TY - JOUR A1 - Pfeiffer, Verena A1 - Götz, Rudolf A1 - Xiang, Chaomei A1 - Camarero, Guadelupe A1 - Braun, Attila A1 - Zhang, Yina A1 - Blum, Robert A1 - Heinsen, Helmut A1 - Nieswandt, Bernhard A1 - Rapp, Ulf R. T1 - Ablation of BRaf Impairs Neuronal Differentiation in the Postnatal Hippocampus and Cerebellum JF - PLoS ONE N2 - This study focuses on the role of the kinase BRaf in postnatal brain development. Mice expressing truncated, non-functional BRaf in neural stem cell-derived brain tissue demonstrate alterations in the cerebellum, with decreased sizes and fuzzy borders of the glomeruli in the granule cell layer. In addition we observed reduced numbers and misplaced ectopic Purkinje cells that showed an altered structure of their dendritic arborizations in the hippocampus, while the overall cornus ammonis architecture appeared to be unchanged. In male mice lacking BRaf in the hippocampus the size of the granule cell layer was normal at postnatal day 12 (P12) but diminished at P21, as compared to control littermates. This defect was caused by a reduced ability of dentate gyrus progenitor cells to differentiate into NeuN positive granule cell neurons. In vitro cell culture of P0/P1 hippocampal cells revealed that BRaf deficient cells were impaired in their ability to form microtubule-associated protein 2 positive neurons. Together with the alterations in behaviour, such as autoaggression and loss of balance fitness, these observations indicate that in the absence of BRaf all neuronal cellular structures develop, but neuronal circuits in the cerebellum and hippocampus are partially disturbed besides impaired neuronal generation in both structures. KW - granule cells KW - hippocampus KW - neurons KW - neuronal dendrites KW - embryos KW - dentate gyrus KW - neuronal differentiation KW - cerebellum Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-130304 VL - 8 IS - 3 ER - TY - THES A1 - Pleiser, Sandra T1 - Mouse genetic analyses of Spir functions T1 - Maus-genetische Analysen zur Funktion von Spir N2 - Das Aktin-Zytoskelett ist für viele zelluläre Funktionen unerlässlich, dazu gehören der strukturelle Aufbau von Zellen, die Zellwanderung und Vesikeltransportprozesse. Die funktionelle Vielfalt der Aktinstrukturen spiegelt sich in einer Vielzahl verschiedener molekularer Mechanismen wieder, welche die Polymerisierung von Aktinfilamenten regulieren. Die sponante Aktinpolymerisierung wird jedoch verhindert aufgrund der Instabilität von kleinen Aktin Oligomeren und durch Aktin Monomer bindende Proteine, welche die Bildung solcher Oligomere unterbinden. Aktinnukleationsfaktoren helfen diese kinetische Barriere der Filamentbildung zu überwinden und sind wesentlich für die Erzeugung von neuen Aktinfilamenten an bestimmten subzellulären Kompartimenten. Spir Proteine sind die ersten beschriebenen Mitglieder der neuen Klasse von WH2 Domänen Aktinnukleationsfaktoren. Sie leiten die Polymerisierung von Aktin ein, indem sie Aktinmonomere an die vier WH2 Domänen im Zentrum des Proteins binden. Trotz ihrer Eigenschaft Aktinpolymerisation in vitro selber zu nukleieren, bilden Spir Proteine einen regulatorischen Komplex mit anderen Aktinnukleatoren der formin Untergruppe von forminen. Spir hat eine Funktion bei der Regulierung von vesikulär erzeugten filamentösen Aktinstrukturen, Vesikeltransportprozessen und der Bildung der Teilungsfurche während der asymmetrischen meiotischen Zellteilung. Das Säugetiergenom kodiert zwei spir Gene, spir-1 und spir-2. Die entsprechenden Proteine haben einen identischen strukturellen Aufbau und sind zu einem großen Teil homolog zueinander. Um die Spir Funktion im sich entwickelnden und adulten Nervensystem zu untersuchen, wurde die bisher unbekannte Expression des Maus spir-2 Gens analysiert. Real-time PCR Analysen haben ergeben, dass spir-2 in adulten Mäusen in Oozyten, dem Gehirn, im Gastrointestinaltrakt, den Hoden und der Niere exprimiert wird. In situ Hybridisierungen wurden durchgeführt um die zelluläre Natur der spir Expression nachzuweisen. Während der Embryogenese haben in situ Hybridisierungen gezeigt, dass spir-2 im sich entwickelnden Nervensytem und Darmtrakt exprimiert wird. In adulten Mausgeweben, wurde die höchste Expression von spir-2 in Epithelzellen des Verdauungstraktes, in neuronalen Zellen des Nervensystems und in Spermatocyten gefunden. Im Gegensatz zur eher begrenzten Expression des Maus spir-1 Gens, welches überwiegend im Nervensystem, den Oozyten und Hoden zu finden ist, zeigen die hier aufgeführten Daten ein breiteres Expressionsmuster des spir-2 Gens und unterstützen damit eine allgemeinere zellbiologische Funktion der neuen Aktinnukleatoren. Um die Funktion des Spir Proteins im sich entwickelnden und adulten Nervensystem zu untersuchen, wurden Spir-1 defiziente Mäuse mit Hilfe der gene trap Methode generiert. Spir-1 defiziente Mäuse sind lebensfähig und eignen sich daher perfekt um die Neurobiologie des Spir-1 Aktinnukleators zu untersuchen. Die Analyse von primären kortikalen Neuronen von Spir-1 defizienten Mäusen zeigte eine Reduktion dendritischer Verzweigungen und ist die erste Beschreibung einer neuronalen Funktion von Spir-1. Desweiteren wurde eine transgene Mauslinie (thy1-GFP-M) eingesetzt, die das grüne Fluoreszenzprotein (GFP) unter der Kontrolle von Neuronen-spezifischen Elementen des thy1 Promoters exprimiert. GFP ist dabei nur in einer Teilmenge von Neuronen exprimiert, färbt diese Neuronen jedoch in ihrer Gesamtheit an. Spir-1 defiziente Mäuse, die das GFP Transgen exprimieren wurden generiert und analysiert. Es wurde herausgefunden, dass Spir-1 defiziente Mäuse eine reduzierte Anzahl an dendritischen Dornen im entorhinalen Kortex im Vergleich zu Wildtyp- Geschwistertieren aufweisen. Zusammengefasst gibt diese Studie neue Erkenntnisse über die zellbiologische Funktion von Spir und liefert Einsichten wie das neuronale Netzwerk sturkturiert wird. N2 - The actin cytoskeleton is essential for many cellular functions, such as the regulation of cell morphology, cell migration and vesicle transport processes. The functional diversity of actin structures is reflected in a variety of distinct molecular mechanisms regulating the polymerization of actin filaments. The spontaneous polymerization of actin however is inhibited, by both the instability of small actin oligomers and by actin monomer binding proteins, which prevent the formation of such oligomers. Actin nucleation factors help to overcome this kinetic barrier of filament initiation and are essential for the generation of novel actin filaments at specified subcellular compartments. Spir proteins are the founding members of the novel class of WH2 domain containing actin nucleation factors. They initiate actin polymerization by binding of actin monomers to four WH2 domains in the central part of the protein. Despite their ability to nucleate actin polymerization in vitro by themselves, Spir proteins form a regulatory complex with the distinct actin nucleators of the formin subgroup of formins. Spir functions in the regulation of vesicular originated filamentous actin structures, vesicle transport processes and the assembly of the cleavage furrow during asymmetric meiotic cell divisions. The mammalian genome encodes two spir genes, spir-1 and spir-2. The corresponding proteins have an identical structural array and share a high degree of homology. In order to elucidate the Spir function in developing and adult mouse tissues, the yet unknown expression of the mouse spir-2 gene was addressed. Real-time PCR analysis revealed highest expression of spir-2 in oocytes, the brain, throughout the gastrointestinal tract, testis and kidney of adult mice. In situ hybridizations were performed to substantiate the cellular nature of spir gene expression. During embryogenesis in situ hybridizations show spir-2 to be expressed in the developing nervous system and intestine. In adult mouse tissues highest expression of spir-2 was detected in the epithelial cells of the digestive tract, in neuronal cells of the nervous system and in spermatocytes. In contrast to the more restricted expression of the mouse spir-1 gene, which is mainly found in the nervous system, oocytes and testis, the data presented here show a distinct and broader expression pattern of the spir-2 gene and by this support a more general cell biological function of the novel actin nucleators. In order to address the function of Spir proteins in the developing and adult nervous system, Spir-1 deficient mice were generated by a gene trap method. Spir-1 deficient mice are viable and provide a perfect tool to address the neurobiological function of the Spir-1 protein. Analyses of primary cortical neurons from Spir-1 deficient mice revealed a specific reduction of dendritic branchpoints and are the first description of a neuronal Spir-1 function. Further, a transgenic mouse line (thy1-GFP-M) was employed that expresses the green fluorescent protein (GFP) under the control of neuron specific elements from the thy1 promoter. GFP is thereby expressed in only a subset of neurons and labels the neurons in their entirety. Spir-1 deficient mice carrying the GFP transgene were generated and analyzed. It was found that Spir-1 deficient mice exhibit a reduced number of dendritic spines in the entorhinal cortex compared to wildtype littermates. All together this study gives novel information about the cell biological function of Spir and provides insights how cytoskeletal functions structure the mammalian neuronal network. KW - Actin-bindende Proteine KW - Knockout KW - Spir KW - Aktinnukleation KW - neuronale Differenzierung KW - Spir KW - Actin nucleation KW - knock-out mouse KW - neuronal differentiation Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-73634 N1 - Die Dissertation wurde an der Uni Regensburg geschrieben (externe Promotion) ER - TY - JOUR A1 - Stengel, Felix A1 - Vulinovic, Franca A1 - Meier, Britta A1 - Grütz, Karen A1 - Klein, Christine A1 - Capetian, Philipp T1 - Impaired differentiation of human induced neural stem cells by TOR1A overexpression JF - Molecular Biology Reports N2 - DYT-TOR1A is the most common inherited dystonia caused by a three nucleotide (GAG) deletion (dE) in the TOR1A gene. Death early after birth and cortical anomalies of the full knockout in rodents underscore its developmental importance. We therefore explored the timed effects of TOR1A-wt and TOR1A-dE during differentiation in a human neural in vitro model. We used lentiviral tet-ON expression of TOR1A-wt and -dE in induced neural stem cells derived from healthy donors. Overexpression was induced during proliferation of neural precursors, during differentiation and after differentiation into mature neurons. Overexpression of both wildtype and mutated protein had no effect on the viability and cell number of neural precursors as well as mature neurons when initiated before or after differentiation. However, if induced during differentiation, overexpression of TOR1A-wt and -dE led to a pronounced reduction of mature neurons in a dose dependent manner. Our data underscores the importance of physiological expression levels of TOR1A as crucial for proper neuronal differentiation. We did not find evidence for a specific impact of the mutated TOR1A on neuronal maturation. KW - dystonia KW - DYT1 KW - torsinA KW - TOR1A KW - neuronal stem cells KW - neuronal differentiation KW - inducible expression Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-241177 UR - https://doi.org/10.1007/s11033-020-05390-x VL - 47 ER - TY - JOUR A1 - Weiss, B. A1 - Haas, S. A1 - Lessner, G. A1 - Mikkat, S. A1 - Kreutzer, M. A1 - Glocker, M. O. A1 - Wree, A. A1 - Schmitt, O. T1 - The Proteome of the Differentiating Mesencephalic Progenitor Cell Line CSM14.1 In Vitro JF - BioMed Research International N2 - The treatment of Parkinson's disease by transplantation of dopaminergic (DA) neurons from human embryonic mesencephalic tissue is a promising approach. However, the origin of these cells causes major problems: availability and standardization of the graft. Therefore, the generation of unlimited numbers of DA neurons from various types of stem or progenitor cells has been brought into focus. A source for DA neurons might be conditionally immortalized progenitor cells. The temperature-sensitive immortalized cell line CSM14.1 derived from the mesencephalon of an embryonic rat has been used successfully for transplantation experiments. This cell line was analyzed by unbiased stereology of cell type specific marker proteins and 2D-gel electrophoresis followed by mass spectrometry to characterize the differentially expressed proteome. Undifferentiated CSM14.1 cells only expressed the stem cell marker nestin, whereas differentiated cells expressed GFAP or NeuN and tyrosine hydroxylase. An increase of the latter cells during differentiation could be shown. By using proteomics an explanation on the protein level was found for the observed changes in cell morphology during differentiation, when CSM14.1 cells possessed the morphology of multipolar neurons. The results obtained in this study confirm the suitability of CSM14.1 cells as an in vitro model for the study of neuronal and dopaminergic differentiation in rats. KW - spinal-cord-injury KW - Parkinsons disease KW - annecin-V KW - ERM proteins KW - neuronal differentiation KW - phospholipase A(2) KW - gesolin function KW - binding proteins KW - actin filament Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-117992 SN - 2314-6141 IS - 351821 ER - TY - JOUR A1 - Wille, Michael A1 - Schümann, Antje A1 - Kreutzer, Michael A1 - Glocker, Michael O A1 - Wree, Andreas A1 - Mutzbauer, Grit A1 - Schmitt, Oliver T1 - The proteome profiles of the olfactory bulb of juvenile, adult and aged rats - an ontogenetic study JF - Proteome Science N2 - Background: In this study, we searched for proteins that change their expression in the olfactory bulb (oB) of rats during ontogenesis. Up to now, protein expression differences in the developing animal are not fully understood. Our investigation focused on the question whether specific proteins exist which are only expressed during different development stages. This might lead to a better characterization of the microenvironment and to a better determination of factors and candidates that influence the differentiation of neuronal progenitor cells. Results: After analyzing the samples by two-dimensional polyacrylamide gel electrophoresis (2DE) and matrix-assisted laser desorption/ionization time-of-flight mass spectrometry (MALDI-TOF-MS), it could be shown that the number of expressed proteins differs depending on the developmental stages. Especially members of the functional classes, like proteins of biosynthesis, regulatory proteins and structural proteins, show the highest differential expression in the stages of development analyzed. Conclusion: In this study, quantitative changes in the expression of proteins in the oB at different developmental stages (postnatal days (P) 7, 90 and 637) could be observed. Furthermore, the expression of many proteins was found at specific developmental stages. It was possible to identify these proteins which are involved in processes like support of cell migration and differentiation. KW - axonally transported proteins KW - hippocampal stem cells KW - cerebral cortex KW - regional development KW - development KW - brain KW - olfactory bulb KW - proteomics KW - rat KW - growth-associated protein KW - messenger-RNA transport KW - goldfish optic nerve KW - postnatal development KW - subventricular zone KW - neuronal differentiation Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-144073 VL - 13 IS - 8 ER - TY - JOUR A1 - Wille, Michael A1 - Schümann, Antje A1 - Wree, Andreas A1 - Kreutzer, Michael A1 - Glocker, Michael O. A1 - Mutzbauer, Grit A1 - Schmitt, Oliver T1 - The Proteome Profiles of the Cerebellum of Juvenile, Adult and Aged Rats-An Ontogenetic Study JF - International Journal of Molecular Sciences N2 - In this study, we searched for proteins that change their expression in the cerebellum (Ce) of rats during ontogenesis. This study focuses on the question of whether specific proteins exist which are differentially expressed with regard to postnatal stages of development. A better characterization of the microenvironment and its development may result from these study findings. A differential two-dimensional polyacrylamide gel electrophoresis (2DE) and matrix-assisted laser desorption/ionization time-of-flight mass spectrometry (MALDI-TOF-MS) analysis of the samples revealed that the number of proteins of the functional classes differed depending on the developmental stages. Especially members of the functional classes of biosynthesis, regulatory proteins, chaperones and structural proteins show the highest differential expression within the analyzed stages of development. Therefore, members of these functional protein groups seem to be involved in the development and differentiation of the Ce within the analyzed development stages. In this study, changes in the expression of proteins in the Ce at different postnatal developmental stages (postnatal days (P) 7, 90, and 637) could be observed. At the same time, an identification of proteins which are involved in cell migration and differentiation was possible. Especially proteins involved in processes of the biosynthesis and regulation, the dynamic organization of the cytoskeleton as well as chaperones showed a high amount of differentially expressed proteins between the analyzed dates. KW - messenger RNA KW - brain KW - cerebellum KW - development KW - proteomics KW - rat KW - proteins KW - adenosine kinase KW - coated vesicles KW - phosphatase 2A KW - expression KW - neuronal differentiation KW - human brain KW - hnRNP K KW - postnatal development KW - binding Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-151347 VL - 16 SP - 21454 EP - 21485 ER -