TY - JOUR A1 - Drehmann, Paul A1 - Milanos, Sinem A1 - Schaefer, Natascha A1 - Kasaragod, Vikram Babu A1 - Herterich, Sarah A1 - Holzbach-Eberle, Ulrike A1 - Harvey, Robert J. A1 - Villmann, Carmen T1 - Dual role of dysfunctional Asc-1 transporter in distinct human pathologies, human startle disease, and developmental delay JF - eNeuro N2 - Human startle disease is associated with mutations in distinct genes encoding glycine receptors, transporters or interacting proteins at glycinergic synapses in spinal cord and brainstem. However, a significant number of diagnosed patients does not carry a mutation in the common genes GLRA1, GLRB, and SLC6A5. Recently, studies on solute carrier 7 subfamily 10 (SLC7A10; Asc-1, alanine-serine-cysteine transporter) knock-out (KO) mice displaying a startle disease-like phenotype hypothesized that this transporter might represent a novel candidate for human startle disease. Here, we screened 51 patients from our patient cohort negative for the common genes and found three exonic (one missense, two synonymous), seven intronic, and single nucleotide changes in the 5′ and 3′ untranslated regions (UTRs) in Asc-1. The identified missense mutation Asc-1\(^{G307R}\) from a patient with startle disease and developmental delay was investigated in functional studies. At the molecular level, the mutation Asc-1\(^{G307R}\) did not interfere with cell-surface expression, but disrupted glycine uptake. Substitution of glycine at position 307 to other amino acids, e.g., to alanine or tryptophan did not affect trafficking or glycine transport. By contrast, G307K disrupted glycine transport similar to the G307R mutation found in the patient. Structurally, the disrupted function in variants carrying positively charged residues can be explained by local structural rearrangements because of the large positively charged side chain. Thus, our data suggest that SLC7A10 may represent a rare but novel gene associated with human startle disease and developmental delay. KW - Asc-1 transporter KW - candidate gene KW - glycine receptor KW - glycine uptake KW - human startle disease KW - NMDAR Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-349947 VL - 10 IS - 11 ER - TY - THES A1 - Fuhl, Isabell T1 - Untersuchung der synaptischen Lokalisation des heteromeren Glycin-Rezeptors in einem neuen Mausmodell der \(Startle\) Erkrankung - mit Fokus auf die GlyR-β-Untereinheit - T1 - Investigation of the synaptic localisation of the heteromeric glycine receptor in a new mouse model of startle disease - with a focus on the GlyR-β subunit N2 - Der Glycin-Rezeptor ist Teil der inhibitorischen liganden-gesteuerten Ionenkanäle im ZNS und wird am stärksten im adulten Rückenmark sowie im Hirnstamm exprimiert. In der Nerv-Muskel-Synapse sind GlyR für die rekurrente Hemmung der Motoneuronen wichtig und steuern das Gleichgewicht zwischen Erregung und Hemmung der Muskelzellen. Für die glycinerge Neurotransmission sind neben den präsynaptischen GlyR 𝛼1 insbesondere postsynaptische GlyR 𝛼1/𝛽 verantwortlich. Durch Mutationen des GlyR entsteht das Erkrankungsbild der Hyperekplexie mit übersteigerter Schreckhaftigkeit, Muskelsteifheit und Apnoe. Hauptursächlich dafür sind Mutationen im GLRA1-Gen. Die shaky Maus stellt ein gutes Modell zur Erforschung dieser seltenen Erkrankung dar. Die shaky Missense-Mutation Q177K in der extrazellulären 𝛽8-𝛽9 Schleife der Glycin- Rezeptor-𝛼1-Untereinheit zeigte strukturell ein gestörtes Wasserstoffbrückennetzwerk. Funktionell konnten eingeschränkt leitfähige Ionenkanäle identifiziert werden. Der letale Phänotyp äußert sich beim homozygoten shaky Tier durch Schrecksymptome mit einem einhergehenden zunehmenden Gewichtsverlust. Die Quantifizierung der Oberflächenexpression deutete auf einen Verlust synaptischer GlyR 𝛼1/𝛽 hin. Aussagen bezüglich der GlyR-𝛽-Untereinheit, die Teil des synaptischen GlyR Komplexes ist, waren aufgrund fehlender stabiler Antikörper bisher nicht möglich. Das neuartige KI- Mausmodell Glrb eos exprimiert endogen fluoreszierende 𝛽 -Untereinheiten und ermöglicht damit erstmalig eine Betrachtung der GlyR- 𝛽-Expression in Tiermodellen der Startle Erkrankung. Ziel dieser Arbeit war es, die Auswirkungen der shaky Mutation auf die Interaktion mit der 𝛽 -Untereinheit und Gephyrin zu erforschen. Dafür wurden Markerproteine der glycinergen Synapse in Rückenmarksneuronen der Kreuzung Glrb eos x Glra1 sh gefärbt und quantifiziert. Die durchgeführte Gewichtsbestimmung der Nachkommen im zeitlichen Verlauf zeigte keinen Einfluss der eingefügten mEos4b-Sequenz auf das Körpergewicht der Tiere und schließt damit funktionelle Einschränkungen bedingt durch die mEos4b-Sequenz aus. Zur Verstärkung des 𝛽 eos-Signals wurde ein Antikörper verwendet. Die Quantifizierung der GlyR- 𝛽- Untereinheit an Rückenmarksneuronen zeigte für homozygote shaky Tiere im Vergleich zum Wildtyp signifikant reduzierte 𝛽eos Oberflächenexpressionen in Gephyrin Clustern sowie signifikant erniedrigte Kolokalisationen von Gephyrin/𝛼1, 𝛽eos/𝛼1 und 𝛽eos/Gephyrin. Die mutierte GlyR-𝛼1- Untereinheit wurde hingegen vermehrt an der Oberfläche in shaky Tieren exprimiert. Die Ergebnisse der Rückenmarksschnitte unterstützen diese Befunde aus den Primärneuronen. Die Untersuchung der Präsynapse erbrachte für Glrb eos/eos x Glra1 sh/sh eine signifikant verminderte Synapsin und Synapsin/𝛼1 Expression. Die Ergebnisse dieser Arbeit erweitern die Daten früherer Arbeiten zur shaky Maus und zeigen einen starken Verlust synaptischer GlyR 𝛼 1/ 𝛽 an der Oberfläche von Motoneuronen. Ein möglicher kompensatorischer Versuch durch erhöhte 𝛼1 Expression bleibt infolge der Funktionsbeeinträchtigung dieser mutierten GlyR- 𝛼 1 Rezeptoren erfolglos mit letalem Ausgang. In vorherigen Arbeiten wurde vermutet, dass die Mutation in der extrazellulären Bindungsstelle in der Lage ist, Konformationsänderungen in die TM3-TM4-Schleifenstruktur zu übertragen und dadurch die Gephyrin Bindung und synaptische Verankerung zu stören. Die Daten dieser Arbeit stützen diese Annahme und weisen darüber hinaus auf eine gestörte Rezeptorkomplexbindung hin. Die vorliegende Arbeit trägt somit zum besseren Verständnis der Startle Erkrankung auf synaptischer Ebene bei. N2 - The glycine receptor belongs to the inhibitory ligand-gated ion channels in the CNS and is most strongly expressed in the adult spinal cord and brainstem. In the nerve-muscle synapse, GlyR are important for recurrent inhibition of motor neurons and control the balance between excitation and inhibition of muscle cells. In addition to the presynaptic GlyR 𝛼1, postsynaptic GlyR 𝛼1/ 𝛽 in particular are responsible for glycinergic neurotransmission. Mutations of the GlyR lead to the clinical symptoms of hyperekplexia with excessive startle responses, muscle stiffness and apnea. The main causes are mutations in the GLRA1 gene. The shaky mouse is a good model for studying this rare disease. The shaky missense mutation Q177K, located in the extracellular 𝛽8-𝛽9 loop of the glycine receptor 𝛼1 subunit, showed a disrupted hydrogen bond network at the structural level. Functionally restricted conductive ion channels could be identified. The lethal phenotype in the homozygous shaky mouse is manifested by startle symptoms with accompanied increasing weight loss. Quantification of surface expression indicated a loss of synaptic GlyR 𝛼1/𝛽. So far, statements regarding the GlyR-𝛽-subunit which is part of the synaptic receptor complex had not been possible due to the lack of stable antibodies. The novel KI mouse model Glrb eos endogenously expresses fluorescent β-subunits and thus allows an observation of GlyR 𝛽-expression in animal models of startle disease for the first time. The aim of this study was to explore the effects of the shaky mutation on the interaction with the 𝛽-subunit and gephyrin. To this aim, marker proteins of the glycinergic synapse were stained and quantified in spinal cord neurons of Glrb eos x Glra1 sh. The performed weight determination of the littermates over time showed no influence of the inserted mEos4b-sequence on the bodyweight of the animals, thus ruling out functional limitations caused by the mEos4b-sequence. An antibody was used to amplify the 𝛽eos signal. Quantification of the GlyR-𝛽- subunit at spinal cord neurons demonstrated significantly reduced 𝛽eos surface expressions in gephyrin clusters as well as significantly decreased colocalisations of gephyrin/α1, 𝛽eos/𝛼1 and 𝛽eos/gephyrin for homozygous shaky animals compared to wild type. The mutant GlyR- 𝛼1 subunit exhibited enhanced expression at the surface in isolated spinal cord neurons from shaky animals. Results from spinal cord tissues supported these findings from primary neurons. Examination of presynapses revealed significantly decreased synapsin and synapsin/ 𝛼1 expression for Glrb eos/eos x Glra1 sh/sh. The results of this study extend the data of previous studies on the shaky mouse, showing a severe loss of synaptic GlyR 𝛼1/𝛽 at the surface of motor neurons. A potential compensatory attempt through increased α1 expression remains unsuccessful with a lethal outcome due to the functional impairment of these mutated GlyR 𝛼1 receptors. Previous studies have suggested that the mutation in the extracellular binding site is able to transduce conformational changes in the TM3-TM4 loop structure, thereby disrupting gephyrin binding and synaptic integration. The data in this study support this hypothesis and furthermore indicate a disrupted receptor complex binding. The present study thus contributes to a better understanding of Startle disease at the synaptic level. KW - Glycinrezeptor KW - glycine receptor KW - shaky mouse KW - startle disease KW - Hyperekplexie KW - Mausmodell KW - inhibitory snapse Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-348328 ER - TY - JOUR A1 - Schaefer, Natascha A1 - Roemer, Vera A1 - Janzen, Dieter A1 - Villmann, Carmen T1 - Impaired Glycine Receptor Trafficking in Neurological Diseases JF - Frontiers in Molecular Neuroscience N2 - Ionotropic glycine receptors (GlyRs) enable fast synaptic neurotransmission in the adult spinal cord and brainstem. The inhibitory GlyR is a transmembrane glycinegated chloride channel. The immature GlyR protein undergoes various processing steps, e.g., folding, assembly, and maturation while traveling from the endoplasmic reticulum to and through the Golgi apparatus, where post-translational modifications, e.g., glycosylation occur. The mature receptors are forward transported via microtubules to the cellular surface and inserted into neuronal membranes followed by synaptic clustering. The normal life cycle of a receptor protein includes further processes like internalization, recycling, and degradation. Defects in GlyR life cycle, e.g., impaired protein maturation and degradation have been demonstrated to underlie pathological mechanisms of various neurological diseases. The neurological disorder startle disease is caused by glycinergic dysfunction mainly due to missense mutations in genes encoding GlyR subunits (GLRA1 and GLRB). In vitro studies have shown that most recessive forms of startle disease are associated with impaired receptor biogenesis. Another neurological disease with a phenotype similar to startle disease is a special form of stiff-person syndrome (SPS), which is most probably due to the development of GlyR autoantibodies. Binding of GlyR autoantibodies leads to enhanced receptor internalization. Here we focus on the normal life cycle of GlyRs concentrating on assembly and maturation, receptor trafficking, post-synaptic integration and clustering, and GlyR internalization/recycling/degradation. Furthermore, this review highlights findings on impairment of these processes under disease conditions such as disturbed neuronal ER-Golgi trafficking as the major pathomechanism for recessive forms of human startle disease. In SPS, enhanced receptor internalization upon autoantibody binding to the GlyR has been shown to underlie the human pathology. In addition, we discuss how the existing mouse models of startle disease increased our current knowledge of GlyR trafficking routes and function. This review further illuminates receptor trafficking of GlyR variants originally identified in startle disease patients and explains changes in the life cycle of GlyRs in patients with SPS with respect to structural and functional consequences at the receptor level. KW - glycine receptor KW - startle disease KW - autoimmune antibodies KW - protein maturation KW - trafficking pathways Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-227531 VL - 11 IS - 291 ER - TY - JOUR A1 - Piro, Inken A1 - Eckes, Anna-Lena A1 - Kasaragod, Vikram Babu A1 - Sommer, Claudia A1 - Harvey, Robert J. A1 - Schaefer, Natascha A1 - Villmann, Carmen T1 - Novel Functional Properties of Missense Mutations in the Glycine Receptor β Subunit in Startle Disease JF - Frontiers in Molecular Neuroscience N2 - Startle disease is a rare disorder associated with mutations in GLRA1 and GLRB, encoding glycine receptor (GlyR) α1 and β subunits, which enable fast synaptic inhibitory transmission in the spinal cord and brainstem. The GlyR β subunit is important for synaptic localization via interactions with gephyrin and contributes to agonist binding and ion channel conductance. Here, we have studied three GLRB missense mutations, Y252S, S321F, and A455P, identified in startle disease patients. For Y252S in M1 a disrupted stacking interaction with surrounding aromatic residues in M3 and M4 is suggested which is accompanied by an increased EC\(_{50}\) value. By contrast, S321F in M3 might stabilize stacking interactions with aromatic residues in M1 and M4. No significant differences in glycine potency or efficacy were observed for S321F. The A455P variant was not predicted to impact on subunit folding but surprisingly displayed increased maximal currents which were not accompanied by enhanced surface expression, suggesting that A455P is a gain-of-function mutation. All three GlyR β variants are trafficked effectively with the α1 subunit through intracellular compartments and inserted into the cellular membrane. In vivo, the GlyR β subunit is transported together with α1 and the scaffolding protein gephyrin to synaptic sites. The interaction of these proteins was studied using eGFP-gephyrin, forming cytosolic aggregates in non-neuronal cells. eGFP-gephyrin and β subunit co-expression resulted in the recruitment of both wild-type and mutant GlyR β subunits to gephyrin aggregates. However, a significantly lower number of GlyR β aggregates was observed for Y252S, while for mutants S321F and A455P, the area and the perimeter of GlyR β subunit aggregates was increased in comparison to wild-type β. Transfection of hippocampal neurons confirmed differences in GlyR-gephyrin clustering with Y252S and A455P, leading to a significant reduction in GlyR β-positive synapses. Although none of the mutations studied is directly located within the gephyrin-binding motif in the GlyR β M3-M4 loop, we suggest that structural changes within the GlyR β subunit result in differences in GlyR β-gephyrin interactions. Hence, we conclude that loss- or gain-of-function, or alterations in synaptic GlyR clustering may underlie disease pathology in startle disease patients carrying GLRB mutations. KW - glycine receptor KW - hyperekplexia KW - startle disease KW - gephyrin Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-246676 SN - 1662-5099 VL - 14 ER - TY - THES A1 - Janzen, Dieter T1 - Functional analysis of ion channels and neuronal networks in 2D and 3D \(in\) \(vitro\) cell culture models T1 - Funktionelle Analyse von Ionenkanälen und neuronalen Netzwerken in 2D und 3D \(in\) \(vitro\) Zellkulturmodellen N2 - In the central nervous system, excitatory and inhibitory signal transduction processes are mediated by presynaptic release of neurotransmitters, which bind to postsynaptic receptors. Glycine receptors (GlyRs) and GABAA receptors (GABAARs) are ligand-gated ion channels that enable synaptic inhibition. One part of the present thesis elucidated the role of the GlyRα1 β8 β9 loop in receptor expression, localization, and function by means of amino acid substitutions at residue Q177. This residue is underlying a startle disease phenotype in the spontaneous mouse model shaky and affected homozygous animals are dying 4-6 weeks after birth. The residue is located in the β8 β9 loop and thus part of the signal transduction unit essential for proper ion channel function. Moreover, residue Q177 is involved in a hydrogen network important for ligand binding. We observed no difference in ion channel trafficking to the cellular membrane for GlyRα1Q177 variants. However, electrophysiological measurements demonstrated reduced glycine, taurine, and β alanine potency in comparison to the wildtype protein. Modeling revealed that some GlyRα1Q177 variants disrupt the hydrogen network around residue Q177. The largest alterations were observed for the Q177R variant, which displayed similar effects as the Q177K mutation present in shaky mice. Exchange with structurally related amino acids to the original glutamine preserved the hydrogen bond network. Our results underlined the importance of the GlyR β8 β9 loop for proper ion channel gating. GlyRs as well as GABAARs can be modulated by numerous allosteric substances. Recently, we focused on monoterpenes from plant extracts and showed positive allosteric modulation of GABAARs. Here, we focused on the effect of 11 sesquiterpenes and sesquiterpenoids (SQTs) on GABAARs. SQTs are compounds naturally occurring in plants. We tested SQTs of the volatile fractions of hop and chamomile, including their secondary metabolites generated during digestion. Using the patch-clamp technique on transfected cells and neurons, we were able to observe significant GABAAR modulation by some of the compounds analyzed. Furthermore, a possible binding mechanism of SQTs to the neurosteroid binding site of the GABAAR was revealed by modeling and docking studies. We successfully demonstrated GABAAR modulation by SQTs and their secondary metabolites. The second part of the thesis investigated three-dimensional (3D) in vitro cell culture models which are becoming more and more important in different part of natural sciences. The third dimension allows developing of complex models closer to the natural environment of cells, but also requires materials with mechanical and biological properties comparable to the native tissue of the encapsulated cells. This is especially challenging for 3D in vitro cultures of primary neurons and astrocytes as the brain is one of the softest tissues found in the body. Ultra-soft matrices that mimic the neuronal in vivo environment are difficult to handle. We have overcome these challenges using fiber scaffolds created by melt electrowriting to reinforce ultra-soft matrigel. Hence, the scaffolds enabled proper handling of the whole composites and thus structural and functional characterizations requiring movement of the composites to different experimental setups. Using these scaffold-matrigel composites, we successfully established methods necessary for the characterization of neuronal network formation. Before starting with neurons, a mouse fibroblast cell line was seeded in scaffold-matrigel composites and transfected with the GlyR. 3D cultured cells displayed high viability, could be immunocytochemically stained, and electrophysiologically analyzed. In a follow-up study, primary mouse cortical neurons in fiber-reinforced matrigel were grown for up to 21 days in vitro. Neurons displayed high viability, and quantification of neurite lengths and synapse density revealed a fully formed neuronal network already after 7 days in 3D culture. Calcium imaging and patch clamp experiments demonstrated spontaneous network activity, functional voltage-gated sodium channels as well as action potential firing. By combining ultra-soft hydrogels with fiber scaffolds, we successfully created a cell culture model suitable for future work in the context of cell-cell interactions between primary cells of the brain and tumor cells, which will help to elucidate the molecular pathology of aggressive brain tumors and possibly other disease mechanisms. N2 - Im zentralen Nervensystem wird die exzitatorische und inhibitorische Signaltransduktion durch die präsynaptische Ausschüttung von Neurotransmittern, die an postsynaptische Rezeptoren binden, gesteuert. Glycinrezeptoren (GlyRs) und GABAA-Rezeptoren (GABAARs) sind ligandengesteuerte Ionenkanäle, die die synaptische Inhibition ermöglichen. Ein Teil der vorliegenden Arbeit beschäftigt sich mit dem Einfluss des GlyRα1 β8 β9-Loops auf Expression, Lokalisation und Funktion des Rezeptors. Dazu wurde ein Aminosäureaustausch an Position Q177 durchgeführt, welche dem Startle-Krankheit-Phänotyp des spontanen Mausmodells shaky zugrunde liegt. Betroffene homozygote Tiere versterben 4-6 Wochen nach Geburt. Die Position befindet sich im β8 β9-Loop und ist damit Teil einer Signaltransduktionseinheit, die essenziell für die korrekte Rezeptorfunktion ist. Zudem ist Position Q177 teil eines Wasserstoffbrückennetzwerks, welches für die Ligandenbindung erforderlich ist. Wir konnten keinen Einfluss der GlyRα1Q177-Varianten auf den Transport des Rezeptors zur Zellmembran feststellen. Allerdings zeigten elektrophysiologische Messungen eine verringerte Wirksamkeit von Glycin, Taurin und β Alanin verglichen mit dem Wildtyp-Protein. Mithilfe von Proteinmodellierung konnte gezeigt werden, dass manche der GlyRα1Q177-Varianten das Wasserstoffbrückennetzwerk im Umfeld von Position Q177 stören. Die größten Effekte wurden bei der Q177R-Variante beobachtet, die sich ähnlich zur Q177K-Mutation der shaky-Maus verhielt. Der Austausch zu einer Aminosäure, die strukturell ähnlich zum ursprünglichen Glutamin ist, störte das Wasserstoffbrückennetzwerk hingegen nicht. Unsere Ergebnisse zeigen, wie wichtig der GlyR β8 β9-Loop für die Aufrechterhaltung der Rezeptorfunktion ist. Sowohl GlyRs als auch GABAARs können durch verschiedenste allosterische Substanzen moduliert werden. Zuletzt zeigten wir positive allosterische Modulation von GABAARs durch Monoteperne aus Pflanzenextrakten. Hier haben wir uns auf den Effekt von 11 Sesquiterpenen und Sesquiterpenoiden (SQTs) auf GABAARs fokussiert. SQTs sind natürlich in Pflanzen vorkommende Stoffe. Wir testeten SQTs aus dem flüchtigen Anteil von Hopfen und Kamille, sowie deren sekundäre Metaboliten, die während der Verdauung entstehen. Mithilfe der Patch-Clamp-Methode konnten wir in transfizierten Zellenlinien und neuronalen Primärzellen signifikante Modulation von GABAARs durch einige der SQTs beobachten. Außerdem wurde mithilfe von Docking-Simulationen eine mögliche Bindung von SQTs in der Neurosteroid-Bindungstasche gezeigt. Zusammengefasst haben wir erfolgreich die Modulation von GABAARs durch SQTs und deren sekundäre Metaboliten demonstriert. Der zweite Teil der vorliegenden Arbeit beschäftigt sich mit dreidimensionalen (3D) in vitro Zellkulturmodellen, die zunehmend an Bedeutung gewinnen. Die dritte Dimension erlaubt die Entwicklungen von komplexen Modellen, die sich der natürlichen Umgebung von Zellen annähern. Dafür werden Materialien benötigt, deren mechanische und biologische Eigenschaften denen des ursprünglichen Gewebes der eingeschlossenen Zellen ähneln. Dies ist insbesondere eine Herausforderung bei 3D in vitro Kulturen von primären Neuronen und Astrozyten, da das Gehirn eines der weichsten Gewebe des Körpers ist. Ultraweiche Matrizen, welche die neuronale Umgebung nachahmen, sind schwer zu handhaben. Wir haben dieses Problem gelöst, indem wir ultraweiches Matrigel mit Fasergerüsten verstärkten, die mithilfe von Melt Electrowriting gedruckt wurden. Somit können diese Matrigel-Faser-Komposite für strukturelle und funktionelle Experimente benutzt werden, die häufige Bewegung und Transport der Proben voraussetzen. Mit diesen Matrigel-Faser-Kompositen haben wir Methoden etabliert, die für die Charakterisierung von neuronalen Netzwerken erforderlich sind. Anstelle von Neuronen haben wir dafür eine Mausfibroblasten-Zelllinie benutzt und mit dem GlyR transfiziert. Zellen in den Matrigel-Faser-Komposite zeigten eine hohe Viabilität, konnten immunocytochemisch angefärbt werden, und mithilfe von elektrophysiologischen Methoden gemessen werden. Darauf aufbauend haben wir primäre kortikale Mausneurone in faserverstärktem Matrigel für bis zu 21 Tage wachsen lassen. Die Neurone zeigten eine hohe Viabilität und durch Quantifikation von Neuritenlänge und Synapsendichte konnte ein vollständig ausgeformtes Netzwerk nach 7 Tagen in 3D-Kultur demonstriert werden. Mithilfe von Calcium-Imaging und Patch-Clamp-Experimenten wurden spontane Netzwerkaktivität, funktionelle spannungsgesteuerte Natriumkanäle, sowie Aktionspotentiale nachgewiesen. Somit konnten wir durch Kombination von einem ultraweichen Hydrogel mit Fasergerüsten erfolgreich ein Zellkulturmodell entwickeln, das zukünftig für die Erforschung von Zell-Zell-Interaktionen zwischen primären Gehirnzellen und Tumorzellen benutzt werden kann. Damit kann die molekulare Pathologie von aggressiven Hirntumoren und möglicherweise anderen Krankheitsmechanismen weiter aufgeklärt werden. KW - Zellkultur KW - Ionenkanal KW - Aminobuttersäure KW - Glycin KW - Rezeptor KW - 3D cell culture KW - neuronal network KW - ion channel KW - glycine receptor KW - GABA receptor KW - 3D-Zellkultur KW - Nervennetz KW - Glycinrezeptor KW - GABA-Rezeptor Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-251700 ER - TY - JOUR A1 - Schaefer, Natascha A1 - Zheng, Fang A1 - van Brederode, Johannes A1 - Berger, Alexandra A1 - Leacock, Sophie A1 - Hirata, Hiromi A1 - Paige, Christopher J. A1 - Harvey, Robert J. A1 - Alzheimer, Christian A1 - Villmann, Carmen T1 - Functional Consequences of the Postnatal Switch From Neonatal to Mutant Adult Glycine Receptor α1 Subunits in the Shaky Mouse Model of Startle Disease JF - Frontiers in Molecular Neuroscience N2 - Mutations in GlyR α1 or β subunit genes in humans and rodents lead to severe startle disease characterized by rigidity, massive stiffness and excessive startle responses upon unexpected tactile or acoustic stimuli. The recently characterized startle disease mouse mutant shaky carries a missense mutation (Q177K) in the β8-β9 loop within the large extracellular N-terminal domain of the GlyR α1 subunit. This results in a disrupted hydrogen bond network around K177 and faster GlyR decay times. Symptoms in mice start at postnatal day 14 and increase until premature death of homozygous shaky mice around 4–6 weeks after birth. Here we investigate the in vivo functional effects of the Q177K mutation using behavioral analysis coupled to protein biochemistry and functional assays. Western blot analysis revealed GlyR α1 subunit expression in wild-type and shaky animals around postnatal day 7, a week before symptoms in mutant mice become obvious. Before 2 weeks of age, homozygous shaky mice appeared healthy and showed no changes in body weight. However, analysis of gait and hind-limb clasping revealed that motor coordination was already impaired. Motor coordination and the activity pattern at P28 improved significantly upon diazepam treatment, a pharmacotherapy used in human startle disease. To investigate whether functional deficits in glycinergic neurotransmission are present prior to phenotypic onset, we performed whole-cell recordings from hypoglossal motoneurons (HMs) in brain stem slices from wild-type and shaky mice at different postnatal stages. Shaky homozygotes showed a decline in mIPSC amplitude and frequency at P9-P13, progressing to significant reductions in mIPSC amplitude and decay time at P18-24 compared to wild-type littermates. Extrasynaptic GlyRs recorded by bath-application of glycine also revealed reduced current amplitudes in shaky mice compared to wild-type neurons, suggesting that presynaptic GlyR function is also impaired. Thus, a distinct, but behaviorally ineffective impairment of glycinergic synapses precedes the symptoms onset in shaky mice. These findings extend our current knowledge on startle disease in the shaky mouse model in that they demonstrate how the progression of GlyR dysfunction causes, with a delay of about 1 week, the appearance of disease symptoms. KW - glycine receptor KW - startle disease KW - β8-β9 loop KW - mouse model KW - fast decay Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-196056 SN - 1662-5099 VL - 11 IS - 167 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 - Atak, Sinem A1 - Langlhofer, Georg A1 - Schaefer, Natascha A1 - Kessler, Denise A1 - Meiselbach, Heike A1 - Delto, Carolyn A1 - Schindelin, Hermann A1 - Villmann, Carmen T1 - Disturbances of ligand potency and enhanced degradation of the human glycine receptor at affected positions G160 and T162 originally identified in patients suffering from hyperekplexia JF - Frontiers in Molecular Neuroscience N2 - Ligand-binding of Cys-loop receptors is determined by N-terminal extracellular loop structures from the plus as well as from the minus side of two adjacent subunits in the pentameric receptor complex. An aromatic residue in loop B of the glycine receptor (GIyR) undergoes direct interaction with the incoming ligand via a cation-π interaction. Recently, we showed that mutated residues in loop B identified from human patients suffering from hyperekplexia disturb ligand-binding. Here, we exchanged the affected human residues by amino acids found in related members of the Cys-loop receptor family to determine the effects of side chain volume for ion channel properties. GIyR variants were characterized in vitro following transfection into cell lines in order to analyze protein expression, trafficking, degradation and ion channel function. GIyR α1 G160 mutations significantly decrease glycine potency arguing for a positional effect on neighboring aromatic residues and consequently glycine-binding within the ligand-binding pocket. Disturbed glycinergic inhibition due to T162 α1 mutations is an additive effect of affected biogenesis and structural changes within the ligand-binding site. Protein trafficking from the ER toward the ER-Golgi intermediate compartment, the secretory Golgi pathways and finally the cell surface is largely diminished, but still sufficient to deliver ion channels that are functional at least at high glycine concentrations. The majority of T162 mutant protein accumulates in the ER and is delivered to ER-associated proteasomal degradation. Hence, G160 is an important determinant during glycine binding. In contrast, 1162 affects primarily receptor biogenesis whereas exchanges in functionality are secondary effects thereof. KW - mutations KW - trafficking KW - domain KW - hyperekplexia KW - loop B KW - side chain properties KW - ligand potencies KW - Cys-loop receptor KW - glycine receptor KW - site KW - activation KW - binding KW - channel KW - mechanisms KW - dominant KW - startle Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-144818 VL - 8 IS - 79 ER -