TY - JOUR A1 - Beck, Katherina A1 - Ehmann, Nadine A1 - Andlauer, Till F. M. A1 - Ljaschenko, Dmitrij A1 - Strecker, Katrin A1 - Fischer, Matthias A1 - Kittel, Robert J. A1 - Raabe, Thomas T1 - Loss of the Coffin-Lowry syndrome-associated gene RSK2 alters ERK activity, synaptic function and axonal transport in Drosophila motoneurons JF - Disease Models & Mechanisms N2 - Plastic changes in synaptic properties are considered as fundamental for adaptive behaviors. Extracellular-signal-regulated kinase (ERK)-mediated signaling has been implicated in regulation of synaptic plasticity. Ribosomal S6 kinase 2 (RSK2) acts as a regulator and downstream effector of ERK. In the brain, RSK2 is predominantly expressed in regions required for learning and memory. Loss-of-function mutations in human RSK2 cause Coffin-Lowry syndrome, which is characterized by severe mental retardation and low IQ scores in affected males. Knockout of RSK2 in mice or the RSK ortholog in Drosophila results in a variety of learning and memory defects. However, overall brain structure in these animals is not affected, leaving open the question of the pathophysiological consequences. Using the fly neuromuscular system as a model for excitatory glutamatergic synapses, we show that removal of RSK function causes distinct defects in motoneurons and at the neuromuscular junction. Based on histochemical and electrophysiological analyses, we conclude that RSK is required for normal synaptic morphology and function. Furthermore, loss of RSK function interferes with ERK signaling at different levels. Elevated ERK activity was evident in the somata of motoneurons, whereas decreased ERK activity was observed in axons and the presynapse. In addition, we uncovered a novel function of RSK in anterograde axonal transport. Our results emphasize the importance of fine-tuning ERK activity in neuronal processes underlying higher brain functions. In this context, RSK acts as a modulator of ERK signaling. KW - mrsk2 KO mouse KW - S6KII RSK KW - transmission KW - neuromuscular junction KW - synapse KW - MAPK signaling KW - axonal transport KW - motoneuron KW - RSK KW - Drosophila KW - mechanisms KW - plasticity KW - protein kinase KW - signal transduction pathway KW - mitochondrial transport KW - glutamate receptor Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-145185 VL - 8 ER - TY - JOUR A1 - Niemann, Axel A1 - Huber, Nina A1 - Wagner, Konstanze M. A1 - Somandin, Christian A1 - Horn, Michael A1 - Lebrun-Julien, Frédéric A1 - Angst, Brigitte A1 - Pereira, Jorge A. A1 - Halfter, Hartmut A1 - Welzl, Hans A1 - Feltri, M. Laura A1 - Wrabetz, Lawrence A1 - Young, Peter A1 - Wessig, Carsten A1 - Toyka, Klaus V. A1 - Suter, Ueli T1 - The Gdap1 knockout mouse mechanistically links redox control to Charcot–Marie–Tooth disease JF - Brain N2 - The ganglioside-induced differentiation-associated protein 1 (GDAP1) is a mitochondrial fission factor and mutations in GDAP1 cause Charcot–Marie–Tooth disease. We found that Gdap1 knockout mice (\(Gdap1^{−/−}\)), mimicking genetic alterations of patients suffering from severe forms of Charcot–Marie–Tooth disease, develop an age-related, hypomyelinating peripheral neuropathy. Ablation of Gdap1 expression in Schwann cells recapitulates this phenotype. Additionally, intra-axonal mitochondria of peripheral neurons are larger in \(Gdap1^{−/−}\) mice and mitochondrial transport is impaired in cultured sensory neurons of \(Gdap1^{−/−}\) mice compared with controls. These changes in mitochondrial morphology and dynamics also influence mitochondrial biogenesis. We demonstrate that mitochondrial DNA biogenesis and content is increased in the peripheral nervous system but not in the central nervous system of \(Gdap1^{−/−}\) mice compared with control littermates. In search for a molecular mechanism we turned to the paralogue of GDAP1, GDAP1L1, which is mainly expressed in the unaffected central nervous system. GDAP1L1 responds to elevated levels of oxidized glutathione by translocating from the cytosol to mitochondria, where it inserts into the mitochondrial outer membrane. This translocation is necessary to substitute for loss of GDAP1 expression. Accordingly, more GDAP1L1 was associated with mitochondria in the spinal cord of aged \(Gdap1^{−/−}\) mice compared with controls. Our findings demonstrate that Charcot–Marie–Tooth disease caused by mutations in GDAP1 leads to mild, persistent oxidative stress in the peripheral nervous system, which can be compensated by GDAP1L1 in the unaffected central nervous system. We conclude that members of the GDAP1 family are responsive and protective against stress associated with increased levels of oxidized glutathione. KW - animal models KW - Charcot-Marie-Tooth disease KW - mitochondria KW - axonal transport KW - demyelinating disease Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-120731 VL - 137 IS - 3 ER - TY - THES A1 - Glinka, Michael T1 - Charakterisierung der Rolle des β-Aktin mRNA bindenden Proteins heterogenous nuclear ribonucleoprotein-R für das Axonenwachstum von Motoneuronen T1 - Characterisation of the role of the β-Aktin mRNA binding protein heterogenous nuclear ribonucleoprotein-R for the axonal growth of motoneurons N2 - Bei Yeast Two-Hybrid Untersuchungen wurde in unserer Arbeitsgruppe das RNA-Bindungsprotein hnRNP-R als Interaktionspartner von SMN gefunden und es konnte gezeigt werden, dass hnRNP-R mit SMN in Axonen von primären Motoneuronen kolokalisiert (Rossoll et al., 2002). hnRNP-R assoziiert mit der β-Aktin mRNA und nach Überexpression kommt es zu einer Akkumulation von β-Aktin in den Wachstumskegeln von neuronalen Zellen, sowie zu verstärktem Neuritenwachstum bei PC12 Zellen. Wird die SMN-Bindungsdomäne von hnRNP-R deletiert, ist dieser Effekt stark reduziert (Rossoll et al., 2003). Auf diesen in vitro Befunden ist die Hypothese begründet, dass hnRNP-R an der Translokation der β-Aktin mRNA in die Wachstumskegel von neuronalen Zellen beteiligt ist. Deshalb wurde im Rahmen dieser Arbeit die Rolle von hnRNP-R bei der Entwicklung in Neuronen des Nervensystems näher untersucht. Dazu wurden Zebrafisch Embryonen als in vivo Modellsystem für Morpholino vermittelte Knockdown Untersuchungen gewählt. Zunächst wurde ein gegen murines Protein hergestelltes hnRNP-R Antiserum charakterisiert und gezeigt, dass es das Zebrafisch Protein spezifisch erkennt. Dieses Antiserum wurde in Western Blot Analysen verwendet um den hnRNP-R Knockdown in Zebrafisch Embryonen zu verifizieren. Bei den hnRNP-R Morpholino injizierten Embryonen konnten dosisabhängig axonale Veränderungen beobachtet werden. Diese Veränderungen stimmen mit einem Krankheitsmodell für SMA im Zebrafisch überein. Es konnte gezeigt werden, dass das Überleben primärer Motoneurone in Zebrafisch Embryonen nicht beeinträchtigt ist und dass andere neuronale Zellen keine signifikante Beeinflussung durch einen hnRNP-R Knockdown erfahren. Um die Spezifität des axonalen Phänotyps, der durch hnRNP-R Knockdown hervorgerufen wurde zu belegen, wurde mit muriner hnRNP-R mRNA ein Rescue-Experiment durchgeführt. Es konnte gezeigt werden, dass dabei der axonale Phänotyp weitestgehend wieder aufgehoben wurde. Parallel zu den Zebrafisch Experimenten wurde ein hnRNP-R Knockout Konstrukt mittels homologer Rekombination in Escherichia coli hergestellt und in murine embryonale Stammzellen elektroporiert. Die Charakterisierung einer hnRNP-R Knockout Maus könnte weitere bedeutende Einsichten in die in vivo Funktionen von hnRNP-R bei der Embryonalentwicklung und speziell der Entwicklung von Motoneuronen gewähren. Um der Frage nach zu gehen, welche mRNAs in Wachstumskegeln von Axonen primärer Maus Motoneuronen zu finden sind oder durch Transportprozesse lokal akkumuliert sind,wurden Versuche unternommen, um mittels Laser-Mikrodissektion einzelne Wachstumskegel von Motoneuronen für Untersuchungen der enthaltenen mRNAs zu gewinnen. Erstmalig ist es im Rahmen dieser Arbeit gelungen, kompartimentalisierte Kulturen von primären Motoneuronen der Maus zu etablieren. Damit wurde die Grundlage geschaffen, um RNA-Profile von distalen Zellkompartimenten wie den Axonen und Wachstumskegeln zu bestimmen. N2 - In previous yeast two-hybrid studies, we have shown that hnRNP-R is an interaction partner of SMN and that it co-localises with SMN in axons of primary motor neurons (Rossoll et al., 2002). hnRNP-R associates with the β-actin mRNA and after overexpression, an accumulation of β-actin in growth cones of neuronal cells and elongated neurite growth of pc12 cells could be observed. If the SMN binding domain of hnRNP-R was deleted, this effect was strongly reduced (Rossoll et al., 2003). On this in vitro observations the hypothesis is based, that hnRNP-R plays an important role in the translocation of β-actin mRNA to the growth cones of neuronal cells. For that reason, the role of hnRNP-R in the development of neuronal cells of the nervous system was investigated in more detail, in line with this thesis. We have chosen embryonic zebrafish as an in vivo model system for morpholino mediated knockdown analysis of hnRNP-R. First of all an antiserum that has been generated against murine hnRNP-R protein was characterised and it could be shown that it specifically recognises the zebrafish protein. This antiserum was used in western blot analysis to verify the hnRNP-R knockdown in embryonic Zebrafish. Dose dependent axonal phenotypes could be described in hnRNP-R morpholino injected embryos, that resembled the alterations, observed in a disease model for SMA in zebrafish. We could show that the survival of motor neurons in zebrafish embryos was not impaired and that other populations of neuronal cells, were not significantly affected by the hnRNP-R knockdown. To prove the specificity of the axonal phenotype after hnRNP-R knockdown, a rescue experiment with co-injected mouse hnRNP-R mRNA has been performed, that nearly abolished the axonal phenotype. In parallel to the zebrafish experiments an hnRNP-R knockout construct was made by homologues recombination in Escherichia coli. This construct has been electroporated into embryonic stem cells of mice, and obtained clones have been screened. The characterisation of an hnRNP-R knockout mouse could reveal important insights of in vivo functions of hnRNP-R in embryonic development and especially the development of motor neurons. To answer the question, which mRNAs are located in growth cones of primary mouse motor neurons, or are locally accumulated due to mRNA transport processes, growth cones of primary mouse motor neurons have been cut by laser micro dissection. For the first time, compartmentalised cell cultures of primary motor neurons could be established during this thesis, providing the background to generate detailed RNA profiles of distal cell compartments like axons and growth cones. KW - Heterogene Ribonucleoproteine KW - Actin KW - Motoneuron KW - Axon KW - Axonaler Transport KW - hnRNP-R KW - Morpholino KW - Knockdown KW - β-Aktin KW - kompartimentierte Kulturen KW - primäre Motoneurone KW - BDNF KW - axonal transport KW - hnRNP-R KW - morpholino knockdown KW - β-actin KW - compartimentalized cultures KW - primary notoneuron KW - BDNF Y1 - 2011 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-57410 ER -