TY - JOUR A1 - Schmitt, Dominique A1 - Funk, Natalia A1 - Blum, Robert A1 - Asan, Esther A1 - Andersen, Lill A1 - Rülicke, Thomas A1 - Sendtner, Michael A1 - Buchner, Erich T1 - Initial characterization of a Syap1 knock-out mouse and distribution of Syap1 in mouse brain and cultured motoneurons JF - Histochemistry and Cell Biology N2 - Synapse-associated protein 1 (Syap1/BSTA) is the mammalian homologue of Sap47 (synapse-associated protein of 47 kDa) in Drosophila. Sap47 null mutant larvae show reduced short-term synaptic plasticity and a defect in associative behavioral plasticity. In cultured adipocytes, Syap1 functions as part of a complex that phosphorylates protein kinase B alpha/Akt1 (Akt1) at Ser\(^{473}\) and promotes differentiation. The role of Syap1 in the vertebrate nervous system is unknown. Here, we generated a Syap1 knock-out mouse and show that lack of Syap1 is compatible with viability and fertility. Adult knock-out mice show no overt defects in brain morphology. In wild-type brain, Syap1 is found widely distributed in synaptic neuropil, notably in regions rich in glutamatergic synapses, but also in perinuclear structures associated with the Golgi apparatus of specific groups of neuronal cell bodies. In cultured motoneurons, Syap1 is located in axons and growth cones and is enriched in a perinuclear region partially overlapping with Golgi markers. We studied in detail the influence of Syap1 knockdown and knockout on structure and development of these cells. Importantly, Syap1 knockout does not affect motoneuron survival or axon growth. Unexpectedly, neither knockdown nor knockout of Syap1 in cultured motoneurons is associated with reduced Ser\(^{473}\) or Thr\(^{308}\) phosphorylation of Akt. Our findings demonstrate a widespread expression of Syap1 in the mouse central nervous system with regionally specific distribution patterns as illustrated in particular for olfactory bulb, hippocampus, and cerebellum. KW - Protein kinase B KW - Spinal Muscular-arthropy KW - Rictor-mTOR complex KW - Neurotrophic factors KW - Plasma-membrane KW - Axon growth KW - SAP47 gene KW - Phosphorylation KW - Drosophilia KW - Cells KW - BSTA KW - Viability KW - Brain KW - Syap1 localization KW - Glutamatergic synapses KW - PKB/Akt phosphorylation Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-187258 VL - 146 IS - 4 ER - TY - THES A1 - Schmitt, Dominique T1 - Initial characterization of mouse Syap1 in the nervous system: Search for interaction partners, effects of gene knockdown and knockout, and tissue distribution with focus on the adult brain T1 - Erste Charakterisierung des Maus-Syap1 im Nervensystem: Suche nach Interaktionspartnern, Auswirkungen von Gen-Knockdown und-Knockout sowie Untersuchungen über die Verteilung im Gewebe mit Fokus auf das adulte Gehirn N2 - The synapse-associated protein of 47 kDa (Sap47) in Drosophila melanogaster is the founding member of a phylogenetically conserved protein family of hitherto unknown molecular function. Sap47 is localized throughout the entire neuropil of adult and larval brains and closely associated with glutamatergic presynaptic vesicles of larval motoneurons. Flies lacking the protein are viable and fertile and do not exhibit gross structural or marked behavioral deficiencies indicating that Sap47 is dispensable for basic synaptic function, or that its function is compensated by other related proteins. Syap1 - the mammalian homologue of Sap47 - was reported to play an essential role in Akt1 phosphorylation in various non-neuronal cells by promoting the association of mTORC2 with Akt1 which is critical for the downstream signaling cascade for adipogenesis. The function of Syap1 in the vertebrate nervous system, however, is unknown so far. The present study provides a first description of the subcellular localization of mouse Syap1 in cultured motoneurons as well as in selected structures of the adult mouse nervous system and reports initial functional experiments. Preceding all descriptive experiments, commercially available Syap1 antibodies were tested for their specificity and suitability for this study. One antibody raised against the human protein was found to recognize specifically both the human and murine Syap1 protein, providing an indispensable tool for biochemical, immunocytochemical and immunohistochemical studies. In the course of this work, a Syap1 knockout mouse was established and investigated. These mice are viable and fertile and do not show obvious changes in morphology or phenotype. As observed for Sap47 in flies, Syap1 is widely distributed in the synaptic neuropil, particularly in regions rich in glutamatergic synapses but it was also detected at perinuclear Golgi-associated sites in certain groups of neuronal somata. In motoneurons the protein is especially observed in similar perinuclear structures, partially overlapping with Golgi markers and in axons, dendrites and axonal growth cones. Biochemical and immunohistochemical analyses showed widespread Syap1 expression in the central nervous system with regionally distinct distribution patterns in cerebellum, hippocampus or olfactory bulb. Besides its expression in neurons, Syap1 is also detected in non-neuronal tissue e.g. liver, kidney and muscle tissue. In contrast, non-neuronal cells in the brain lack the typical perinuclear accumulation. First functional studies with cultured primary motoneurons on developmental, structural and functional aspects reveal no influence of Syap1 depletion on survival and morphological features such as axon length or dendritic length. Contrary to expectations, in neuronal tissues or cultured motoneurons a reduction of Akt phosphorylation at Ser473 or Thr308 was not detected after Syap1 knockdown or knockout. N2 - Das Synapsen-assoziierte Protein von 47 kDa (Sap47) in Drosophila melanogaster ist das Gründungsmitglied einer phylogenetisch konservierten Proteinfamilie von unbekannter molekularer Funktion. Sap47 ist im gesamten Neuropil des adulten und larvalen Gehirns lokalisiert und mit glutamatergen, präsynaptischen Vesikeln in larvalen Motoneuronen assoziiert. Fliegen, denen das Protein fehlt, sind lebensfähig und fruchtbar und weisen keine schwerwiegenden strukturellen oder ausgeprägten verhaltensbezogenen Defizite auf, was darauf hinweist, dass Sap47 für eine basale synaptische Funktion entbehrlich ist beziehungsweise das Fehlen seiner Funktion durch andere, eventuell verwandte Proteine, kompensiert werden kann. Über Syap1 - das Säugetierhomolog von Sap47 - wurde berichtet, dass es in verschiedenen nicht-neuronalen Zellen eine essentielle Rolle in der Akt1 Phosphorylierung spielt, indem es die Assoziation von mTORC2 und Akt1 begünstigt, welche für den nachgeschalteten Signalweg bei der Adipogenese essentiell ist. Die Funktion von Syap1 im Vertebraten-Nervensystem ist dagegen bislang unbekannt. Die vorliegende Studie liefert die Erstbeschreibung von neuronalem Syap1 über die subzelluläre Lokalisation des Proteins in kultivierten Motoneuronen sowie die Verteilung in ausgewählten Strukturen des adulten Nervensystems der Maus und beschreibt initiale funktionelle Experimente. Allen beschreibenden Experimenten voran, wurden kommerziell erhältliche Syap1 Antikörper auf ihre Spezifität und Tauglichkeit für diese Studie getestet. Einer der Antikörper, der gegen das humane Protein hergestellt wurde, erkennt spezifisch sowohl das humane, als auch das murine Syap1 Protein und stellt somit ein unentbehrliches Werkzeug für alle biochemischen, immunzytochemischen und immunhistochemischen Untersuchungen dar. Im Zuge der Arbeit wurde eine Syap1-Knockout Maus untersucht, welche vital und fruchtbar ist und keine offensichtlichen Veränderungen in ihrem morphologischen Phänotyp aufweist. Wie auch Sap47 in Fliegen, ist Syap1 im synaptischen Neuropil weit verbreitet, insbesondere in Regionen, die reich an glutamatergen Synapsen sind, aber es wurde auch in einer deutlichen, Golgi-assoziierten Akkumulation in bestimmten Gruppen neuronaler Zellkörper beobachtet. In Motoneuronen wurde das Protein besonders in ähnlichen perinukleären Strukturen detektiert, welche zum Teil mit Golgi Markern überlappen und zudem in Axonen, Dendriten und Wachstumskegeln detektiert. Wie biochemische und immunhistochemische Untersuchungen ergaben, zeigt das Syap1 Protein eine weit verbreitete Expression im zentralen Nervensystem mit Regionen-spezifischem Verteilungsmuster wie es beispielsweise im Kleinhirn, dem Hippocampus oder dem olfaktorischen Bulbus beobachtet wurde. Neben der Expression in Neuronen wurde Syap1 auch in nicht neuronalen Geweben wie der Leber, Niere und im Muskel detektiert. Nicht-neuronalen Zellen im Gehirn fehlte dagegen die typische perinukleäre Akkumulation in immunhistochemischen Färbungen. Erste funktionelle Studien mit kultivierten primären Motoneuronen über entwicklungsbezogene, strukturelle und funktionelle Gesichtspunkte ergaben keinen Einfluss einer Syap1 Depletion auf das Überleben oder morphologische Merkmale wie Axon- oder Dendritenlänge. Entgegen den Erwartungen, wurde nach Syap1 Knockdown oder Knockout in neuronalem Gewebe oder kultivierten Motoneuronen keine Reduktion in der Akt1 Phosphorylierung an Ser473 oder Thr308 detektiert. KW - Synapse KW - Nervensystem KW - Motoneuron KW - Golgi-Apparat KW - Syap1 KW - Sap47 KW - Synapse-associated protein KW - Golgi apparatus KW - Synapsen assoziiert Y1 - 2017 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-147319 ER - TY - JOUR A1 - von Collenberg, Cora R. A1 - Schmitt, Dominique A1 - Rülicke, Thomas A1 - Sendtner, Michael A1 - Blum, Robert A1 - Buchner, Erich T1 - An essential role of the mouse synapse-associated protein Syap1 in circuits for spontaneous motor activity and rotarod balance JF - Biology Open N2 - Synapse-associated protein 1 (Syap1) is the mammalian homologue of synapse-associated protein of 47 kDa (Sap47) in Drosophila. Genetic deletion of Sap47 leads to deficiencies in short-term plasticity and associative memory processing in flies. In mice, Syap1 is prominently expressed in the nervous system, but its function is still unclear. We have generated Syap1 knockout mice and tested motor behaviour and memory. These mice are viable and fertile but display distinct deficiencies in motor behaviour. Locomotor activity specifically appears to be reduced in early phases when voluntary movement is initiated. On the rotarod, a more demanding motor test involving control by sensory feedback, Syap1-deficient mice dramatically fail to adapt to accelerated speed or to a change in rotation direction. Syap1 is highly expressed in cerebellar Purkinje cells and cerebellar nuclei. Thus, this distinct motor phenotype could be due to a so-far unknown function of Syap1 in cerebellar sensorimotor control. The observed motor defects are highly specific since other tests in the modified SHIRPA exam, as well as cognitive tasks like novel object recognition, Pavlovian fear conditioning, anxiety-like behaviour in open field dark-light transition and elevated plus maze do not appear to be affected in Syap1 knockout mice. KW - Syap1 knockout KW - Motor behaviour KW - Associative learning KW - Fear conditioning KW - Object recognition Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-201986 N1 - PDF includes: Correction: An essential role of the mouse synapse-associated protein Syap1 in circuits for spontaneous motor activity and rotarod balance - February 15, 2020. Biology Open (2020) 9, bio048942. doi:10.1242/bio.048942 VL - 8 ER -