TY - THES A1 - Balk, Stefanie Margarete T1 - Der Einfluss des Kalziumkanalagonisten R-Roscovitine auf die zelluläre Differenzierung von Motoneuronen eines Mausmodells für Spinale Muskelatrophie Typ 1 (SMA) T1 - The effect of the calcium channel agonist R-Roscovitine on cellular differentiation of motoneurons from a mouse model for spinal muscular atrophy type 1 (SMA) N2 - Die spinale Muskelatrophie (SMA) ist eine monogenetische Erkrankung, bei der es durch den Verlust des SMN Proteins zur Degeneration der α-Motoneurone im Rückenmark kommt. Abhängig vom Schweregrad zeigen die Patienten bereits innerhalb der ersten Lebensmonate ausgeprägte Lähmungen der Skelettmuskulatur und eine Zwerchfellparese einhergehend mit einer reduzierten Lebenserwartung. Mithilfe von Mausmodellen für die SMA konnte gezeigt werden, dass der Motoneuronenverlust bei Smn-defizienten Mäusen mit Störungen der Neurotransmission an der motorischen Endplatte und mit Differenzierungsstörungen der Motoneurone einhergeht. Die Differenzierungs-störungen primärer Smn-defizienter Motoneurone sind eng gekoppelt mit einer verminderten Clusterbildung spannungsabhängiger Kalziumkanäle im distalen axonalen Bereich. Dies wiederum führt zu einer verminderten Frequenz spontaner Kalziumeinströme am Axonterminus und hat eine veränderte axonale Elongation zur Folge. Es wurden folgende Aspekte in Bezug auf die Verstärkung und die Induktion spontaner Kalziumeinströme in Mausmodellen für spinale Muskelatrophien in dieser Arbeit adressiert: 1) Lassen sich spontane Kalziumeinströme in Smn-defizienten Motoneuronen durch die externe Applikation von Kalziumkanalagonisten verstärken? 2) Sind spontane Kalziumeinströme in primären Motoneuronen durch den Brain-derived-neurotrophic-factor (BDNF) induzierbar? 3) Zeigen primäre Motoneurone eines Mausmodells für spinale Muskelatrophie mit Ateminsuffizienz Typ 1 (SMARD1) ebenfalls veränderte Kalziumtransienten? Die Ergebnisse meiner Arbeit zeigen, dass durch den Kalziumkanalagonisten R-Roscovitine die Frequenz der spontanen Kalziumeinströme im distalen Axon von Smn-defizienten Motoneuronen signifikant erhöht wird. Dies hat wiederum einen regulierenden Effekt auf die Differenzierung der SMA Motoneurone zur Folge. Smn-defiziente Motoneurone zeigen somit keine Unterschiede mehr in Bezug auf Axonlängen und Wachstumskegelflächen im Vergleich zu Kontrollzellen. Für R- 10 Roscovitine ist neben der agonistischen Wirkung am Kalziumkanal auch ein inhibitorischer Effekt auf die Cyclin-abhängige Kinase 5 beschrieben. Es konnte jedoch gezeigt werden, dass die erhöhten Kalziumtransienten unter der Behandlung mit R-Roscovitine durch eine direkte Bindung an die Cav2 Kalziumkanäle verursacht werden und nicht durch eine Cdk5 Blockade. Dafür spricht die schnelle und reversible Wirkung von R-Roscovitine, sowie die Aufhebung des R-Roscovitines Effekts bei gleichzeitiger Gabe des Cav2.2 Antagonisten ω-Conotoxin MVIIC. Der zweite Aspekt dieser Arbeit behandelt den Einfluss der neurotrophen Faktoren BDNF, CNTF und GDNF auf die Kalziumtransienten am Wachstumskegel wildtypischer Motoneurone. Der Vergleich der neurotrophen Faktoren zeigt, dass nur BDNF eine induzierende Wirkung auf spontane Kalziumtransienten am Wachstumskegel hat. Der letzte Abschnitt dieser Arbeit beschäftigt sich mit den Kalziumtransienten bei Motoneuronen aus dem Nmd2J (SMARD1) Mausmodell. Die SMARD1 gilt als eigenständige Form der spinalen Muskelatrophien mit unterschiedlicher Genetik und unterschiedlichen klinischen Merkmalen. Die Motoneurone weisen in Bezug auf die Kalziumtransienten keine Unterschiede zwischen Wildtyp und Nmd2J Mutante auf. Es ergibt sich somit kein Hinweis darauf, dass die Degeneration der Motoneurone bei der SMARD1 von einer Störung der Kalziumhomöostase im distalen axonalen Bereich ausgeht. N2 - Spinal muscular atrophy (SMA) is a monogenetic disorder which is caused by the loss of the SMN Protein and leads to the degeneration of α-motoneurons. Within the first few months of life most patients are clinically affected with severe motor deficits of skeletal muscles and a diaphragm paralysis, going along with a reduced life expectancy depening on the degree of severity. With the aid of SMA mouse models it was shown that the loss of motoneurons with Smn deficiancy lies in an impaired neurotransmission of the motoneuron endplat leading to a differentiation disorder of the motoneurons. This differentiation disorder is strongly connected to a reduced cluster formation of voltage-dependent calcium channels in the distal axonal area. The impaired cluster formation in turn leads to a reduced frequency of spontanous calcium transients at the axon terminus, followed by an altered axonal elongation. In this work the following aspects concerning the enhancement and induction of spontanous calcium transients in mouse models of spinal muscular atrophy were adressed: 1) Does the external application of calcium channel agonists increase spontanous calcium transients in Smn-deficient motoneurons? 2) Is the neurotrophic factor Brain-derived neurotrophic factor (BDNF) able to induce spontanous calcium transients in primary motoneurons? 3) Do primary motoneurons of a mouse model for spinal muscular atrophy with respiratory distress (SMARD1) show altered calcium transients as well? The results of my work show that the calcium channel agonist R-Roscovitine significantly increases the frequency of spontanous calcium transients in growth cones of Smn-deficient motoneurons which in turn has a regulatory effect on the differentiation of SMA motoneurons. Smn-deficient motoneurons treated with R-Roscovitine do not show any differences concerning axon length and growth cone size compared to control cells. Apart from the agonist effect on the calcium channels, R-Roscovitine also has an inhibitory impact on the cyclin-dependant kinase 5. The results of this work show that the positive effect on the calcium 12 transients under R-Roscovitine treatment is because R-Roscovitine binds directly to the calcium channel rather than due to an inhibition of cdk5. Arguments supporting this idea are the rapid and reversible channel kinetics of R-Roscovitine. Plus, the effect of R-Roscovitine can be repealed when the Cav2 channal antagonist ω-conotoxin is given simultaneously. In the second part of this work the influence of the neurotrophic factors BDNF, CNTF and GDNF on the calcium transients of wildtype motoneurons is investigated. Comparing these neurotrophic factors show that only BDNF has an impact on local calcium channel kinetics in growth cones of motoneurons. The last part of this work deals with the investigation of calcium transients in motoneurons from the Nmd2J (SMARD1) mouse model. SMARD1 is an independent form of spinal muscular atrophies with different genetical and clinical aspects compared to proximal SMA. The results of this work show that Nmd2J motoneurons do not show any difference in growth cone calcium influx between wildtype and mutant. Thus, there is no indication that the degeneration of SMARD1 motoneurons has any pathophysiological similarities with motoneurons from the proximal SMA mouse model. Hence, there are also no indications that the reason for motoneuron degeneration in SMARD1 lies in an impaired calcium homeostasis in the distal axonal area. KW - Spinal muscular atrophy (DLC) KW - Spinale Muskelatrophie KW - Motoneuronenerkrankung KW - Roscovitine Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-189861 ER - TY - JOUR A1 - Rauschenberger, Vera A1 - von Wardenburg, Niels A1 - Schaefer, Natascha A1 - Ogino, Kazutoyo A1 - Hirata, Hiromi A1 - Lillesaar, Christina A1 - Kluck, Christoph J. A1 - Meinck, Hans‐Michael A1 - Borrmann, Marc A1 - Weishaupt, Andreas A1 - Doppler, Kathrin A1 - Wickel, Jonathan A1 - Geis, Christian A1 - Sommer, Claudia A1 - Villmann, Carmen T1 - Glycine Receptor Autoantibodies Impair Receptor Function and Induce Motor Dysfunction JF - Annals of Neurology N2 - Objective Impairment of glycinergic neurotransmission leads to complex movement and behavioral disorders. Patients harboring glycine receptor autoantibodies suffer from stiff‐person syndrome or its severe variant progressive encephalomyelitis with rigidity and myoclonus. Enhanced receptor internalization was proposed as the common molecular mechanism upon autoantibody binding. Although functional impairment of glycine receptors following autoantibody binding has recently been investigated, it is still incompletely understood. Methods A cell‐based assay was used for positive sample evaluation. Glycine receptor function was assessed by electrophysiological recordings and radioligand binding assays. The in vivo passive transfer of patient autoantibodies was done using the zebrafish animal model. Results Glycine receptor function as assessed by glycine dose–response curves showed significantly decreased glycine potency in the presence of patient sera. Upon binding of autoantibodies from 2 patients, a decreased fraction of desensitized receptors was observed, whereas closing of the ion channel remained fast. The glycine receptor N‐terminal residues \(^{29}\)A to \(^{62}\)G were mapped as a common epitope of glycine receptor autoantibodies. An in vivo transfer into the zebrafish animal model generated a phenotype with disturbed escape behavior accompanied by a reduced number of glycine receptor clusters in the spinal cord of affected animals. Interpretation Autoantibodies against the extracellular domain mediate alterations of glycine receptor physiology. Moreover, our in vivo data demonstrate that the autoantibodies are a direct cause of the disease, because the transfer of human glycine receptor autoantibodies to zebrafish larvae generated impaired escape behavior in the animal model compatible with abnormal startle response in stiff‐person syndrome or progressive encephalitis with rigidity and myoclonus patients. KW - glycine receptor autoantibodies KW - behavioral disorders KW - neurology Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-216005 VL - 88 IS - 3 SP - 544 EP - 561 ER - TY - THES A1 - Kitzenmaier, Alexandra T1 - GlyT2-Mutationen als zweithäufigste Ursache bei Hyperekplexie – Pathologischer Mechanismus der Mutation P429L T1 - GlyT2 mutations as second major cause of hyperekplexia – Pathogenic mechanism of the mutation P429L N2 - Mutationen im Glycintransporter 2 (GlyT2) stellen die präsynaptische Komponente der neurologischen Erkrankung Hyperekplexie oder Startle Disease dar. Der neuronale Na+/Cl- -abhängige GlyT2 ist für das Recycling von Glycin verantwortlich und bildet an inhibitorischen glycinergen Synapsen die Hauptquelle des freigesetzten Transmitters. Dominante, rezessive und zusammengesetzte heterozygote Mutationen wurden bereits identifiziert, von denen die meisten zu einer beeinträchtigten Glycinaufnahme führen. In dieser Arbeit konnten wir eine neue pathogene Mutation innerhalb des neuronalen Glycintransporter-2-Gens (SLC6A5, OMIM604159) in einer Familie identifizieren, in der beide Elternteile heterozygote Träger waren. Ein homozygotes Kind litt an schweren neuromotorischen Defiziten, wohingegen Heterozygote keine Symptome aufwiesen. Die neue rezessive Mutation c.1286C>T erzeugte einen missense Aminosäureaustausch von Prolin gegen Leucin an Position 429 (pP429L) in der Transmembrandomäne 5. Wir haben die GlyT2P429L-Variante mittels Homologiemodellierung, immuncytochemischer Färbungen, Western Blot Analysen, Biotinylierung und funktioneller Glycinaufnahmetests charakterisiert. Der mutierte GlyT2 zeigte beim Proteintransport durch verschiedene intrazelluläre Kompartimente zur Zelloberfläche keine Defizite. Die gesamte Proteinexpression war jedoch signifikant verringert. Obwohl GlyT2P429L an der Zelloberfläche vorhanden ist, zeigte er einen Verlust der Proteinfunktion. Die Co-Expression der Mutante mit dem Wildtyp-Protein, die die Situation der Eltern widerspiegelte, hatte keinen Einfluss auf die Transporterfunktion und erklärte somit ihren nicht symptomatischen Phänotyp. Wenn jedoch die Mutante im Vergleich zum Wildtyp-Protein im Überschuss exprimiert wurde, war die Glycinaufnahme signifikant verringert. Die Strukturanalyse ergab, dass der eingeführte Leucinrest an Position 429 zu Konformationsänderungen in der α-Helix 5 führt, die in unmittelbarer Nähe zur Natriumbindungsstelle des Transporters lokalisiert sind. Dies deutet darauf hin, dass die Zugangsmechanismen des GlyT2 gestört sein könnten und einen vollständigen Verlust der Transportaktivität verursachen. Unsere Ergebnisse belegen, dass P429 in GlyT2 ein strukturell wichtiger Aminosäurerest ist, der eine wichtige funktionelle Rolle beim Glycintransport spielt. N2 - Glycine transporter 2 (GlyT2) mutations represent the presynaptic component of the neurological disease hyperekplexia or startle disease. The neuronal Na+/Cl- -dependent GlyT2 is responsible for glycine recycling and establishes the main source of releasable transmitter at inhibitory glycinergic synapses. In humans, dominant, recessive and compound heterozygous mutations have been identified, most of them leading to impaired glycine uptake. In this study, we identified a novel pathogenic mutation within the neuronal GlyT2 gene (SLC6A5, OMIM604159) in a family with both parents being heterozygous carriers. A homozygous child suffered from severe neuromotor deficits, whereas heterozygous individuals did not reveal any symptoms. The novel recessive mutation c.1286C>T generated a missense amino acid exchange of proline to leucine at position 429 (pP429L) in transmembrane domain 5 of the protein. We characterized the GlyT2P429L variant using homology modeling, immunocytochemical stainings, Western blot analysis, biotinylation, and functional glycine uptake assays. The mutated GlyT2 revealed no deficits in protein trafficking through various intracellular compartments to cellular surface. However, the whole cell protein expression was significantly decreased. Although present at cellular surface, GlyT2P429L showed a loss of protein function. Co-expression of the mutant with the wild-type protein, reflecting the situation in the parents, did not affect transporter function, thus explaining their non-symptomatic phenotype. Nevertheless, when the mutant was expressed in excess compared with the wild-type protein, glycine uptake was significantly reduced. Structural analysis revealed that the introduced leucine residue at position 429 leads to conformational changes in α-helix 5 which is localized in close proximity to the sodium-binding site of the transporter. The data suggest that the gating mechanism of GlyT2 might be disturbed and causes a complete loss of transport activity. Thus, our results support P429 in GlyT2 as structurally important residue displaying a key functional role in glycine transport. KW - Glycin KW - Proteintransport KW - Inhibitorische Synapse KW - Bewegungsstörung KW - Präsynaptische Hyperekplexie KW - Glycintransporter 2 (GlyT2) KW - SLC6A5 KW - Funktionsverlust KW - Konformationsänderung KW - startle disease KW - presynaptic hyperekplexia KW - loss of function KW - structural disruption KW - glycine uptake Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-202574 ER - TY - THES A1 - Clausen, Jan-Dierk T1 - Der Einfluss des Kalziumkanalagonisten R-Roscovitine auf die Entwicklung und Differenzierung kultivierter primärer Motoneurone eines murinen Modellorganismus für spinale Muskelatrophie Typ I T1 - The influence of the calcium channel agonist R-Roscovitine on the maturation and growth behaviour of isolated primary motoneurons from a spinal muscular atrophy type I mouse model N2 - Die spinale Muskelatrophie ist nach der zystischen Fibrose die zweithäufigste Erkrankung mit autosomal-rezessivem Erbgang und Todesfolge bei Kindern. Der Mangel an intaktem SMN-Protein führt zu einer retrograden Degeneration der Motoneurone. Je nach prozentualem Mangel des SMN-Proteins ergeben sich unterschiedliche Verlaufsformen. Im Falle der schwersten Form liegt die Lebenserwartung unter zwei Jahren für Neugeborene. Die genaue Ursache der spinalen Muskelatrophie ist nicht abschließend geklärt. Klar ist jedoch, dass eine Differenzierungsdefekt an der muskulären Endplatte der Motoneurone vorliegt. In Zusammenschau der hier generierten Ergebnisse und zahlreicher Vorarbeiten zeigt sich, dass eine gestörte Kalziumhomöostase mitverantwortlich für diese Differenzierungsstörung ist. Dies ist am ehesten durch gestörte lokale Kalziumtransienten und eine veränderte Mikrostruktur der Endplatte, im Sinne des Fehlens der für die Differenzierung essentiellen Kalziumkanal-Cluster, zu erklären. Auch wenn die Wiederherstellung der Kalziumhomöostase keinen Einfluss auf die Menge an vorhandenem SMN-Protein hat, zeigt der Einsatz des Kalziumkanalagonisten R-Roscovitine eine restitutio des Phänotyps kultivierter Motoneurone in vitro, sowie auch eine signifikante Lebensverlängerung von murinen Tieren mit einer der SMA I äquivalenten Verlaufsform in vivo. Auch wenn es sich im Falle des Einsatzes von Kalziumkanalagonisten nicht um eine kausale Therapie, wie zum Beispiel im Falle gentechnologischer Ansätze, handelt, stellen sie trotzdem eine vielversprechende Ergänzung des Portfolios an therapeutischen Optionen dar. Die Stärke liegt hierbei in dem sofortigen Wirkeintritt nach Applikation mit antizipiert rascher Symptomverbesserung. N2 - Spinal muscular atrophy is with an incidence around 1:3000 the second most common autosomal recessive disease with possible fatal outcome in children. The lack of intact Smn protein causes retrograde degeneration of motoneurons in the anterior horn of the spinal cord. Depending of the relative deficit in the total amount of intact Smn protein different clinical phenotypes are described. In case of the severest form SMA type I the expected life span is below 24 months. The specific underlying pathophysiological mechanism which cause SMA are so far not fully understood, but there is a consensus that the tremendous lack of Smn protein causes a defect in the differentiation of the neuromuscular junction. Combining the results of my work with the existing literature we suggest that an altered calcium homeostasis at the neuromuscular junction contributes to the retrograde degeneration of the motoneurons. Previous work showed an altered calcium channel clustering at the neuromuscular junction with consecutive lower spontaneous calcium currents. We therefore tested the effect of the calcium channel agonist R-Roscovitine on the maturation and growth behavior of isolated primary motoneurons from an SMA type I mouse model. Despite the fact that the R-Roscovitine treatment has no effect on the amount of intact Smn protein we could show that the treatment lead to a tremendous improvement of the SMA phenotype in vitro. The axonal growth defect as well as the microstructure and size of the growth cones were nearly fully restored by the R-Roscovitine treatment. Further in vivo investigations are needed to prove these results. KW - Spinale Muskelatrophie KW - Motoneuronenerkrankungen KW - Kalziumkanalagonisten KW - neurodegenerative disorder Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-216990 ER - TY - JOUR A1 - Schaefer, Natascha A1 - Signoret-Genest, Jérémy A1 - von Collenberg, Cora R. A1 - Wachter, Britta A1 - Deckert, Jürgen A1 - Tovote, Philip A1 - Blum, Robert A1 - Villmann, Carmen T1 - Anxiety and Startle Phenotypes in Glrb Spastic and Glra1 Spasmodic Mouse Mutants JF - Frontiers in Molecular Neuroscience N2 - A GWAS study recently demonstrated single nucleotide polymorphisms (SNPs) in the human GLRB gene of individuals with a prevalence for agoraphobia. GLRB encodes the glycine receptor (GlyRs) β subunit. The identified SNPs are localized within the gene flanking regions (3′ and 5′ UTRs) and intronic regions. It was suggested that these nucleotide polymorphisms modify GlyRs expression and phenotypic behavior in humans contributing to an anxiety phenotype as a mild form of hyperekplexia. Hyperekplexia is a human neuromotor disorder with massive startle phenotypes due to mutations in genes encoding GlyRs subunits. GLRA1 mutations have been more commonly observed than GLRB mutations. If an anxiety phenotype contributes to the hyperekplexia disease pattern has not been investigated yet. Here, we compared two mouse models harboring either a mutation in the murine Glra1 or Glrb gene with regard to anxiety and startle phenotypes. Homozygous spasmodic animals carrying a Glra1 point mutation (alanine 52 to serine) displayed abnormally enhanced startle responses. Moreover, spasmodic mice exhibited significant changes in fear-related behaviors (freezing, rearing and time spent on back) analyzed during the startle paradigm, even in a neutral context. Spastic mice exhibit reduced expression levels of the full-length GlyRs β subunit due to aberrant splicing of the Glrb gene. Heterozygous animals appear normal without an obvious behavioral phenotype and thus might reflect the human situation analyzed in the GWAS study on agoraphobia and startle. In contrast to spasmodic mice, heterozygous spastic animals revealed no startle phenotype in a neutral as well as a conditioning context. Other mechanisms such as a modulatory function of the GlyRs β subunit within glycinergic circuits in neuronal networks important for fear and fear-related behavior may exist. Possibly, in human additional changes in fear and fear-related circuits either due to gene-gene interactions e.g., with GLRA1 genes or epigenetic factors are necessary to create the agoraphobia and in particular the startle phenotype. KW - glycine receptor KW - spastic KW - fear KW - anxiety KW - startle reaction Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-210041 SN - 1662-5099 VL - 13 IS - 152 ER - TY - JOUR A1 - Lüningschrör, Patrick A1 - Slotta, Carsten A1 - Heimann, Peter A1 - Briese, Michael A1 - Weikert, Ulrich M. A1 - Massih, Bita A1 - Appenzeller, Silke A1 - Sendtner, Michael A1 - Kaltschmidt, Christian A1 - Kaltschmidt, Barbara T1 - Absence of Plekhg5 Results in Myelin Infoldings Corresponding to an Impaired Schwann Cell Autophagy, and a Reduced T-Cell Infiltration Into Peripheral Nerves JF - Frontiers in Cellular Neuroscience N2 - Inflammation and dysregulation of the immune system are hallmarks of several neurodegenerative diseases. An activated immune response is considered to be the cause of myelin breakdown in demyelinating disorders. In the peripheral nervous system (PNS), myelin can be degraded in an autophagy-dependent manner directly by Schwann cells or by macrophages, which are modulated by T-lymphocytes. Here, we show that the NF-κB activator Pleckstrin homology containing family member 5 (Plekhg5) is involved in the regulation of both Schwann cell autophagy and recruitment of T-lymphocytes in peripheral nerves during motoneuron disease. Plekhg5-deficient mice show defective axon/Schwann cell units characterized by myelin infoldings in peripheral nerves. Even at late stages, Plekhg5-deficient mice do not show any signs of demyelination and inflammation. Using RNAseq, we identified a transcriptional signature for an impaired immune response in sciatic nerves, which manifested in a reduced number of CD4\(^+\) and CD8\(^+\) T-cells. These findings identify Plekhg5 as a promising target to impede myelin breakdown in demyelinating PNS disorders. KW - Schwann cells KW - autophagy KW - immune response KW - myelin KW - PLEKHG5 Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-207538 SN - 1662-5102 VL - 14 ER - TY - JOUR A1 - Markert, Sebastian M. A1 - Skoruppa, Michael A1 - Yu, Bin A1 - Mulcahy, Ben A1 - Zhen, Mai A1 - Gao, Shangbang A1 - Sendtner, Michael A1 - Stigloher, Christian T1 - Overexpression of an ALS-associated FUS mutation in C. elegans disrupts NMJ morphology and leads to defective neuromuscular transmission JF - Biology Open N2 - The amyotrophic lateral sclerosis (ALS) neurodegenerative disorder has been associated with multiple genetic lesions, including mutations in the gene for fused in sarcoma (FUS), a nuclear-localized RNA/DNA-binding protein. Neuronal expression of the pathological form of FUS proteins in Caenorhabditis elegans results in mislocalization and aggregation of FUS in the cytoplasm, and leads to impairment of motility. However, the mechanisms by which the mutant FUS disrupts neuronal health and function remain unclear. Here we investigated the impact of ALS-associated FUS on motor neuron health using correlative light and electron microscopy, electron tomography, and electrophysiology. We show that ectopic expression of wild-type or ALS-associated human FUS impairs synaptic vesicle docking at neuromuscular junctions. ALS-associated FUS led to the emergence of a population of large, electron-dense, and filament-filled endosomes. Electrophysiological recording revealed reduced transmission from motor neurons to muscles. Together, these results suggest a pathological effect of ALS-causing FUS at synaptic structure and function organization. KW - C. elegans KW - fused in sarcoma KW - amyotrophic lateral sclerosis KW - uper-resolution array tomography KW - electron tomography KW - neuromuscular junction Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-230662 VL - 9 ER - TY - JOUR A1 - Appeltshauser, Luise A1 - Brunder, Anna-Michelle A1 - Heinius, Annika A1 - Körtvélyessy, Peter A1 - Wandinger, Klaus-Peter A1 - Junker, Ralf A1 - Villmann, Carmen A1 - Sommer, Claudia A1 - Leypoldt, Frank A1 - Doppler, Kathrin T1 - Antiparanodal antibodies and IgG subclasses in acute autoimmune neuropathy JF - Neurology: Neuroimmunology & Neuroinflammation N2 - Objective To determine whether IgG subclasses of antiparanodal autoantibodies are related to disease course and treatment response in acute- to subacute-onset neuropathies, we retrospectively screened 161 baseline serum/CSF samples and 66 follow-up serum/CSF samples. Methods We used ELISA and immunofluorescence assays to detect antiparanodal IgG and their subclasses and titers in serum/CSF of patients with Guillain-Barre syndrome (GBS), recurrent GBS (R-GBS), Miller-Fisher syndrome, and acute- to subacute-onset chronic inflammatory demyelinating polyradiculoneuropathy (A-CIDP). We evaluated clinical data retrospectively. Results We detected antiparanodal autoantibodies with a prevalence of 4.3% (7/161), more often in A-CIDP (4/23, 17.4%) compared with GBS (3/114, 2.6%). Longitudinal subclass analysis in the patients with GBS revealed IgG2/3 autoantibodies against Caspr-1 and against anti-contactin-1/Caspr-1, which disappeared at remission. At disease onset, patients with A-CIDP had IgG2/3 anti-Caspr-1 and anti-contactin-1/Caspr-1 or IgG4 anti-contactin-1 antibodies, IgG3 being associated with good response to IV immunoglobulins (IVIg). In the chronic phase of disease, IgG subclass of one patient with A-CIDP switched from IgG3 to IgG4. Conclusion Our data (1) confirm and extend previous observations that antiparanodal IgG2/3 but not IgG4 antibodies can occur in acute-onset neuropathies manifesting as monophasic GBS, (2) suggest association of IgG3 to a favorable response to IVIg, and (3) lend support to the hypothesis that in some patients, an IgG subclass switch from IgG3 to IgG4 may be the correlate of a secondary progressive or relapsing course following a GBS-like onset. KW - Guillain-Barre-Syndrome KW - inflammatory demyelinating polyradiculoneuropathy KW - musk myasthenia gravis KW - periperal nerve KW - neurofascin KW - autoantibodies KW - ontactin 1 KW - biopsies KW - binding KW - switch Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-230079 VL - 7 IS - 5 ER - TY - JOUR A1 - Janzen, Dieter A1 - Bakirci, Ezgi A1 - Wieland, Annalena A1 - Martin, Corinna A1 - Dalton, Paul D. A1 - Villmann, Carmen T1 - Cortical Neurons form a Functional Neuronal Network in a 3D Printed Reinforced Matrix JF - Advanced Healthcare Materials N2 - Impairments in neuronal circuits underly multiple neurodevelopmental and neurodegenerative disorders. 3D cell culture models enhance the complexity of in vitro systems and provide a microenvironment closer to the native situation than with 2D cultures. Such novel model systems will allow the assessment of neuronal network formation and their dysfunction under disease conditions. Here, mouse cortical neurons are cultured from embryonic day E17 within in a fiber‐reinforced matrix. A soft Matrigel with a shear modulus of 31 ± 5.6 Pa is reinforced with scaffolds created by melt electrowriting, improving its mechanical properties and facilitating the handling. Cortical neurons display enhance cell viability and the neuronal network maturation in 3D, estimated by staining of dendrites and synapses over 21 days in vitro, is faster in 3D compared to 2D cultures. Using functional readouts with electrophysiological recordings, different firing patterns of action potentials are observed, which are absent in the presence of the sodium channel blocker, tetrodotoxin. Voltage‐gated sodium currents display a current–voltage relationship with a maximum peak current at −25 mV. With its high customizability in terms of scaffold reinforcement and soft matrix formulation, this approach represents a new tool to study neuronal networks in 3D under normal and, potentially, disease conditions. KW - 3D electrophysiology KW - 3D neuronal networks KW - cortical neurons KW - melt electrowriting Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-215400 VL - 9 IS - 9 ER - TY - JOUR A1 - Andreska, Thomas A1 - Lüningschrör, Patrick A1 - Sendtner, Michael T1 - Regulation of TrkB cell surface expression — a mechanism for modulation of neuronal responsiveness to brain-derived neurotrophic factor JF - Cell and Tissue Research N2 - Neurotrophin signaling via receptor tyrosine kinases is essential for the development and function of the nervous system in vertebrates. TrkB activation and signaling show substantial differences to other receptor tyrosine kinases of the Trk family that mediate the responses to nerve growth factor and neurotrophin-3. Growing evidence suggests that TrkB cell surface expression is highly regulated and determines the sensitivity of neurons to brain-derived neurotrophic factor (BDNF). This translocation of TrkB depends on co-factors and modulators of cAMP levels, N-glycosylation, and receptor transactivation. This process can occur in very short time periods and the resulting rapid modulation of target cell sensitivity to BDNF could represent a mechanism for fine-tuning of synaptic plasticity and communication in complex neuronal networks. This review focuses on those modulatory mechanisms in neurons that regulate responsiveness to BDNF via control of TrkB surface expression. KW - BDNF KW - TrkB KW - subcellular trafficking KW - transactivation KW - synaptic plasticity Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-235055 VL - 382 ER -