Institut für Klinische Neurobiologie
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Neurotrophic factor signaling modulates differentiation, axon growth and maintenance, synaptic plasticity and regeneration of neurons after injury. Ciliary neurotrophic factor (CNTF), a Schwann cell derived neurotrophic factor, has an exclusive role in axon maintenance, sprouting and synaptic preservation. CNTF, but not GDNF, has been shown to alleviate motoneuron degeneration in pmn mutant mice carrying a missense mutation in Tbce gene, a model for Amyotrophic Lateral Sclerosis (ALS). This current study elucidates the distinct signaling mechanism by which CNTF rescues the axonal degeneration in pmn mutant mice. ...
Genetische Inaktivierung des somatischen Cytochrom C Gens der Maus Cytochrom C wurde als ein Interaktionspartner im Apoptosom beschrieben. Ziel dieses Projektes war es, die Rolle von Cytochrom C bei der Apoptose von Nervenzellen in vivo durch genetische Inaktivierung in der Maus zu untersuchen. Die homozygote Deletion des Cytochrom C Gens führt jedoch zu einem sehr frühen Entwicklungsdefekt: Schon am 8. Embryonaltag findet man nur noch Embryonen ohne erkennbare Körperachse. Im weiteren wurden daher heterozygote Tiere untersucht, die in bestimmten Geweben, wie Gehirn und Rückenmark, eine Reduktion der Menge von Cytochrom C aufweisen. Am ersten Tag nach der Geburt konnten keine Unterschiede zwischen Tieren mit einem oder zwei Cytochrom C Genen in Bezug die Anzahl von Motoneuronen gefunden werden. Auch nach perinataler Fazialisläsion war die Rate des Zelltods bei Tieren mit heterozygoter Deletion des Cytochrom C Gens unverändert. In vitro zeigte sich jedoch eine erhöhte Resitenz von Motoneuronen gegenüber Fas-induzierter Apoptose. Bei der Analyse der Apoptose von Thymozyten zeigte sich ein Trend, der eine kleine, aber reproduzierbare Verzögerung einer späten Zelltodphase nach UV-induzierter Apoptose nahelegt. Erste Experimente deuten außerdem auf einen Effekt der Cytochrom C Gendosis auf den Verlauf einer Experimentellen Autoimmunencephalitis (EAE) hin. Charakterisierung der NFL-Cre Maus Die zelltypspezifische Genablation mit dem Cre/loxP System umgeht einige der größten Probleme der klassischen Methode der Geninaktivierung in Mäusen, indem nur in bestimmten Geweben oder Zelltypen, eventuell sogar nur ab einem bestimmten Zeitpunkt, ein Gen gezielt ausgeschaltet werden kann. Allerdings hängt das Cre/loxP System von der Verfügbarkeit von brauchbaren Cre-transgenen Mauslinien mit entsprechenden Expressionsmustern und –kinetiken ab. Wir haben eine transgene Mauslinie etabliert und analysiert, die die Cre Rekombinase unter der Kontrolle des humanen Neurofilament-L Promotors exprimiert. Das Expressionsmuster von Cre wurde in mehreren Geweben mit RT-PCR und durch Verkreuzung mit einer Reportergenmaus untersucht. Im Gehirn wurden Cre exprimierende Zelltypen mit in-situ Hybridisierung, Immunhistochemie und wiederum mit Hilfe der Reportermaus identifiziert. Dabei zeigte sich eine spezifische Cre Expression in bestimmten Neuronpopulationen wie hippocampalen Pyramidenzellen und spinalen und cranialen Motoneuronen. Unsere NFL-Cre Maus besitzt einige Eigenschaften, die bisher publizierte Cre-Linien nicht aufweisen, so z.B.eine starke Cre Expression in hippocampalen Pyramidenzellen, aber nicht in Körnerzellen des Gyrus dentatus; Expression in cortikalen Pyramidenzellen, aber keine Expression im Striatum; Expression in zerebellären Purkinje-, aber nicht Körnerzellen; sowie die Expression in spinalen und cranialen Motoneuronen, aber nicht in angrenzenden Interneuronen. Die Rolle von Stat3 für das Überleben von Motoneuronen Die Mitglieder der CNTF/LIF/Cardiotrophin Genfamilie sind potente Überlebensfaktoren für embryonale und lädierte Motoneurone sowohl in vitro als auch in vivo. Diese Faktoren binden an Rezeptorkomplexe, die gp130 und LIFR als signaltransduzierende Komponenten enthalten. Im Gegensatz zu den Rezeptoren für andere neurotrophe Faktoren, führt die Aktivierung von gp130 und LIFR zur Phosphorylierung und Aktivierung des Transkriptionsfaktors Stat3. Es war aber zu Beginn dieser Arbeiten unklar, ob die Aktivierung von Stat3 für den Überlebenseffekt der neuropoietischen Zytokine notwendig ist. Um diese Frage zu beantworten, wurde Stat3 in Motoneuronen mit Hilfe des Cre/loxP Systems konditional inaktiviert. Stat3 ist nicht für das Überleben embryonaler Motoneurone essentiell, obwohl man in vitro eine Verschiebung der Dosis-Wirkungskurve für CNTF findet. In vivo hingegen kann kein erhöhter Zelltod von Motoneuronen nachgewiesen werden. Im Gegensatz dazu, kommt es bei adulten Tieren mit Inaktivierung von Stat3 in Motoneuronen zu einem erhöhten Zelltod nach Fazialisläsion. Diese Neurone können wiederum durch die Applikation neurotropher Faktoren, einschließlich CNTF, gerettet werden. Durch semiquantitative RT-PCR kann man zeigen, daß Stat3-regulierte Gene, deren Expression nach Nervenläsion induziert wird, in Neuronen mit Inaktivierung von Stat3 weniger stark exprimiert werden. Zu diesen Genen gehören Reg-2, ein Mitogen für Schwannzellen, das von regenerierenden Neuronen exprimiert wird, und Bcl-xL, ein Gen, welches direkt in die Apoptoseregulation eingreift. Diese Daten zeigen, daß Stat3 Aktivierung eine essentielle Rolle für das Überleben nach Läsion von postnatalen Motoneuronen spielt, aber nicht während der Embryonalentwicklung. Das bedeutet, daß die Signalwege ein und desselben neurotrophen Faktors sich während der Entwicklung und reifung des Organismus verändern können.
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.
Axon growth, a fundamental process of neuron development, is regulated by both intrinsic and external guidance signals. Impairment of axon growth and maintenance is implicated in the pathogenesis of neurodegenerative disorders such as Amyotrophic Lateral Sclerosis and Alzheimer’s disease (AD). Axon growth is driven by several post-transcriptional RNA processing mechanisms, including alternative splicing, polyadenylation, subcellular localization, and translation. These mechanisms are controlled by RNA-binding proteins (RBPs) through interacting with their target RNAs in a sequence-dependent manner. In this study, we investigate the cytosolic functions of two neuronal RBPs, Ptbp2 and hnRNP R, which are essential for axon growth in motoneurons.
Polypyrimidine tract binding protein 2 (Ptbp2) contributes to neuronal differentiation and axonogenesis by modulating different splicing programs to adjust the level of proteins involved in these processes. While the nuclear functions of Ptbp2 in alternative splicing have been studied in more detail, the cytosolic roles of Ptbp2 associated with axon growth have remained elusive. In the first part of the study, we show that Ptbp2 is present in cytosolic fractions of motoneurons including axons and axon terminals. Depletion of Ptbp2 impairs axon growth and growth cone maturation in cultured embryonic mouse motoneurons. Moreover, Ptbp2 knockdown affects the level of piccolo protein in the growth cone of cultured motoneurons. We detect Ptbp2 as a top interactor of the 3' UTR of the Hnrnpr transcript encoding the RBP hnRNP R. This interaction results in axonal localization of and thereby local translation of Hnrnpr mRNA in motoneurons. Consequently, axonal synthesis of hnRNP R was diminished upon depletion of Ptbp2 in motoneurons. We present evidence that Ptbp2 through cooperation with translation factor eIF5A2 controls hnRNP R synthesis. Additionally, we observe that re-expression of hnRNP R in Ptbp2-deficient motoneurons rescued axon growth defect while Ptbp2 overexpression failed to normalize the axon elongation defect observed in hnRNP R-deficient motoneurons. Our findings pinpoint axonal synthesized hnRNP R as a mediator of Ptbp2 functions in axon growth.
In the second part of this study, we identify hnRNP R binds to the 3' UTR of microtubule-associated tau (Mapt) transcript encoding tau protein and regulates the axonal translocation and translation of Mapt mRNA. Tau protein has a central role in neuronal microtubule assembly and stability. However, in AD, the accumulation of abnormally hyperphosphorylated tau protein leads to axon outgrowth defects. Loss of hnRNP R reduces axonal tau protein but not the total level of tau. We observe that the brains of 5xFAD mice, as a mouse model of AD, deficient for hnRNP R contain lower phospho-tau and amyloid-β plaques. Likewise, Neurons treated with blocking antisense oligonucleotides (ASO) to prevent binding of hnRNP R to Mapt mRNA show reduced axonal Mapt mRNA and consequently newly synthesized tau protein levels. We show that blocking Mapt mRNA transport to axons impairs axon elongation. Our data thus suggest that reducing tau levels selectively in axons, a major subcellular site of tangle formation, might represent a novel therapeutic approach for the treatment of AD.
Spinal muscular atrophy and amyotrophic lateral sclerosis are the two most common devastating motoneuron diseases. The mechanisms leading to motoneuron degeneration are not resolved so far, although different hypotheses have been built on existing data. One possible mechanism is disturbed axonal transport of RNAs in the affected motoneurons. The underlying question of this study was therefore to characterize changes in transcript levels of distinct RNAs in cell culture models of spinal muscular atrophy and amyotrophic lateral sclerosis, especially in the axonal compartment of primary motoneurons.
To investigate this in detail we first established compartmentalized cultures of Primary mouse motoneurons. Subsequently, total RNA of both compartments was extracted
separately and either linearly amplified and subjected to microarray profiling or whole transcriptome amplification followed by RNA-Sequencing was performed. To make
the whole transcriptome amplification method suitable for compartmentalized cultures, we adapted a double-random priming strategy. First, we applied this method
for initial optimization onto serial dilutions of spinal cord RNA and later on to the compartmentalized motoneurons.
Analysis of the data obtained from wildtype cultures already revealed interesting results. First, the RNA composition of axons turned out to be highly similar to the somatodendritic compartment. Second, axons seem to be particularly enriched for transcripts related to protein synthesis and energy production. In a next step we
repeated the experiments by using knockdown cultures. The proteins depleted hereby are Smn, Tdp-43 and hnRNP R. Another experiment was performed by knocking down the non-coding RNA 7SK, the main interacting RNA of hnRNP R.
Depletion of Smn led to a vast number of deregulated transcripts in the axonal and somatodendritic compartment. Transcripts downregulated in the axons upon Smn depletion were especially enriched for GOterms related to RNA processing and encode proteins located in neuron projections including axons and growth cones.
Strinkingly, among the upregulated transcripts in the somatodendritic compartment we mainly found MHC class I transcripts suggesting a potential neuroprotective role.
In contrast, although knockdown of Tdp-43 also revealed a large number of downregulated transcripts in the axonal compartment, these transcripts were mainly
associated with functions in transcriptional regulation and RNA splicing. For the hnRNP R knockdown our results were again different. Here, we observed
downregulated transcripts in the axonal compartment mainly associated with regulation of synaptic transmission and nerve impulses. Interestingly, a comparison between deregulated transcripts in the axonal compartment of both hnRNP R and 7SK knockdown presented a significant overlap of several transcripts suggesting
some common mechanism for both knockdowns.
Thus, our data indicate that a loss of disease-associated proteins involved in axonal RNA transport causes distinct transcriptome alterations in motor axons.
The transmission of proliferative and developmental signals from activated cell-surface receptors to initiation of cellular responses in the nucleus is synergically controlled by the coordinated action of a diverse set of intracellular signalling proteins. The Ras/Raf/MEK/MAPK signalling pathway has been shown to control the expression of genes which are crucial for the physiological regulation of cell proliferation, differentiation and apoptosis. Within this signalling cascade, the Raf protein family of serine/threonine kinases serves as a central intermediate which connects to many of other signal transduction pathways. To elucidate the signalling functions of the different Raf kinases in motoneurons during development, the expression, distribution and subcellular localization of Rafs in the spinal cord and the facial nucleus in brainstem of mice at various embryonic and postnatal stages were investigated. Moreover, we have investigated the intracellular redistribution of Raf molecules in isolated motoneurons from 13 or 14 day old mouse embryos, after addition or withdrawal of neurotrophic factors to induce Raf kinases activation in vitro. Furthermore, in order to investigate the potential anti-apoptotic function of Raf kinases on motoneurons, we isolated motoneurons from B-raf-/- and c-raf-1-/- mouse embryos and analysed the survival and differentiation effects of neurotrophic factors in motoneurons lacking B-Raf and c-Raf-1. We provide evidence here that all three Raf kinases are expressed in mouse spinal motoneurons. Their expression increases during the period of naturally occurring cell death of motoneurons. In sections of embryonic and postnatal spinal cord, motoneurons express exclusively B-Raf and c-Raf-1, but not A-Raf, and subcellularly Raf kinases are obviously colocalized with mitochondria. In isolated motoneurons, most of the B-Raf or c-Raf-1 immunoreactivity is located in the perinuclear space but also in the nucleus, especially after activation by addition of CNTF and BDNF in vitro. We found that c-Raf-1 translocation from the cytosol into the nucleus of motoneurons after its activation by neurotrophic factors is a distinct event. As a central finding of our study, we observed that the viability of isolated motoneurons from B-raf but not c-raf-1 knockout mice is lost even in the presence of CNTF and other neurotrophic factors. This indicates that B-Raf but not c-Raf-1, which is still present in B-raf deficient motoneurons, plays a crucial role in mediating the survival effect of neurotrophic factors during development. In order to prove that B-Raf is an essential player in this scenario, we have re-expressed B-Raf in mutant sensory and motor neurons by transfection. The motoneurons and the sensory neurons from B-raf knockout mouse which were transfected with exogenous B-raf gene revealed the same viability in the presence of neurotrophic factors as primary neurons from wild-type mice. Our results suggest that Raf kinases have important signalling functions in motoneurons in mouse CNS. In vitro, activation causes redistribution of Raf protein kinases, particularly for c-Raf-1, from motoneuronal cytoplasm into the nucleus. This redistribution of c-Raf-1, however, is not necessary for the survival effect of neurotrophic factors, given that B-raf-/- motor and sensory neurons can not survive despite the presence of c-Raf-1. We hypothesize that c-Raf-1 nuclear translocation may play a direct role in transcriptional regulation as a consequence of neurotrophic factor induced phosphorylation and activation of c-Raf-1 in motoneurons. Moreover, the identification of target genes for nuclear translocated c-Raf-1 and of specific cellular functions initiated by this mechanism awaits its characterization.
Differenzielle Wirkungen neurotropher Faktoren auf das Axon-und Dendritenwachstum von Motoneuronen
(2008)
In der vorliegenden Dissertation wurde die subzelluläre Lokalisation der Rezeptoren für die neurotrophen Faktoren BDNF, CNTF und GDNF in primären embryonalen und adulten Motoneuronen erstmalig genau charakterisiert. Die Rezeptoruntereinheiten des BDNF und CNTF Rezeptors, TrkB, p-TrkB, gp130 und p-Stat3, sind im Perikaryon, in Dendriten, im Axon und an den Axonterminalen bzw. Wachstumskegeln von Motoneuronen lokalisiert. Dabei sind die nativen Formen (TrkB, gp130) im Axon überwiegend membranständig, die aktivierten Formen (p-TrkB, p-Stat3) überwiegend im Inneren des Axons lokalisiert. Demgegenüber sind die Rezeptoruntereinheiten des GDNF Rezeptors, Ret und p-Ret, besonders stark in den Dendriten exprimiert. Auch im Perikaryon und an der neuromuskulären Endplatte sind Ret und p-Ret lokalisiert, nicht jedoch im Axon. Im zweiten Teil der Arbeit wurde das durch neurotrophe Faktoren bedingte Neuritenwachstum genau quantifiziert. Dabei wurde zwischen einer Stimulation des Axon- bzw. des Dendritenwachstums differenziert. Die mit GDNF behandelten Dendriten werden etwa doppelt so lang wie die Dendriten, der mit BDNF oder CNTF behandelten Motoneurone. GDNF ist somit ein potenter Stimulator des Dendritenwachstums bei isolierten primären Motoneuronen. Dieser Befund korreliert gut mit der starken Expression von Ret und p-Ret in den Dendriten. Des Weiteren wurde eine Analyse der Interaktion der neurotrophen Faktoren mit dem glutamatergen AMPA Rezeptor in Hinblick auf das Neuritenwachstum durchgeführt. Dabei zeigte sich, dass die Interaktion zwischen neurotrophen Faktoren und dem AMPA Rezeptor besonders für das Dendritenwachstum von Bedeutung ist. Die klinische Bedeutung neurotropher Faktoren und deren Rezeptoren wird im dritten Teil der Arbeit dargestellt. Die pmn Maus ist ein Mausmodell für humane degenerative Erkrankungen des Motoneurons, wie der ALS und der SMA. Pmn Motoneurone, die mit BDNF oder GDNF kultiviert werden, weisen den charakteristischen axonalen Wachstumsdefekt der pmn Motoneurone auf und werden nur etwa halb so lang wie gesunde Kontrollmotoneurone. Bemerkenswerterweise führt die Behandlung der pmn Motoneurone mit CNTF zu einer kompletten Remission des axonalen Wachstumsdefekts, so dass die Axone eine normale Axonlänge erreichen. Auch die Anzahl der pathologischen axonalen Schwellungen werden in vitro durch CNTF stark reduziert. CNTF scheint demnach der interessanteste neurotrophe Faktor für eine Behandlung degenerativer Motoneuronerkrankungen zu sein.
In highly polarized cells like neurons, cytoskeleton dynamics play a crucial role in establishing neuronal connections during development and are required for adult plasticity. Actin turnover is particularly important for neurite growth, axon path finding, branching and synaptogenesis. Motoneurons establish several thousand branches that innervate neuromuscular synapses (NMJs). Axonal branching and terminal arborization are fundamental events during the establishment of synapses in motor endplates. Branching process is triggered by the assembly of actin filaments along the axon shaft giving rise to filopodia formation. The unique contribution of the three actin isoforms, α-, β- and γ-actin, in filopodia stability and dynamics during this process is not well characterized. Here, we performed high resolution in situ hybridization and qRT-PCR and showed that in primary mouse motoneurons α-, β- and γ-actin isoforms are expressed and their transcripts are translocated into axons. Using FRAP experiments, we showed that transcripts for α-, β- and γ-actin become locally translated in axonal growth cones and translation hot spots of the axonal branch points. Using live cell imaging, we showed that shRNA depletion of α-actin reduces dynamics of axonal filopodia which correlates with reduced number of collateral branches and impairs axon elongation. Depletion of β-actin correlates with reduced dynamics of growth cone filopoida, disturbs axon elongation and impairs presynaptic differentiation. Also, depletion of γ-actin impairs axonal growth and decreases axonal filopodia dynamics. These findings implicate that actin isoforms accomplish unique functions during development of motor axons. Depletions of β- and γ-actin lead to compensatory upregulation of other two isoforms. Consistent with this, total actin levels remain unaltered and F-actin polymerization capacity is preserved. After the knockdown of either α- or γ-actin, the levels of β-actin increase in the G-actin pool indicating that polymerization and stability of β-actin filaments depend on α- or γ-actin. This study provides evidence both for unique and overlapping function of actin isoforms in motoneuron growth and differentiation. In the soma of developing motoneurons, actin isoforms act redundantly and thus could compensate for each other’s loss. In the axon, α-, β- and γ-actin accomplish specific functions, i.e. β-actin regulates axon elongation and plasticity and α- and γ-actin regulate axonal branching.
Furthermore, we show that both axonal transport and local translation of α-, β- and γ-actin isoforms are impaired in Smn knockout motoneurons, indicating a role for Smn protein in RNA granule assembly and local translation of these actin isoforms in primary mouse motoneurons.
Die proximale spinale Muskelatrophie (SMA) ist eine autosomal rezessive Erb-krankheit, welche durch fortschreitende Muskelatrophie mit Betonung der pro-ximalen Extremitäten, sowie zunehmende motorische Lähmungen charakterisiert wird. Bedingt wird diese neurodegenerative Erkrankung durch Mutation bzw. Deletion des SMN1-Gens auf Chromosom 5q13. Dies führt zu reduzierten Mengen des ubiquitär exprimierten SMN-Proteins, da der Verlust des SMN1-Gens nicht durch das noch verbleibende SMN2-Gen kompensiert werden kann. Die SMN-Promotor-Region enthält ein CRE II bindendes Element, welches Effekte von zyklischem Adenosinmonophosphat (cAMP) vermittelt und so die SMN-Transkription in untersuchten Zellen stimuliert. Ausgehend von diesem Befund stellte sich die Frage, ob cAMP dem Mangel an volllängen SMN bei der SMA entgegen wirkt. Daher wurden für diese Dissertation neurosphärenbildende kortikale Vorläuferzellen und primär kultivierte Motoneuronen von Smn+/+; SMN2- und Smn–/–;SMN2-Mausembryonen untersucht, um zu klären, ob die cAMP-Behandlung der Zellen zu einer Hochregulierung des SMN2-Transkripts führt, und durch die resultierende Erhöhung des SMN-Proteingehalts morphologische und funktionelle Defekte kompensiert werden. Die Untersuchung zeigte eine signifikante Zunahme des SMN2-Transkriptgehalts in Anwesenheit von cAMP. Dadurch kam es zu einem Anstieg der SMN-Proteinmenge im Soma, Axon und Wachstumskegel von Smn–/–;SMN2-Motoneuronen. Die Verteilungs-störung des SMN-Interaktionspartners hnRNP R mit fehlender kontrolltypischer Anreicherung im distalen Axon und Wachstumskegel von Smn–/–;SMN2-Motoneuronen wurde ebenfalls durch cAMP kompensiert. Smn-defiziente Mo-toneurone zeigten im Vergleich zu Kontrollzellen kleinere Wachstumskegel sowie ein Defizit an β-Aktin im distalen Axon. Zudem fehlte in Smn–/–;SMN2-Motoneuronen die bei Kontrollen ausgeprägte Zusammenlagerung von N-Typ spezifischen Ca2+-Kanälen in der Präsynapse, die nach Kontakt mit der β2-Kette des endplattenspezifischen Laminin-221 spontan öffnen und so einen in-trazellulären Kalziumanstieg bewirken, wodurch es zu Erregbarkeitsstörungen und Axonelongationsdefekten bei Smn-defizienten Motoneuronen kommt. Die Behandlung der Smn-defizienten Motoneuronen mit cAMP führte zur Vergrößerung der Wachstumskegelfläche und zu einer im Verlauf des Axons zunehmenden Anfärbung mit β-Aktin. Außerdem kam es zu einer Erhöhung der Menge an Cav2.2-Kanalprotein in den Wachstumskegeln Smn-defizienter Motoneurone, was mit einer erhöhten Erregbarkeit korrelierte und zu einer Normalisierung der Axonlänge von Smn–/–;SMN2-Motoneuronen auf Laminin-221 führte. Die Ergebnisse dieser Arbeit lassen die Vermutung zu, dass Smn-defiziente Motoneurone in vivo Defekte im präsynaptischen Bereich der Motorendplatte aufweisen. In Zukunft können mit dem beschriebenen in vitro Assay weitere Substanzen, welche die SMN2-Traskription stimulieren, auf ihr kompensatorisches Potential getestet werden.
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.