TY - THES A1 - Schukraft [geb. Scheffler], Nina T1 - Integrated defensive states and their neuronal correlates in the Periaqueductal Gray T1 - Integrierte Defensivzustände und ihre neuronalen Korrelate im Periaquäduktalen Grau N2 - In the face of threat, animals react with a defensive reaction to avoid or reduce harm. This defensive reaction encompasses apart from behavioral changes also physiological, analgetic, and endocrine adaptations. Nonetheless, most animal studies on fear and anxiety are based on behavioral observations only, disregarding other aspects of the defensive reaction, or integrating their inter-related dynamics only insufficiently. The first part of this thesis aimed in characterizing patterned associations of behavioral and physiological responses, termed integrated defensive states. Analyzing cardiac and behavioral responses in mice undergoing multiple fear and anxiety paradigms revealed a complex and dynamic interaction of those readouts on both, short and long timescales. Microstates, stereotypical combinations of i.e. freezing and decelerating heart rates, are short-lasting and were, in turn, shown to be influenced by slow acting macrostate changes. One of those higher order macrostates, called `rigidity`, was defined as a latent process that constrains the range of momentary displayed heart rate values. Furthermore, integrated defensive states were found to be highly dependent on the cue and the context the animals are confronted with. Importantly, same behavioral observations, i.e. freezing, were associated with distinct cardiac responses, highlighting the importance of multivariate analysis of integrated defensive states. Defensive states are orchestrated by the brain, which has evolved evolutionary conserved survival circuits. A central brain area of these circuits is the periaqueductal gray (PAG) in the midbrain. It plays a pivotal role in mediating defensive states, as it receives signals about external and internal information from multiple brain regions and sends information to both, higher order brain areas as well as to the brainstem ultimately causing the execution of threat responses. In the second part of this thesis, different neuronal circuit elements in the PAG were optically manipulated in order to gain mechanistic insight into the defense network in the brain underlying the previously delineated cardio-behavioral defensive states. Optical activation of glutamatergic PAG neurons evoked heterogeneous, light-intensity dependent responses. However, a further molecular restriction of the glutamatergic neuronal population targeting only Chx10+ neurons, led to a cardio-behavioral state that resembled spontaneous freezing-bradycardia bouts. In summary, this thesis presents a multivariate description of defensive states, which includes the complex interaction of cardiac and behavioral responses on different timescales and, furthermore, functionally dissects different excitatory and inhibitory PAG circuit elements mediating these defensive states. N2 - Tiere reagieren mit einer Abwehrreaktion auf eine Bedrohung, um Schaden zu vermeiden oder zu verringern. Diese Abwehrreaktion umfasst neben Verhaltensänderungen auch physiologische, analgetische und endokrine Anpassungen. Dennoch stützen sich die meisten Tierstudien auf dem Gebiet von Furcht- und Angstforschung nur auf Verhaltensbeobachtungen und lassen dabei andere Aspekte der Abwehrreaktion außer Acht oder berücksichtigen ihre komplexen gegenseitigen Beziehungen nur unzureichend. Das Ziel des ersten Teils dieser Arbeit war, bestimmte Zusammenhänge von Verhalten und physiologischen Reaktionen zu charakterisieren, die hier als integrierte Defensivzustände bezeichnet werden. Um Defensivzustände bei Mäusen hervorzurufen, wurden diese mehreren Furcht- und Angstparadigmen unterzogen. Die Analyse der dabei hervorgerufenen Herzratenänderungen und Verhaltensanpassungen ergab eine komplexe und dynamische Interaktion dieser beiden Reaktionen, bei denen sowohl kurz- als auch auf längerfristige Änderungen eine Rolle spielen. Mikrozustände, stereotype Kombinationen von z. B. Freezing und Verlangsamung der Herzfrequenz, sind von kurzer Dauer und werden wiederum durch langsamer wirkende Makrozustände beeinflusst. Einer dieser auf einer übergeordneteren Ebene wirkenden Makrozustände, "rigidity" genannt, wurde als latenter Prozess definiert, der den Ausprägungsbereich der zu jedem Zeitpunkt möglichen Maximal- und Minimalherzfrequenz beschreibt. Darüber hinaus wurde festgestellt, dass integrierte Defensivzustände in hohem Maße von dem Auslösereiz und dem Kontext abhängen, mit dem die Tiere konfrontiert werden. Eine wichtige Erkenntnis hierbei war, dass dieselben Verhaltensbeobachtungen, z. B. Freezing, mit unterschiedlichen kardialen Antworten assoziiert sein kann. Dies unterstreicht die Bedeutsamkeit von multivariaten Analysen integrierter Defensivzustände. Defensivzustände werden vom Gehirn gesteuert, das evolutionär konservierte neuronale Überlebensschaltkreise entwickelt hat. Ein zentrales Hirnareal dieser Schaltkreise ist das Periaquäduktale Grau (PAG) im Mittelhirn. Diese Hirnstruktur spielt eine wichtige Rolle bei der Vermittlung von Defensivzuständen, da es diverse Signale über sowohl äußere als auch innere Zustände aus multiplen Hirnregionen empfängt und gleichzeitig Informationen an Hirnareale höherer Ordnung sowie an den Hirnstamm sendet, der letztendlich die Ausführung von Defensivreaktionen vermittelt. Im zweiten Teil dieser Arbeit wurden verschiedene neuronale Schaltkreiselemente im PAG optogenetisch manipuliert, um einen mechanistischen Einblick in das Defensivnetzwerk im Gehirn zu erhalten, das den zuvor beschriebenen kardio-verhaltensmäßigen Defensivzuständen zugrunde liegt. Die optische Aktivierung von glutamatergen PAG-Neuronen war mit einer heterogenen, von der Lichtintensität abhängigen Reaktionen assoziiert. Eine weitere molekulare Restriktion der glutamatergen Neuronenpopulation, die nun ausschließlich auf Chx10+ Neuronen abzielte, führte hingegen zu einem kardio-verhaltensmäßigen Zustand, der vergleichbar mit zuvor beobachteten spontanen Freezing-Bradykardie-Zuständen war. Zusammenfassend umfasst diese Arbeit eine multivariate Beschreibung von Defensivzuständen, die das komplexe Zusammenspiel von kardialen und verhaltensmäßigen Reaktionen auf verschiedenen Zeitachsen umfasst sowie - mittels Optogenetik - eine funktionelle Charakterisierung von verschiedenen exzitatorischen und inhibitorischen PAG-Schaltkreiselementen, die diese Defensivzustände vermitteln. KW - Perianova, Irina KW - Integrated Defensive States KW - Periaqueductal gray Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-347458 ER - TY - THES A1 - Massih, Bita T1 - Human stem cell-based models to analyze the pathophysiology of motor neuron diseases T1 - Humane Stammzell-basierte Modelle zur Analyse der Pathophysiologie von Motoneuronerkrankungen N2 - Motor neuron diseases (MNDs) encompass a variety of clinically and genetically heterogeneous disorders, which lead to the degeneration of motor neurons (MNs) and impaired motor functions. MNs coordinate and control movement by transmitting their signal to a target muscle cell. The synaptic endings of the MN axon and the contact site of the muscle cell thereby form the presynaptic and postsynaptic structures of the neuromuscular junction (NMJ). In MNDs, synaptic dysfunction and synapse elimination precede MN loss suggesting that the NMJ is an early target in the pathophysiological cascade leading to MN death. In this study, we established new experimental strategies to analyze human MNDs by patient derived induced pluripotent stem cells (iPSCs) and investigated pathophysiological mechanisms in two different MNDs. To study human MNDs, specialized cell culture systems that enable the connection of MNs to their target muscle cells are required to allow the formation of NMJs. In the first part of this study, we established and validated a human neuromuscular co-culture system consisting of iPSC derived MNs and 3D skeletal muscle tissue derived from myoblasts. We generated 3D muscle tissue by culturing primary myoblasts in a defined extracellular matrix in self-microfabricated silicone dishes that support the 3D tissue formation. Subsequently, iPSCs from healthy donors and iPSCs from patients with the progressive MND Amyotrophic Lateral Sclerosis (ALS) were differentiated into MNs and used for 3D neuromuscular co-cultures. Using a combination of immunohistochemistry, calcium imaging, and pharmacological stimulations, we characterized and confirmed the functionality of the 3D muscle tissue and the 3D neuromuscular co-cultures. Finally, we applied this system as an in vitro model to study the pathophysiology of ALS and found a decrease in neuromuscular coupling, muscle contraction, and axonal outgrowth in co-cultures with MNs harboring ALS-linked superoxide dismutase 1 (SOD1) mutation. In summary, this co-culture system presents a human model for MNDs that can recapitulate aspects of ALS pathophysiology. In the second part of this study, we identified an impaired unconventional protein secretion (UPS) of Sod1 as pathological mechanisms in Pleckstrin homology domain-containing family G member 5 (Plekhg5)-associated MND. Sod1 is a leaderless cytosolic protein which is secreted in an autophagy-dependent manner. We found that Plekhg5 depletion in primary MNs and NSC34 cells leads to an impaired secretion of wildtype Sod1, indicating that Plekhg5 drives the UPS of Sod1 in vitro. By interfering with different steps during the biogenesis of autophagosomes, we could show that Plekhg5-regulated Sod1 secretion is determined by autophagy. To analyze our findings in a clinically more relevant model we utilized human iPSC MNs from healthy donors and ALS patients with SOD1 mutations. We observed reduced SOD1 secretion in ALS MNs which coincides with reduced protein expression of PLEKHG5 compared to healthy and isogenic control MNs. To confirm this correlation, we depleted PLEKHG5 in control MNs and found reduced extracellular SOD1 levels, implying that SOD1 secretion depends on PLEKHG5. In summary, we found that Plekh5 regulates the UPS of Sod1 in mouse and human MNs and that Sod1 secretion occurs in an autophagy dependent manner. Our data shows an unreported mechanistic link between two MND-associated proteins. N2 - Motoneuronerkrankungen (MNE) umfassen eine Vielzahl klinisch und genetisch heterogener Erkrankungen, die zur Degeneration von Motoneuronen (MN) und zu beeinträchtigten motorischen Funktionen führen. MN koordinieren und steuern Muskelbewegungen, indem sie ihr Signal an eine Zielmuskelzelle übertragen. Die synaptischen Endungen des MN-Axons und die Kontaktstelle der Muskelzelle bilden dabei die präsynaptischen und postsynaptischen Strukturen der neuromuskulären Endplatte (NME). Bei MNE zeichnen sich synaptische Dysfunktion und Synapseneliminierung bereits vor dem Verlust von MN ab, was darauf hindeutet, dass die NME ein frühes Ziel in der pathophysiologischen Kaskade ist, die zum MN-Tod führt. In dieser Studie haben wir neue experimentelle Strategien zur Analyse humaner MNE mithilfe von humanen induzierten pluripotenten Stammzellen (iPSZ) entwickelt und pathophysiologische Mechanismen bei zwei verschiedenen MNE untersucht. Um humane MNE zu untersuchen sind Zellkultursysteme erforderlich, die die Verbindung von MN mit ihren Zielmuskelzellen ermöglichen, um NME zu bilden. Im ersten Teil dieser Studie haben wir ein humanes neuromuskuläres Co-Kultursystem etabliert und validiert, das aus iPSZ abgeleiteten MN und 3D Skelettmuskelgewebe aus Myoblasten besteht. Wir haben 3D Muskelgewebe erzeugt, indem wir primäre Myoblasten in einer definierten extrazellulären Matrix in selbst gefertigten Silikonschalen kultivierten, die die 3D-Gewebebildung unterstützen. Anschließend wurden iPSZ von gesunden Spendern und iPSZ von Patienten mit der MNE Amyotrophe Lateralsklerose (ALS) in MN differenziert und für neuromuskuläre 3D Co-Kulturen verwendet. Mithilfe von immunhistochemischen Untersuchungen, Calcium-Imaging und pharmakologischen Stimulationen konnten wir die Funktionalität des 3D Muskelgewebes und neuromuskulären 3D Co-Kulturen charakterisieren und validieren. Anschließend wurde das System als in vitro Modell zur Untersuchung der Pathophysiologie von ALS verwendet. ALS Co-Kulturen mit MN, die eine Superoxid Dismutase 1 (SOD1)-Genmutation aufwiesen, zeigten eine Abnahme der neuromuskulären Verbindung, der Muskelkontraktion und des axonalen Wachstums. Zusammenfassend stellt dieses Co-Kultursystem ein humanes Modell für die Untersuchung von MNE dar, das Aspekte der ALS-Physiologie rekapitulieren kann. Im zweiten Teil dieser Studie konnten wir eine Beeinträchtigung der unkonventionellen Proteinsekretion (UPS) von Sod1 als pathologischen Mechanismus bei Pleckstrin homology domain-containing family G member 5 (Plekhg5)-assoziiertem MNE identifizieren. Sod1 ist ein cytosolisches Protein ohne Signalsequenz für konventionelle Sekretion. Stattdessen wird die UPS über sekretorische Autophagie-Mechanismen reguliert. Unsere Ergebnisse zeigen, dass Plekhg5-Depletion in primären MN und NSC34-Zellen zu einer beeinträchtigten Sekretion von Wildtyp-Sod1 führt, was darauf hinweist, dass die UPS von Sod1 Plekgh5 abhängig ist. Indem verschiedene Schritte während der Biogenese von Autophagosomen gestört wurden, konnten wir nachweisen, dass die Plekhg5-regulierte Sod1-Sekretion Autophagie abhängig ist. Um unsere Ergebnisse in einem klinisch relevanteren Modell zu analysieren, wurden humane iPSZ-MN von gesunden Spendern und ALS-Patienten mit SOD1-Mutationen untersucht. Hier fand sich, dass die Sekretion von mutiertem SOD1 in ALS-MN im Vergleich zu gesunden und isogenen Kontrollen verringert ist. Dabei konnten wir zeigen, dass eine verringerte SOD1 Sekretion in ALS-MNs mit einer verringerten Expression von PLEKHG5 einhergeht. Um diese Korrelation zu bestätigen, wurden Kontroll-MN nach PLEKHG5-Depletion untersucht und eine verminderte SOD1-Sekretion dokumentiert, was auf eine PLEKHG5 Abhängigkeit hindeutet. Zusammenfassend konnten wir zeigen, dass Plekh5 die UPS von Sod1 in Maus MN und humanen MN reguliert und dass die Sod1-Sekretion Autophagie abhängig erfolgt. Unsere Daten belegen eine bislang noch nicht gezeigte mechanistische Verknüpfung zwischen zwei MNE-assoziierten Proteinen. KW - Tissue Engineering KW - NMJ (neuromuscular junction) KW - MND KW - SOD1 KW - ALS KW - PLEKHG5 KW - Co-culture KW - 3D muscle KW - Motoneuron KW - Stammzellen KW - Neuromuskuläre Endplatte KW - Induzierte pluripotente Stammzelle KW - Motoneuron-Krankheit KW - Myatrophische Lateralsklerose KW - Zellkultur KW - Motorische Endplatte KW - Induced pluripotent stem cells KW - Motor neuron disease KW - Amyotrophic lateral sclerosis KW - Cell culture Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-346374 PB - Frontiers in Cell and Developmental Biology ER - TY - JOUR A1 - Wiessler, Anna-Lena A1 - Talucci, Ivan A1 - Piro, Inken A1 - Seefried, Sabine A1 - Hörlin, Verena A1 - Baykan, Betül B. A1 - Tüzün, Erdem A1 - Schaefer, Natascha A1 - Maric, Hans M. A1 - Sommer, Claudia A1 - Villmann, Carmen T1 - Glycine receptor β–targeting autoantibodies contribute to the pathology of autoimmune diseases JF - Neurology: Neuroimmunology & Neuroinflammation N2 - Background and Objectives Stiff-person syndrome (SPS) and progressive encephalomyelitis with rigidity and myoclonus (PERM) are rare neurologic disorders of the CNS. Until now, exclusive GlyRα subunit–binding autoantibodies with subsequent changes in function and surface numbers were reported. GlyR autoantibodies have also been described in patients with focal epilepsy. Autoimmune reactivity against the GlyRβ subunits has not yet been shown. Autoantibodies against GlyRα1 target the large extracellular N-terminal domain. This domain shares a high degree of sequence homology with GlyRβ making it not unlikely that GlyRβ-specific autoantibody (aAb) exist and contribute to the disease pathology. Methods In this study, we investigated serum samples from 58 patients for aAb specifically detecting GlyRβ. Studies in microarray format, cell-based assays, and primary spinal cord neurons and spinal cord tissue immunohistochemistry were performed to determine specific GlyRβ binding and define aAb binding to distinct protein regions. Preadsorption approaches of aAbs using living cells and the purified extracellular receptor domain were further used. Finally, functional consequences for inhibitory neurotransmission upon GlyRβ aAb binding were resolved by whole-cell patch-clamp recordings. Results Among 58 samples investigated, cell-based assays, tissue analysis, and preadsorption approaches revealed 2 patients with high specificity for GlyRβ aAb. Quantitative protein cluster analysis demonstrated aAb binding to synaptic GlyRβ colocalized with the scaffold protein gephyrin independent of the presence of GlyRα1. At the functional level, binding of GlyRβ aAb from both patients to its target impair glycine efficacy. Discussion Our study establishes GlyRβ as novel target of aAb in patients with SPS/PERM. In contrast to exclusively GlyRα1-positive sera, which alter glycine potency, aAbs against GlyRβ impair receptor efficacy for the neurotransmitter glycine. Imaging and functional analyses showed that GlyRβ aAbs antagonize inhibitory neurotransmission by affecting receptor function rather than localization. KW - autoantibody (aAb) KW - glycine receptor (GlyR) KW - stiff-person syndrome (SPS) KW - clinical neurology KW - movement disorders KW - progressive encephalitis with rigidity and myoclonus (PERM) Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-349958 VL - 11 IS - 2 ER - TY - INPR A1 - Brenner, Marian A1 - Zink, Christoph A1 - Witzinger, Linda A1 - Keller, Angelika A1 - Hadamek, Kerstin A1 - Bothe, Sebastian A1 - Neuenschwander, Martin A1 - Villmann, Carmen A1 - von Kries, Jens Peter A1 - Schindelin, Hermann A1 - Jeanclos, Elisabeth A1 - Gohla, Antje T1 - 7,8-Dihydroxyflavone is a direct inhibitor of pyridoxal phosphatase T2 - eLife N2 - Vitamin B6 deficiency has been linked to cognitive impairment in human brain disorders for decades. Still, the molecular mechanisms linking vitamin B6 to these pathologies remain poorly understood, and whether vitamin B6 supplementation improves cognition is unclear as well. Pyridoxal phosphatase (PDXP), an enzyme that controls levels of pyridoxal 5’-phosphate (PLP), the co-enzymatically active form of vitamin B6, may represent an alternative therapeutic entry point into vitamin B6-associated pathologies. However, pharmacological PDXP inhibitors to test this concept are lacking. We now identify a PDXP and age-dependent decline of PLP levels in the murine hippocampus that provides a rationale for the development of PDXP inhibitors. Using a combination of small molecule screening, protein crystallography and biolayer interferometry, we discover and analyze 7,8-dihydroxyflavone (7,8-DHF) as a direct and potent PDXP inhibitor. 7,8-DHF binds and reversibly inhibits PDXP with low micromolar affinity and sub-micromolar potency. In mouse hippocampal neurons, 7,8-DHF increases PLP in a PDXP-dependent manner. These findings validate PDXP as a druggable target. Of note, 7,8-DHF is a well-studied molecule in brain disorder models, although its mechanism of action is actively debated. Our discovery of 7,8-DHF as a PDXP inhibitor offers novel mechanistic insights into the controversy surrounding 7,8-DHF-mediated effects in the brain. KW - 7,8-dihydroxyflavone (7,8-DHF) KW - pyridoxal phosphatase (PDXP) KW - vitamin B6 KW - PDXP inhibitors Y1 - 2024 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-350446 ER - TY - THES A1 - Schulte, Annemarie T1 - \(In\) \(vitro\) reprogramming of glial cells from adult dorsal root ganglia into nociceptor-like neurons T1 - \(In\) \(vitro\) Reprogrammierung von Gliazellen aus adulten Spinalganglien in Nozizeptor-ähnliche Neurone N2 - Plexus injury often occurs after motor vehicle accidents and results in lifelong disability with severe neuropathic pain. Surgical treatment can partially restore motor functions, but sensory loss and neuropathic pain persist. Regenerative medicine concepts, such as cell replacement therapies for restoring dorsal root ganglia (DRG) function, set high expectations. However, up to now, it is unclear which DRG cell types are affected by nerve injury and can be targeted in regenerative medicine approaches. This study followed the hypothesis that satellite glial cells (SGCs) might be a suitable endogenous cell source for regenerative medicine concepts in the DRG. SGCs originate from the same neural crest-derived cell lineage as sensory neurons, making them attractive for neural repair strategies in the peripheral nervous system. Our hypothesis was investigated on three levels of experimentation. First, we asked whether adult SGCs have the potential of sensory neuron precursors and can be reprogrammed into sensory neurons in vitro. We found that adult mouse DRG harbor SGC-like cells that can still dedifferentiate into progenitor-like cells. Surprisingly, expression of the early developmental transcription factors Neurog1 and Neurog2 was sufficient to induce neuronal and glial cell phenotypes. In the presence of nerve growth factor, induced neurons developed a nociceptor-like phenotype expressing functional nociceptor markers, such as the ion channels TrpA1, TrpV1 and NaV1.9. In a second set of experiments, we used a rat model for peripheral nerve injury to look for changes in the DRG cell composition. Using an unbiased deep learning-based approach for cell analysis, we found that cellular plasticity responses after nerve injury activate SGCs in the whole DRG. However, neither injury-induced neuronal death nor gliosis was observed. Finally, we asked whether a severe nerve injury changed the cell composition in the human DRG. For this, a cohort of 13 patients with brachial plexus injury was investigated. Surprisingly, in about half of all patients, the injury-affected DRG showed no characteristic DRG tissue. The complete entity of neurons, satellite cells, and axons was lost and fully replaced by mesodermal/connective tissue. In the other half of the patients, the basic cellular entity of the DRG was well preserved. Objective deep learning-based analysis of large-scale bioimages of the “intact” DRG showed no loss of neurons and no signs of gliosis. This study suggests that concepts for regenerative medicine for restoring DRG function need at least two translational research directions: reafferentation of existing DRG units or full replacement of the entire multicellular DRG structure. For DRG replacement, SGCs of the adult DRG are an attractive endogenous cell source, as the multicellular DRG units could possibly be rebuilt by transdifferentiating neural crest-derived sensory progenitor cells into peripheral sensory neurons and glial cells using Neurog1 and Neurog2. N2 - Plexusläsionen treten häufig nach Verkehrsunfällen auf und führen zu lebenslangen Einschränkungen mit starken neuropathischen Schmerzen. Eine operative Behandlung kann die motorischen Funktionen teilweise wiederherstellen, dennoch bleiben Verlust der Sensorik und neuropathische Schmerzen bestehen. Ansätze der regenerativen Medizin, wie z. B. Zellersatztherapien zur Wiederherstellung der Funktion der Spinalganglien, wecken hohe Erwartungen. Bislang ist jedoch vollkommen unklar, welche Zelltypen der Spinalganglien von der Nervenverletzung betroffen sind und bei Ansätzen der regenerativen Medizin gezielt eingesetzt werden sollten. Hier war die Hypothese, dass Satellitengliazellen (SGCs) eine geeignete endogene Zellquelle für Ansätze der regenerativen Medizin in den Spinalganglien sein könnten. SGCs und sensorische Neurone stammen von denselben Stammzellen der Neuralleiste ab, was SGCs für neurale Reparaturstrategien im peripheren Nervensystem attraktiv macht. Unsere Hypothese wurde auf drei Ebenen experimentell untersucht. Zuerst stellten wir die Frage, ob adulte SGCs das Potenzial haben, neuronale Vorläufermerkmale anzunehmen und in vitro in sensorische Neuronen reprogrammiert werden können. Hierbei zeigte sich, dass Spinalganglien der Maus adulte SGC-ähnliche Zellen beherbergen, die sich in vorläuferähnliche Zellen dedifferenzieren können. Überraschenderweise war die Expression der frühen entwicklungsrelevanten Transkriptions-faktoren Neurog1 und Neurog2 ausreichend, um neuronale und gliale Phänotypen zu induzieren. In Anwesenheit des Neurotrophins NGF (nerve growth factor) entwickelten die induzierten Neurone einen Nozizeptor-ähnlichen Phänotyp, der funktionelle Marker für Nozizeptoren wie die Ionenkanäle TrpA1, TrpV1 und NaV1.9 exprimierte. In einer zweiten Reihe von Experimenten haben wir in einem Rattenmodell für periphere Nervenverletzungen Veränderungen in der Zellzusammensetzung von Spinalganglien untersucht. Mithilfe eines objektiven Deep Learning basierten Ansatzes zur Bildanalyse fanden wir im gesamten DRG SGCs, die auf Nervenverletzungen mit einer hohen zellulären Plastizität reagierten. Es wurde jedoch weder ein verletzungsbedingter neuronaler Verlust noch eine Gliose beobachtet. Schließlich untersuchten wir, ob eine schwere Nervenverletzung die Zellzusammensetzung in menschlichen Spinalganglien verändert. Dazu wurde eine Kohorte von 13 Patienten mit einer Verletzung des Plexus brachialis untersucht. Überraschenderweise zeigte sich in verletzten Spinalganglien bei etwa der Hälfte aller Patienten kein Spinalgangliengewebe mehr. Die gesamte Einheit aus Neuronen, Satellitengliazellen und Axonen war verloren und vollständig durch mesodermales Bindegewebe ersetzt. Bei der anderen Hälfte der Patienten war die grundlegende zelluläre Einheit des Spinalganglions gut erhalten. Eine objektive, auf Deep Learning basierende Analyse von großflächigen Mikroskopiebildern des "intakten" Spinalganglions zeigte keinen Verlust von Neuronen und keine Anzeichen von Gliose. Diese Studie legt nahe, dass zur Wiederherstellung der Funktionen des Spinalganglions mindestens zwei translationale Forschungsrichtungen der regenerativen Medizin erforderlich sind: Reafferenzierung bestehender Spinalganglion-Einheiten oder vollständiger Ersatz der gesamten multizellulären Spinalganglion-Struktur. Für den Ersatz des Spinalganglions sind SGCs des adulten Spinalganglions eine plausible endogene Zellquelle. Die multizellulären Einheiten des Spinalganglions könnten möglicherweise durch eine Neurog1- und Neurog2- induzierte Transdifferenzierung von sensorischen Vorläuferzellen der Neuralleiste in periphere sensorische Neuronen und Gliazellen wiederaufgebaut werden. KW - Spinalganglion KW - Reprogrammming KW - Satellite glial cell KW - Nociceptor KW - Dorsal root ganglion Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-303110 ER - TY - THES A1 - Deng, Chunchu T1 - Dynamic remodeling of endoplasmic reticulum and ribosomes in axon terminals of wildtype and Spinal Muscular Atrophy motoneurons T1 - Dynamische Reorganization des endoplasmatischen Retikulums und der Ribosomen in Axonterminalen von Wildtyp- und Spinaler Muskelatrophie Motoneuronen N2 - In highly polarized neurons, endoplasmic reticulum (ER) forms a dynamic and continuous network in axons that plays important roles in lipid synthesis, Ca2+ homeostasis and the maintenance of synapses. However, the mechanisms underlying the regulation of axonal ER dynamics and its function in regulation of local translation still remain elusive. In the course of my thesis, I investigated the fast dynamic movements of ER and ribosomes in the growth cone of wildtype motoneurons as well as motoneurons from a mouse model of Spinal Muscular Atrophy (SMA), in response to Brain-derived neurotrophic factor (BDNF) stimulation. Live cell imaging data show that ER extends into axonal growth cone filopodia along actin filaments and disruption of actin cytoskeleton by cytochalasin D treatment impairs the dynamic movement of ER in the axonal filopodia. In contrast to filopodia, ER movements in the growth cone core seem to depend on coordinated actions of the actin and microtubule cytoskeleton. Myosin VI is especially required for ER movements into filopodia and drebrin A mediates actin/microtubule coordinated ER dynamics. Furthermore, we found that BDNF/TrkB signaling induces assembly of 80S ribosomes in growth cones on a time scale of seconds. Activated ribosomes relocate to the presynaptic ER and undergo local translation. These findings describe the dynamic interaction between ER and ribosomes during local translation and identify a novel potential function for the presynaptic ER in intra-axonal synthesis of transmembrane proteins such as the α-1β subunit of N-type Ca2+ channels in motoneurons. In addition, we demonstrate that in Smn-deficient motoneurons, ER dynamic movements are impaired in axonal growth cones that seems to be due to impaired actin cytoskeleton. Interestingly, ribosomes fail to undergo rapid structural changes in Smn-deficient growth cones and do not associate to ER in response to BDNF. Thus, aberrant ER dynamics and ribosome response to extracellular stimuli could affect axonal growth and presynaptic function and maintenance, thereby contributing to the pathology of SMA. N2 - Das Endoplasmatische Retikulum (ER) bildet ein dynamisches und kontinuierliches Netzwerk in Axonen von stark polarisierten Neuronen und spielt dabei eine wichtige Rolle in der Lipidsynthese, dem Ca2+ Homöostase und der Aufrechterhaltung von Synapsen. Allerding sind die Mechanismen, die der Regulierung der axonalen ER-Dynamik und seiner Funktion bei der dynamischen Regulierung der lokalen Translation zugrunde liegen, nicht vollständig aufgeklärt. Im Rahmen meiner Dissertation habe ich die schnellen dynamischen Bewegungen des ERs und Ribosomen in Wachstumskegeln von Wildtyp- und Smn-defizienten Motoneuronen als Reaktion auf einen kurzen Puls von Brain-derived neurotrophic factor (BDNF) untersucht. Daten der Bildgebung lebender Zellen zeigen, dass sich das ER in axonalen Filopodien des Wachstumskegels entlang von Aktin-Filamenten ausbreitet. Die Beeinträchtigung des Aktin-Zytoskeletts mittels Cytochalasin D Behandlung führt zu einer Einschränkung der dynamischen Bewegung des ERs in den axonalen Filopodien. Im Gegensatz zu den Filopodien scheinen die Bewegungen des ERs in Wachstumskegeln von einem koordinierten Zusammenspiel des Aktin- und Mikrotubuli- Zytoskeletts zu beruhen. Myosin VI ist insbesondere für die ER-Bewegungen in Filopodien erforderlich, während Drebrin A die Aktin/Mikrotubuli koordinierte ER-Dynamik vermittelt. Darüber hinaus zeigte sich, dass das BDNF/TrkB Signal die Bildung von 80S-Ribosomen in Wachstumskegeln in Sekundenschnelle auslöst. Aktivierte Ribosomen verlagern sich in das präsynaptische ER und vollziehen eine lokale Translation. Diese Ergebnisse beschreiben die dynamische Interaktion zwischen ER und Ribosomen während der lokalen Translation und zeigen eine neuartige potentielle Funktion des präsynaptischen ER bei der intra-axonalen Synthese von Transmembranproteinen wie die α-1β Untereinheit der N-Typ Ca2+ Kanäle in Motoneuronen auf. Darüber hinaus zeigen wir, dass in Smn-defizienten Motoneuronen die dynamischen ER-Bewegungen in axonalen Wachstumskegeln beeinträchtigt sind, was mit einer gestörten Polymerisation von Aktinfilamenten zusammenzuhängen scheint. Interessanterweise erfahren Ribosomen in Smn-defizienten Wachstumskegeln keine schnellen strukturellen Veränderungen und assoziieren nicht mit dem ER als Reaktion auf BDNF. Somit könnten eine abweichende ER-Dynamik und die Reaktion der Ribosomen auf extrazelluläre Reize das axonale Wachstum und die präsynaptische Funktion und Aufrechterhaltung beeinträchtigen und damit zur Pathologie von SMA beitragen. KW - Motoneuron KW - Endoplasmatisches Retikulum KW - Ribosom KW - Brain-derived neurotrophic factor KW - Spinale Muskelatrophie KW - ER dynamics in axon terminals KW - Dynamics of ribosome assembly KW - BDNF stimulation KW - Spinal Muscular Atrophy Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-264954 ER - TY - THES A1 - Hugo, Julian T1 - ‘Signal-close-to-noise’ calcium activity reflects neuronal excitability T1 - ‘Signal-close-to-noise’ Kalziumaktivität als Ausdruck neuronaler Erregbarkeit N2 - Chronic pain conditions are a major reason for the utilization of the health care system. Inflammatory pain states can persist facilitated by peripheral sensitization of nociceptors. The voltage-gated sodium channel 1.9 (NaV1.9) is an important regulator of neuronal excitability and is involved in inflammation-induced pain hypersensitivity. Recently, oxidized 1-palmitoyl-2-arachidonoyl-sn-glycerol-3-phosphatidylcholine (OxPAPC) was identified as a mediator of acute inflammatory pain and persistent hyperalgesia, suggesting an involvement in proalgesic cascades and peripheral sensitization. Peripheral sensitization implies an increase in neuronal excitability. This thesis aims to characterize spontaneous calcium activity in neuronal compartments as a proxy to investigate neuronal excitability, making use of the computational tool Neural Activity Cubic (NA3). NA3 allows automated calcium activity event detection of signal-close-to-noise calcium activity and evaluation of neuronal activity states. Additionally, the influence of OxPAPC and NaV1.9 on the excitability of murine dorsal root ganglion (DRG) neurons and the effect of OxPAPC on the response of DRG neurons towards other inflammatory mediators (prostaglandin E2, histamine, and bradykinin) is investigated. Using calcium imaging, the presence of spontaneous calcium activity in murine DRG neurons was established. NA3 was used to quantify this spontaneous calcium activity, which revealed decreased activity counts in axons and somata of NaV1.9 knockout (KO) neurons compared to wildtype (WT). Incubation of WT DRG neurons with OxPAPC before calcium imaging did not show altered activity counts compared to controls. OxPAPC incubation also did not modify the response of DRG neurons treated with inflammatory mediators. However, the variance ratio computed by NA3 conclusively allowed to determine neuronal activity states. In conclusion, my findings indicate an important function of NaV1.9 in determining the neuronal excitability of DRG neurons in resting states. OxPAPC exposition does not influence neuronal excitability nor sensitizes neurons for other inflammatory mediators. This evidence reduces the primary mechanism of OxPAPC-induced hyperalgesia to acute effects. Importantly, it was possible to establish an approach for unbiased excitability quantification of DRG neurons by calcium activity event detection and calcium trace variance analysis by NA3. It was possible to show that signal-close-to-noise calcium activity reflects neuronal excitability states. N2 - Entzündliche Schmerzzustände können lange fortbestehen, was durch eine periphere Sensibilisierung von Nozizeptoren begünstigt wird. Der spannungsgesteuerte Natriumkanal 1.9 (NaV1.9) ist ein wichtiger Regulator neuronaler Erregbarkeit und ist nachweislich an entzündungsbedingter Schmerzüberempfindlichkeit beteiligt. Kürzlich wurde oxidiertes 1-Palmitoyl-2-arachidonoyl-sn-glycerol-3-phosphatidylcholin (OxPAPC) als Mediator akuter Entzündungsschmerzen und anhaltender Hyperalgesie identifiziert, was auf eine Beteiligung an Mechanismen der peripheren Sensibilisierung hindeutet. Periphere Sensibilisierung setzt eine Erhöhung der neuronalen Erregbarkeit voraus. In dieser Arbeit soll neuronale spontane Kalziumaktivität charakterisiert werden, um Rückschlüsse auf die neuronale Erregbarkeit zu ziehen. Dazu wurde das Tool Neural Activity Cubic (NA3) eingesetzt, welches die automatisierte Detektion von „signal-close-to-noise“ Kalziumaktivitätsereignissen und die Bewertung neuronaler Aktivitätszustände erlaubt. Mittels NA3 wurde der Einfluss von OxPAPC und NaV1.9 auf die Erregbarkeit von murinen Spinalganglion (DRG)-Neuronen untersucht. Zusätzlich wurde die Reaktion von DRG-Neuronen auf weitere Entzündungsmediatoren (Prostaglandin E2, Histamin und Bradykinin) nach Inkubation mit OxPAPC beurteilt. Mittels Calcium-Imaging konnte spontane Kalziumaktivität in murinen DRG-Neuronen identifiziert werden. NA3 wurde verwendet, um diese spontane Kalziumaktivität zu quantifizieren. NaV1.9 Knockout-Neuronen (KO) zeigten signifikant Verringerte Kalziumaktivität im Vergleich Wildtyp (WT)-Neuronen. Die Inkubation von WT-Neuronen mit OxPAPC vor Calcium-Imaging resultierte in unveränderter Kalziumaktivität. Eine OxPAPC-Inkubation hatte ebenso keinen Einfluss auf die Reaktion von DRG-Neuronen, die mit einem Gemisch aus Entzündungsmediatoren stimuliert wurden. Die von NA3 berechnete „variance ratio“ ermöglichte jedoch eine eindeutige Bestimmung der neuronalen Aktivitätszustände. Zusammenfassend weisen meine Ergebnisse auf eine wichtige Funktion von NaV1.9 bei der Bestimmung der neuronalen Erregbarkeit von DRG-Neuronen im Ruhezustand hin. Eine Exposition mit OxPAPC beeinflusst allerdings weder die neuronale Erregbarkeit noch werden Neuronen für andere Entzündungsmediatoren sensibilisiert. Dies legt akute Effekte als primären Mechanismus der OxPAPC-induzierten Hyperalgesie nahe. Es war möglich, eine Methode für die unverzerrte Quantifizierung neuronaler Erregbarkeit von durch die Erkennung von Kalziumaktivitätsereignissen und die Varianzanalyse von Kalziumsignalen mit NA3 zu etablieren. Es konnte gezeigt werden, dass die „signal-close-to-noise“ Kalziumaktivität den Zustand der neuronalen Erregbarkeit widerspiegelt. KW - Entzündung KW - Schmerz KW - Natriumkanal KW - Erregbarkeit KW - Phospholipide KW - neuronal excitability KW - NaV1.9 KW - inflammatory pain KW - calcium activity Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-292605 ER - TY - JOUR A1 - Tejero, Rocio A1 - Alsakkal, Mohammad A1 - Hennlein, Luisa A1 - Lopez-Cabello, Ana M. A1 - Jablonka, Sibylle A1 - Tabares, Lucia T1 - Nifedipine ameliorates cellular differentiation defects of Smn-deficient motor neurons and enhances neuromuscular transmission in SMA mice JF - International Journal of Molecular Sciences N2 - In spinal muscular atrophy (SMA), mutations in or loss of the Survival Motor Neuron 1 (SMN1) gene reduce full-length SMN protein levels, which leads to the degeneration of a percentage of motor neurons. In mouse models of SMA, the development and maintenance of spinal motor neurons and the neuromuscular junction (NMJ) function are altered. Since nifedipine is known to be neuroprotective and increases neurotransmission in nerve terminals, we investigated its effects on cultured spinal cord motor neurons and motor nerve terminals of control and SMA mice. We found that application of nifedipine increased the frequency of spontaneous Ca\(^{2+}\) transients, growth cone size, cluster-like formations of Cav2.2 channels, and it normalized axon extension in SMA neurons in culture. At the NMJ, nifedipine significantly increased evoked and spontaneous release at low-frequency stimulation in both genotypes. High-strength stimulation revealed that nifedipine increased the size of the readily releasable pool (RRP) of vesicles in control but not SMA mice. These findings provide experimental evidence about the ability of nifedipine to prevent the appearance of developmental defects in SMA embryonic motor neurons in culture and reveal to which extent nifedipine could still increase neurotransmission at the NMJ in SMA mice under different functional demands. KW - spinal muscular atrophy KW - motor neurons KW - synaptic transmission KW - neuromuscular junction KW - calcium channels KW - nifedipine KW - growth cone KW - axons KW - synaptic vesicles KW - postsynaptic potentials Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-313636 SN - 1422-0067 VL - 24 IS - 8 ER - TY - JOUR A1 - Griebel, Matthias A1 - Segebarth, Dennis A1 - Stein, Nikolai A1 - Schukraft, Nina A1 - Tovote, Philip A1 - Blum, Robert A1 - Flath, Christoph M. T1 - Deep learning-enabled segmentation of ambiguous bioimages with deepflash2 JF - Nature Communications N2 - Bioimages frequently exhibit low signal-to-noise ratios due to experimental conditions, specimen characteristics, and imaging trade-offs. Reliable segmentation of such ambiguous images is difficult and laborious. Here we introduce deepflash2, a deep learning-enabled segmentation tool for bioimage analysis. The tool addresses typical challenges that may arise during the training, evaluation, and application of deep learning models on ambiguous data. The tool’s training and evaluation pipeline uses multiple expert annotations and deep model ensembles to achieve accurate results. The application pipeline supports various use-cases for expert annotations and includes a quality assurance mechanism in the form of uncertainty measures. Benchmarked against other tools, deepflash2 offers both high predictive accuracy and efficient computational resource usage. The tool is built upon established deep learning libraries and enables sharing of trained model ensembles with the research community. deepflash2 aims to simplify the integration of deep learning into bioimage analysis projects while improving accuracy and reliability. KW - machine learning KW - microscopy KW - quality control KW - software Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-357286 VL - 14 ER - TY - JOUR A1 - Rodriguez-Rozada, Silvia A1 - Frantz, Stefan A1 - Tovote, Philip T1 - Cardiac optogenetics: regulating brain states via the heart JF - Signal Transduction and Targeted Therapy N2 - No abstract available. KW - cardiology KW - neurology KW - neuroscience KW - systems biology Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-357625 VL - 8 ER - TY - JOUR A1 - Salehi, Saeede A1 - Zare, Abdolhossein A1 - Prezza, Gianluca A1 - Bader, Jakob A1 - Schneider, Cornelius A1 - Fischer, Utz A1 - Meissner, Felix A1 - Mann, Matthias A1 - Briese, Michael A1 - Sendtner, Michael T1 - Cytosolic Ptbp2 modulates axon growth in motoneurons through axonal localization and translation of Hnrnpr JF - Nature Communications N2 - The neuronal RNA-binding protein Ptbp2 regulates neuronal differentiation by modulating alternative splicing programs in the nucleus. Such programs contribute to axonogenesis by adjusting the levels of protein isoforms involved in axon growth and branching. While its functions in alternative splicing have been described in detail, cytosolic roles of Ptbp2 for axon growth have remained elusive. Here, we show that Ptbp2 is located in the cytosol including axons and growth cones of motoneurons, and that depletion of cytosolic Ptbp2 affects axon growth. We identify Ptbp2 as a major interactor of the 3’ UTR of Hnrnpr mRNA encoding the RNA-binding protein hnRNP R. Axonal localization of Hnrnpr mRNA and local synthesis of hnRNP R protein are strongly reduced when Ptbp2 is depleted, leading to defective axon growth. Ptbp2 regulates hnRNP R translation by mediating the association of Hnrnpr with ribosomes in a manner dependent on the translation factor eIF5A2. Our data thus suggest a mechanism whereby cytosolic Ptbp2 modulates axon growth by fine-tuning the mRNA transport and local synthesis of an RNA-binding protein. KW - molecular neuroscience KW - RNA-binding proteins KW - RNA transport Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-357639 VL - 14 ER - TY - JOUR A1 - Massih, Bita A1 - Veh, Alexander A1 - Schenke, Maren A1 - Mungwa, Simon A1 - Seeger, Bettina A1 - Selvaraj, Bhuvaneish T. A1 - Chandran, Siddharthan A1 - Reinhardt, Peter A1 - Sterneckert, Jared A1 - Hermann, Andreas A1 - Sendtner, Michael A1 - Lüningschrör, Patrick T1 - A 3D cell culture system for bioengineering human neuromuscular junctions to model ALS JF - Frontiers in Cell and Developmental Biology N2 - The signals that coordinate and control movement in vertebrates are transmitted from motoneurons (MNs) to their target muscle cells at neuromuscular junctions (NMJs). Human NMJs display unique structural and physiological features, which make them vulnerable to pathological processes. NMJs are an early target in the pathology of motoneuron diseases (MND). Synaptic dysfunction and synapse elimination precede MN loss suggesting that the NMJ is the starting point of the pathophysiological cascade leading to MN death. Therefore, the study of human MNs in health and disease requires cell culture systems that enable the connection to their target muscle cells for NMJ formation. Here, we present a human neuromuscular co-culture system consisting of induced pluripotent stem cell (iPSC)-derived MNs and 3D skeletal muscle tissue derived from myoblasts. We used self-microfabricated silicone dishes combined with Velcro hooks to support the formation of 3D muscle tissue in a defined extracellular matrix, which enhances NMJ function and maturity. Using a combination of immunohistochemistry, calcium imaging, and pharmacological stimulations, we characterized and confirmed the function of the 3D muscle tissue and the 3D neuromuscular co-cultures. Finally, we applied this system as an in vitro model to study the pathophysiology of Amyotrophic Lateral Sclerosis (ALS) and found a decrease in neuromuscular coupling and muscle contraction in co-cultures with MNs harboring ALS-linked SOD1 mutation. In summary, the human 3D neuromuscular cell culture system presented here recapitulates aspects of human physiology in a controlled in vitro setting and is suitable for modeling of MND. KW - NMJ–neuromuscular junction KW - motoneuron (MN) KW - skeletal muscle KW - iPSC (induced pluripotent stem cells) KW - 3D cell culture Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-304161 SN - 2296-634X VL - 11 ER - 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 - JOUR A1 - Andreska, Thomas A1 - Lüningschrör, Patrick A1 - Wolf, Daniel A1 - McFleder, Rhonda L. A1 - Ayon-Olivas, Maurilyn A1 - Rattka, Marta A1 - Drechsler, Christine A1 - Perschin, Veronika A1 - Blum, Robert A1 - Aufmkolk, Sarah A1 - Granado, Noelia A1 - Moratalla, Rosario A1 - Sauer, Markus A1 - Monoranu, Camelia A1 - Volkmann, Jens A1 - Ip, Chi Wang A1 - Stigloher, Christian A1 - Sendtner, Michael T1 - DRD1 signaling modulates TrkB turnover and BDNF sensitivity in direct pathway striatal medium spiny neurons JF - Cell Reports N2 - Highlights • Dopamine receptor-1 activation induces TrkB cell-surface expression in striatal neurons • Dopaminergic deficits cause TrkB accumulation and clustering in the ER • TrkB clusters colocalize with cargo receptor SORCS-2 in direct pathway striatal neurons • Intracellular TrkB clusters fail to fuse with lysosomes after dopamine depletion Summary Disturbed motor control is a hallmark of Parkinson’s disease (PD). Cortico-striatal synapses play a central role in motor learning and adaption, and brain-derived neurotrophic factor (BDNF) from cortico-striatal afferents modulates their plasticity via TrkB in striatal medium spiny projection neurons (SPNs). We studied the role of dopamine in modulating the sensitivity of direct pathway SPNs (dSPNs) to BDNF in cultures of fluorescence-activated cell sorting (FACS)-enriched D1-expressing SPNs and 6-hydroxydopamine (6-OHDA)-treated rats. DRD1 activation causes enhanced TrkB translocation to the cell surface and increased sensitivity for BDNF. In contrast, dopamine depletion in cultured dSPN neurons, 6-OHDA-treated rats, and postmortem brain of patients with PD reduces BDNF responsiveness and causes formation of intracellular TrkB clusters. These clusters associate with sortilin related VPS10 domain containing receptor 2 (SORCS-2) in multivesicular-like structures, which apparently protects them from lysosomal degradation. Thus, impaired TrkB processing might contribute to disturbed motor function in PD. KW - motor learning KW - cortico-striatal synapse KW - basal ganglia KW - direct pathway KW - DRD1 KW - dSPN KW - BDNF KW - TrkB KW - synaptic plasticity KW - GPCR Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-349932 VL - 42 IS - 6 ER - TY - JOUR A1 - Hecker, Katharina A1 - Grüner, Julia A1 - Hartmannsberger, Beate A1 - Appeltshauser, Luise A1 - Villmann, Carmen A1 - Sommer, Claudia A1 - Doppler, Kathrin T1 - Different binding and pathogenic effect of neurofascin and contactin–1 autoantibodies in autoimmune nodopathies JF - Frontiers in Immunology N2 - Introduction IgG4 autoantibodies against paranodal proteins are known to induce acute-onset and often severe sensorimotor autoimmune neuropathies. How autoantibodies reach their antigens at the paranode in spite of the myelin barrier is still unclear. Methods We performed in vitro incubation experiments with patient sera on unfixed and unpermeabilized nerve fibers and in vivo intraneural and intrathecal passive transfer of patient IgG to rats, to explore the access of IgG autoantibodies directed against neurofascin-155 and contactin-1 to the paranodes and their pathogenic effect. Results We found that in vitro incubation resulted in weak paranodal binding of anti-contactin-1 autoantibodies whereas anti-neurofascin-155 autoantibodies bound to the nodes more than to the paranodes. After short-term intraneural injection, no nodal or paranodal binding was detectable when using anti-neurofascin-155 antibodies. After repeated intrathecal injections, nodal more than paranodal binding could be detected in animals treated with anti-neurofascin-155, accompanied by sensorimotor neuropathy. In contrast, no paranodal binding was visible in rats intrathecally injected with anti-contactin-1 antibodies, and animals remained unaffected. Conclusion These data support the notion of different pathogenic mechanisms of anti-neurofascin-155 and anti-contactin-1 autoantibodies and different accessibility of paranodal and nodal structures. KW - autoimmune nodopathy KW - IgG4 KW - neurofascin KW - contactin KW - node of ranvier KW - inflammatory neuropathy KW - passive transfer Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-320395 VL - 14 ER - TY - JOUR A1 - da Silva, Gabriela Neubert A1 - Seiffert, Nina A1 - Tovote, Philip T1 - Cerebellar contribution to the regulation of defensive states JF - Frontiers in Systems Neuroscience N2 - Despite fine tuning voluntary movement as the most prominently studied function of the cerebellum, early human studies suggested cerebellar involvement emotion regulation. Since, the cerebellum has been associated with various mood and anxiety-related conditions. Research in animals provided evidence for cerebellar contributions to fear memory formation and extinction. Fear and anxiety can broadly be referred to as defensive states triggered by threat and characterized by multimodal adaptations such as behavioral and cardiac responses integrated into an intricately orchestrated defense reaction. This is mediated by an evolutionary conserved, highly interconnected network of defense-related structures with functional connections to the cerebellum. Projections from the deep cerebellar nucleus interpositus to the central amygdala interfere with retention of fear memory. Several studies uncovered tight functional connections between cerebellar deep nuclei and pyramis and the midbrain periaqueductal grey. Specifically, the fastigial nucleus sends direct projections to the ventrolateral PAG to mediate fear-evoked innate and learned freezing behavior. The cerebellum also regulates cardiovascular responses such as blood pressure and heart rate-effects dependent on connections with medullary cardiac regulatory structures. Because of the integrated, multimodal nature of defensive states, their adaptive regulation has to be highly dynamic to enable responding to a moving threatening stimulus. In this, predicting threat occurrence are crucial functions of calculating adequate responses. Based on its role in prediction error generation, its connectivity to limbic regions, and previous results on a role in fear learning, this review presents the cerebellum as a regulator of integrated cardio-behavioral defensive states. KW - cerebellum KW - PAG KW - amygdala KW - prefrontal cortex KW - heart rate KW - fear KW - defensive states KW - prediction error Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-311620 VL - 17 ER - TY - JOUR A1 - Rauschenberger, Vera A1 - Piro, Inken A1 - Kasaragod, Vikram Babu A1 - Hörlin, Verena A1 - Eckes, Anna-Lena A1 - Kluck, Christoph J. A1 - Schindelin, Hermann A1 - Meinck, Hans-Michael A1 - Wickel, Jonathan A1 - Geis, Christian A1 - Tüzün, Erdem A1 - Doppler, Kathrin A1 - Sommer, Claudia A1 - Villmann, Carmen T1 - Glycine receptor autoantibody binding to the extracellular domain is independent from receptor glycosylation JF - Frontiers in Molecular Neuroscience N2 - Glycine receptor (GlyR) autoantibodies are associated with stiff-person syndrome and the life-threatening progressive encephalomyelitis with rigidity and myoclonus in children and adults. Patient histories show variability in symptoms and responses to therapeutic treatments. A better understanding of the autoantibody pathology is required to develop improved therapeutic strategies. So far, the underlying molecular pathomechanisms include enhanced receptor internalization and direct receptor blocking altering GlyR function. A common epitope of autoantibodies against the GlyRα1 has been previously defined to residues 1A-33G at the N-terminus of the mature GlyR extracellular domain. However, if other autoantibody binding sites exist or additional GlyR residues are involved in autoantibody binding is yet unknown. The present study investigates the importance of receptor glycosylation for binding of anti-GlyR autoantibodies. The glycine receptor α1 harbors only one glycosylation site at the amino acid residue asparagine 38 localized in close vicinity to the identified common autoantibody epitope. First, non-glycosylated GlyRs were characterized using protein biochemical approaches as well as electrophysiological recordings and molecular modeling. Molecular modeling of non-glycosylated GlyRα1 did not show major structural alterations. Moreover, non-glycosylation of the GlyRα1N38Q did not prevent the receptor from surface expression. At the functional level, the non-glycosylated GlyR demonstrated reduced glycine potency, but patient GlyR autoantibodies still bound to the surface-expressed non-glycosylated receptor protein in living cells. Efficient adsorption of GlyR autoantibodies from patient samples was possible by binding to native glycosylated and non-glycosylated GlyRα1 expressed in living not fixed transfected HEK293 cells. Binding of patient-derived GlyR autoantibodies to the non-glycosylated GlyRα1 offered the possibility to use purified non-glycosylated GlyR extracellular domain constructs coated on ELISA plates and use them as a fast screening readout for the presence of GlyR autoantibodies in patient serum samples. Following successful adsorption of patient autoantibodies by GlyR ECDs, binding to primary motoneurons and transfected cells was absent. Our results indicate that the glycine receptor autoantibody binding is independent of the receptor’s glycosylation state. Purified non-glycosylated receptor domains harbouring the autoantibody epitope thus provide, an additional reliable experimental tool besides binding to native receptors in cell-based assays for detection of autoantibody presence in patient sera. KW - glycine receptor KW - autoantibodies KW - glycosylation KW - extracellular domain KW - adsorption Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-304206 VL - 16 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 - Deng, Chunchu A1 - Reinhard, Sebastian A1 - Hennlein, Luisa A1 - Eilts, Janna A1 - Sachs, Stefan A1 - Doose, Sören A1 - Jablonka, Sibylle A1 - Sauer, Markus A1 - Moradi, Mehri A1 - Sendtner, Michael T1 - Impaired dynamic interaction of axonal endoplasmic reticulum and ribosomes contributes to defective stimulus-response in spinal muscular atrophy JF - Translational Neurodegeneration N2 - Background: Axonal degeneration and defects in neuromuscular neurotransmission represent a pathological hallmark in spinal muscular atrophy (SMA) and other forms of motoneuron disease. These pathological changes do not only base on altered axonal and presynaptic architecture, but also on alterations in dynamic movements of organelles and subcellular structures that are not necessarily reflected by static histopathological changes. The dynamic interplay between the axonal endoplasmic reticulum (ER) and ribosomes is essential for stimulus-induced local translation in motor axons and presynaptic terminals. However, it remains enigmatic whether the ER and ribosome crosstalk is impaired in the presynaptic compartment of motoneurons with Smn (survival of motor neuron) deficiency that could contribute to axonopathy and presynaptic dysfunction in SMA. Methods: Using super-resolution microscopy, proximity ligation assay (PLA) and live imaging of cultured motoneurons from a mouse model of SMA, we investigated the dynamics of the axonal ER and ribosome distribution and activation. Results: We observed that the dynamic remodeling of ER was impaired in axon terminals of Smn-deficient motoneurons. In addition, in axon terminals of Smn-deficient motoneurons, ribosomes failed to respond to the brain-derived neurotrophic factor stimulation, and did not undergo rapid association with the axonal ER in response to extracellular stimuli. Conclusions: These findings implicate impaired dynamic interplay between the ribosomes and ER in axon terminals of motoneurons as a contributor to the pathophysiology of SMA and possibly also other motoneuron diseases. KW - spinal muscular atrophy KW - BDNF stimulation KW - dynamics of ribosomal assembly KW - presynaptic ER dynamics Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-300649 SN - 2047-9158 VL - 11 IS - 1 ER - TY - JOUR A1 - Janzen, Dieter A1 - Bakirci, Ezgi A1 - Faber, Jessica A1 - Andrade Mier, Mateo A1 - Hauptstein, Julia A1 - Pal, Arindam A1 - Forster, Leonard A1 - Hazur, Jonas A1 - Boccaccini, Aldo R. A1 - Detsch, Rainer A1 - Teßmar, Jörg A1 - Budday, Silvia A1 - Blunk, Torsten A1 - Dalton, Paul D. A1 - Villmann, Carmen T1 - Reinforced Hyaluronic Acid-Based Matrices Promote 3D Neuronal Network Formation JF - Advanced Healthcare Materials N2 - 3D neuronal cultures attempt to better replicate the in vivo environment to study neurological/neurodegenerative diseases compared to 2D models. A challenge to establish 3D neuron culture models is the low elastic modulus (30–500 Pa) of the native brain. Here, an ultra-soft matrix based on thiolated hyaluronic acid (HA-SH) reinforced with a microfiber frame is formulated and used. Hyaluronic acid represents an essential component of the brain extracellular matrix (ECM). Box-shaped frames with a microfiber spacing of 200 µm composed of 10-layers of poly(ɛ-caprolactone) (PCL) microfibers (9.7 ± 0.2 µm) made via melt electrowriting (MEW) are used to reinforce the HA-SH matrix which has an elastic modulus of 95 Pa. The neuronal viability is low in pure HA-SH matrix, however, when astrocytes are pre-seeded below this reinforced construct, they significantly support neuronal survival, network formation quantified by neurite length, and neuronal firing shown by Ca\(^{2+}\) imaging. The astrocyte-seeded HA-SH matrix is able to match the neuronal viability to the level of Matrigel, a gold standard matrix for neuronal culture for over two decades. Thus, this 3D MEW frame reinforced HA-SH composite with neurons and astrocytes constitutes a reliable and reproducible system to further study brain diseases. KW - 3D model systems KW - melt electrowriting KW - cortical neurons KW - astrocytes KW - Ca\(^{2+}\)-Imaging KW - hyaluronic acid Y1 - 2022 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-318682 VL - 11 IS - 21 ER -