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- spinal muscular atrophy (6) (entfernen)
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- Institut für Klinische Neurobiologie (6) (entfernen)
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.
The cDNA for ciliary neurotrophic factor (CNTF), a polypeptide involved in the survival of motoneurons in mammals, has recently been cloned (Stöckli et al., Nature, 342, 920 - 923, 1989; Lin et al. Science, 246, 1023 - 1025, 1989). We have now localized the corresponding gene Cntf to chromosome 19 in the mouse, using an interspecific cross between Mus spretus and Mus musculus domesticus. The latter was carrying the gene wobbler (wr) for spinal muscular atrophy. DNA was prepared from backcross individuals and typed for the segregation of species-specific Cntf restriction fragments in relation to DNA markers of known chromosomal location. The M.spretus allele of Cntf cosegregated with chromosome 19 markers and mapped closely to Ly-1, to a region of mouse chromosome 19 with conserved synteny to human chromosome 11q. Cntf is not linked to wr, and the expression of CNTF mRNA and protein appears close to normal in facial and sciatic nerves, of affected (wr/wr) mice, suggesting that motoneuron degeneration of wobbler mice has its origin in defects other than reduced CNTF expression.
Survival motor neuron (SMN) is an essential and ubiquitously expressed protein that participates in several aspects of RNA metabolism. SMN deficiency causes a devastating motor neuron disease called spinal muscular atrophy (SMA). SMN forms the core of a protein complex localized at the cytoplasm and nuclear gems and that catalyzes spliceosomal snRNP particle synthesis. In cultured motor neurons, SMN is also present in dendrites and axons, and forms part of the ribonucleoprotein transport granules implicated in mRNA trafficking and local translation. Nevertheless, the distribution, regulation, and role of SMN at the axons and presynaptic motor terminals in vivo are still unclear. By using conventional confocal microscopy and STED super-resolution nanoscopy, we found that SMN appears in the form of granules distributed along motor axons at nerve terminals. Our fluorescence in situ hybridization and electron microscopy studies also confirmed the presence of β-actin mRNA, ribosomes, and polysomes in the presynaptic motor terminal, key elements of the protein synthesis machinery involved in local translation in this compartment. SMN granules co-localize with the microtubule-associated protein 1B (MAP1B) and neurofilaments, suggesting that the cytoskeleton participates in transporting and positioning the granules. We also found that, while SMN granules are physiologically downregulated at the presynaptic element during the period of postnatal maturation in wild-type (non-transgenic) mice, they accumulate in areas of neurofilament aggregation in SMA mice, suggesting that the high expression of SMN at the NMJ, together with the cytoskeletal defects, contribute to impairing the bi-directional traffic of proteins and organelles between the axon and the presynaptic terminal.
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.
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.
Cell-autonomous axon growth of young motoneurons is triggered by a voltage-gated sodium channel
(2013)
Spontaneous electrical activity preceding synapse formation contributes to the precise regulation of neuronal development. Examining the origins of spontaneous activity revealed roles for neurotransmitters that depolarize neurons and activate ion channels. Recently, we identified a new molecular mechanism underlying fluctuations in spontaneous neuronal excitability. We found that embryonic motoneurons with a genetic loss of the low-threshold sodium channel Na\(_V\)1.9 show fewer fluctuations in intracellular calcium in axonal compartments and growth cones than wild-type littermates. As a consequence, axon growth of Na\(_V\)1.9-deficient motoneurons in cell culture is drastically reduced while dendritic growth and cell survival are not affected. Interestingly, Na\(_V\)1.9 function is observed under conditions that would hardly allow a ligand- or neurotransmitter-dependent depolarization. Thus, Na\(_V\)1.9 may serve as a cell-autonomous trigger for neuronal excitation. In this addendum, we discuss a model for the interplay between cell-autonomous local neuronal activity and local cytoskeleton dynamics in growth cone function.