolism , Male , Mice , Mice, Inbred C57BL , Neuropeptides/genetics , Purkinje Cells/cytology
16.
Proc Natl Acad Sci U S A ; 115(30): E7184-E7192, 2018 07 24.
Article in English | MEDLINE | ID: mdl-29991598

ABSTRACT

Neocortical pyramidal neurons express several distinct subtypes of voltage-gated Na+ channels. In mature cells, Nav1.6 is the dominant channel subtype in the axon initial segment (AIS) as well as in the nodes of Ranvier. Action potentials (APs) are initiated in the AIS, and it has been proposed that the high excitability of this region is related to the unique characteristics of the Nav1.6 channel. Knockout or loss-of-function mutation of the Scn8a gene is generally lethal early in life because of the importance of this subtype in noncortical regions of the nervous system. Using the Cre/loxP system, we selectively deleted Nav1.6 in excitatory neurons of the forebrain and characterized the excitability of Nav1.6-deficient layer 5 pyramidal neurons by patch-clamp and Na+ and Ca2+ imaging recordings. We now report that, in the absence of Nav1.6 expression, the AIS is occupied by Nav1.2 channels. However, APs are generated in the AIS, and differences in AP propagation to soma and dendrites are minimal. Moreover, the channels that are expressed in the AIS still show a clear hyperpolarizing shift in voltage dependence of activation, compared with somatic channels. The only major difference between Nav1.6-null and wild-type neurons was a strong reduction in persistent sodium current. We propose that the molecular environment of the AIS confers properties on whatever Na channel subtype is present and that some other benefit must be conferred by the selective axonal presence of the Nav1.6 channel.


Subject(s)
Action Potentials/physiology , Axons/metabolism , NAV1.2 Voltage-Gated Sodium Channel/metabolism , NAV1.6 Voltage-Gated Sodium Channel/metabolism , Neocortex/metabolism , Pyramidal Cells/metabolism , Animals , Gene Deletion , Mice , Mice, Transgenic , NAV1.2 Voltage-Gated Sodium Channel/genetics , NAV1.6 Voltage-Gated Sodium Channel/genetics , Neocortex/cytology , Pyramidal Cells/cytology
17.
J Clin Invest ; 128(2): 734-745, 2018 02 01.
Article in English | MEDLINE | ID: mdl-29252214

ABSTRACT

The underlying cellular mechanisms of catatonia, an executive "psychomotor" syndrome that is observed across neuropsychiatric diseases, have remained obscure. In humans and mice, reduced expression of the structural myelin protein CNP is associated with catatonic signs in an age-dependent manner, pointing to the involvement of myelin-producing oligodendrocytes. Here, we showed that the underlying cause of catatonic signs is the low-grade inflammation of white matter tracts, which marks a final common pathway in Cnp-deficient and other mutant mice with minor myelin abnormalities. The inhibitor of CSF1 receptor kinase signaling PLX5622 depleted microglia and alleviated the catatonic symptoms of Cnp mutants. Thus, microglia and low-grade inflammation of myelinated tracts emerged as the trigger of a previously unexplained mental condition. We observed a very high (25%) prevalence of individuals with catatonic signs in a deeply phenotyped schizophrenia sample (n = 1095). Additionally, we found the loss-of-function allele of a myelin-specific gene (CNP rs2070106-AA) associated with catatonia in 2 independent schizophrenia cohorts and also associated with white matter hyperintensities in a general population sample. Since the catatonic syndrome is likely a surrogate marker for other executive function defects, we suggest that microglia-directed therapies may be considered in psychiatric disorders associated with myelin abnormalities.


Subject(s)
2',3'-Cyclic Nucleotide 3'-Phosphodiesterase/genetics , Catatonia/pathology , Microglia/cytology , Myelin Sheath/chemistry , Adult , Age Factors , Alleles , Animals , Brain/pathology , Catatonia/prevention & control , Female , Genotype , Humans , Inflammation , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Middle Aged , Mutation , Oligodendroglia/cytology , Organic Chemicals/chemistry , Phenotype , Prevalence , Receptor, Macrophage Colony-Stimulating Factor/genetics , Schizophrenia/genetics , White Matter/pathology
18.
Nat Neurosci ; 20(1): 10-15, 2017 01.
Article in English | MEDLINE | ID: mdl-27775720

ABSTRACT

The molecular trigger of CNS myelination is unknown. By targeting Pten in cerebellar granule cells and activating the AKT1-mTOR pathway, we increased the caliber of normally unmyelinated axons and the expression of numerous genes encoding regulatory proteins. This led to the expansion of genetically wild-type oligodendrocyte progenitor cells, oligodendrocyte differentiation and de novo myelination of parallel fibers. Thus, a neuronal program dependent on the phosphoinositide PI(3,4,5)P3 is sufficient to trigger all steps of myelination.


Subject(s)
Axons/metabolism , Myelin Sheath/metabolism , Nerve Tissue Proteins/metabolism , Neurons/metabolism , Oligodendroglia/cytology , Phosphatidylinositols/metabolism , Animals , Cell Differentiation/genetics , Cell Differentiation/physiology , Mice, Transgenic
19.
Glia ; 65(2): 342-359, 2017 02.
Article in English | MEDLINE | ID: mdl-27807896

ABSTRACT

NG2 expressing oligodendroglial precursor cells are ubiquitous in the central nervous system and the only cell type cycling throughout life. Previous fate mapping studies have remained inconsistent regarding the question whether NG2 cells are capable of generating certain types of neurons. Here, we use CNP-Cre mice to map the fate of a sub-population of NG2 cells assumed to be close to differentiation. When crossing these mice with the ROSA26/YFP Cre-reporter line we discovered large numbers of reporter-expressing pyramidal neurons in the piriform and dorsal cortex. In contrast, when using Z/EG reporter mice to track the fate of Cnp-expressing NG2 cells only oligodendroglial cells were found reporter positive. Using BrdU-based birth dating protocols and inducible NG2CreER:ROSA26/YFP mice we show that YFP positive neurons are generated from radial glial cells and that these radial glial cells display temporary and low level activity of certain oligodendroglial genes sufficient to recombine the Cre-inducible reporter gene in ROSA26/YFP but not in Z/EG mice. Taken together, we did not obtain evidence for generation of neurons from NG2 cells. Our results suggest that with an appropriate reporter system Cnp activity can be used to define a proliferative subpopulation of NG2 cells committed to generate oligodendrocytes. However, the strikingly different results obtained from ROSA26/YFP versus Z/EG mice demonstrate that the choice of Cre-reporter line can be of crucial importance for fate mapping studies and other applications of the Cre-lox technology. GLIA 2017;65:342-359.


Subject(s)
2',3'-Cyclic Nucleotide 3'-Phosphodiesterase/metabolism , Antigens/metabolism , Brain/cytology , Cell Differentiation/genetics , Neurons/physiology , Oligodendroglia/physiology , Proteoglycans/metabolism , 2',3'-Cyclic Nucleotide 3'-Phosphodiesterase/genetics , Animals , Animals, Newborn , Antigens/genetics , Brain/embryology , Brain/growth & development , Bromodeoxyuridine/metabolism , Cell Count , Cell Lineage , Embryo, Mammalian , Gene Expression Regulation, Developmental/genetics , Genes, Reporter/genetics , Luminescent Proteins/genetics , Luminescent Proteins/metabolism , Mice , Mice, Inbred C57BL , Mice, Transgenic , Nerve Tissue Proteins/metabolism , Proteoglycans/genetics
20.
Elife ; 52016 08 09.
Article in English | MEDLINE | ID: mdl-27504968

ABSTRACT

Myelination of axons facilitates rapid impulse propagation in the nervous system. The axon/myelin-unit becomes impaired in myelin-related disorders and upon normal aging. However, the molecular cause of many pathological features, including the frequently observed myelin outfoldings, remained unknown. Using label-free quantitative proteomics, we find that the presence of myelin outfoldings correlates with a loss of cytoskeletal septins in myelin. Regulated by phosphatidylinositol-(4,5)-bisphosphate (PI(4,5)P2)-levels, myelin septins (SEPT2/SEPT4/SEPT7/SEPT8) and the PI(4,5)P2-adaptor anillin form previously unrecognized filaments that extend longitudinally along myelinated axons. By confocal microscopy and immunogold-electron microscopy, these filaments are localized to the non-compacted adaxonal myelin compartment. Genetic disruption of these filaments in Sept8-mutant mice causes myelin outfoldings as a very specific neuropathology. Septin filaments thus serve an important function in scaffolding the axon/myelin-unit, evidently a late stage of myelin maturation. We propose that pathological or aging-associated diminishment of the septin/anillin-scaffold causes myelin outfoldings that impair the normal nerve conduction velocity.


Subject(s)
Central Nervous System/physiology , Contractile Proteins/metabolism , Myelin Sheath/metabolism , Neural Conduction , Septins/metabolism , Animals , Central Nervous System/chemistry , Cytoskeleton/metabolism , Gene Knockout Techniques , Gene Targeting , Mice , Microscopy, Confocal , Microscopy, Immunoelectron , Nerve Fibers, Myelinated/chemistry , Nerve Fibers, Myelinated/physiology , Protein Multimerization , Proteome/analysis , Proteomics , Septins/genetics
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