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Die Spinale Muskelatrophie (SMA) ist mit einer Inzidenz von 1:6000 die zweithäufigste autosomal-rezessive Erbkrankheit im frühen Kindesalter. Die durch den Verlust des SMN- (survival of motoneuron) Gens reduzierte SMN Protein Expression führt zu einer Degeneration der spinalen Motoneurone mit proximal betonter Muskelschwäche. Deshalb zielen erste Therapieversuche darauf ab, diese zu erhöhen. Es war gezeigt worden, dass durch den Einsatz von Histon Deacetylase Inhibitoren (HDAC) in neuronalen Kontroll Zellen und in nicht neuronalen Zellen von SMA Patienten die SMN Protein Expression signifikant gesteigert werden konnte. In der vorgelegten Arbeit wurde untersucht, ob die HDAC Inhibitoren Valproat, SAHA und FK228 Einfluss auf die SMN Protein Expression in kortikalen neuronalen Vorläuferzellen (NSC), auf primär embryonale Fibroblasten (PMEF) und auf die morphologischen Veränderungen in primär kultivierten embryonalen Motoneuronen eines Mausmodells der SMA haben. Es konnte eine signifikante Steigerung der SMN Protein Expression durch den Einsatz von Valproat und FK228 in kortikalen neuronalen Vorläuferzellen nachgewiesen werden. Es ergab sich jedoch kein Einfluss auf die SMN Protein Expression in primär embryonalen Fibroblasten. Bei NSCs und primär kultivierten embryonalen Motoneuronen wirkten die HDAC Inhibitoren Valproat und FK228 konzentrationsabhängig toxisch auf das Überleben, die Länge der Axone und die Größe der Wachstumskegel. Es konnte kein positiver Einfluss auf die morphologischen Veränderungen des Mausmodells gesehen werden. Zusammenfassend zeigte sich in der vorgelegten Arbeit ein positiver Effekt auf die SMN Protein Expression durch den Einsatz von HDAC Inhibitoren, der jedoch mit einem toxischen Effekt auf die behandelten neuronalen Zellen einherging.
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.
In the central nervous system, excitatory and inhibitory signal transduction processes are mediated by presynaptic release of neurotransmitters, which bind to postsynaptic receptors. Glycine receptors (GlyRs) and GABAA receptors (GABAARs) are ligand-gated ion channels that enable synaptic inhibition. One part of the present thesis elucidated the role of the GlyRα1 β8 β9 loop in receptor expression, localization, and function by means of amino acid substitutions at residue Q177. This residue is underlying a startle disease phenotype in the spontaneous mouse model shaky and affected homozygous animals are dying 4-6 weeks after birth. The residue is located in the β8 β9 loop and thus part of the signal transduction unit essential for proper ion channel function. Moreover, residue Q177 is involved in a hydrogen network important for ligand binding. We observed no difference in ion channel trafficking to the cellular membrane for GlyRα1Q177 variants. However, electrophysiological measurements demonstrated reduced glycine, taurine, and β alanine potency in comparison to the wildtype protein. Modeling revealed that some GlyRα1Q177 variants disrupt the hydrogen network around residue Q177. The largest alterations were observed for the Q177R variant, which displayed similar effects as the Q177K mutation present in shaky mice. Exchange with structurally related amino acids to the original glutamine preserved the hydrogen bond network. Our results underlined the importance of the GlyR β8 β9 loop for proper ion channel gating.
GlyRs as well as GABAARs can be modulated by numerous allosteric substances. Recently, we focused on monoterpenes from plant extracts and showed positive allosteric modulation of GABAARs. Here, we focused on the effect of 11 sesquiterpenes and sesquiterpenoids (SQTs) on GABAARs. SQTs are compounds naturally occurring in plants. We tested SQTs of the volatile fractions of hop and chamomile, including their secondary metabolites generated during digestion. Using the patch-clamp technique on transfected cells and neurons, we were able to observe significant GABAAR modulation by some of the compounds analyzed. Furthermore, a possible binding mechanism of SQTs to the neurosteroid binding site of the GABAAR was revealed by modeling and docking studies. We successfully demonstrated GABAAR modulation by SQTs and their secondary metabolites.
The second part of the thesis investigated three-dimensional (3D) in vitro cell culture models which are becoming more and more important in different part of natural sciences. The third dimension allows developing of complex models closer to the natural environment of cells, but also requires materials with mechanical and biological properties comparable to the native tissue of the encapsulated cells. This is especially challenging for 3D in vitro cultures of primary neurons and astrocytes as the brain is one of the softest tissues found in the body. Ultra-soft matrices that mimic the neuronal in vivo environment are difficult to handle. We have overcome these challenges using fiber scaffolds created by melt electrowriting to reinforce ultra-soft matrigel. Hence, the scaffolds enabled proper handling of the whole composites and thus structural and functional characterizations requiring movement of the composites to different experimental setups. Using these scaffold-matrigel composites, we successfully established methods necessary for the characterization of neuronal network formation. Before starting with neurons, a mouse fibroblast cell line was seeded in scaffold-matrigel composites and transfected with the GlyR. 3D cultured cells displayed high viability, could be immunocytochemically stained, and electrophysiologically analyzed.
In a follow-up study, primary mouse cortical neurons in fiber-reinforced matrigel were grown for up to 21 days in vitro. Neurons displayed high viability, and quantification of neurite lengths and synapse density revealed a fully formed neuronal network already after 7 days in 3D culture. Calcium imaging and patch clamp experiments demonstrated spontaneous network activity, functional voltage-gated sodium channels as well as action potential firing. By combining ultra-soft hydrogels with fiber scaffolds, we successfully created a cell culture model suitable for future work in the context of cell-cell interactions between primary cells of the brain and tumor cells, which will help to elucidate the molecular pathology of aggressive brain tumors and possibly other disease mechanisms.
Die spinale Muskelatrophie ist eine monogenetische Erkrankung, die bereits im Kindesalter aufgrund von Motoneurondegeneration zu Muskelatrophie führt und nicht selten einen tödlichen Verlauf nimmt. Ursache der Erkrankung ist ein Mangel an SMN-Protein. Der hierfür verantwortliche Verlust des SMN1-Gens kann durch das SMN2-Gen aufgrund eines gestörten Spleißprozesses am Exon 7 nicht kompensiert werden. Neben Aufgaben in der RNA-Prozessierung wird das SMN-Protein für den axonalen Transport von Ribonucleinpartikeln in Motoneuronen benötigt, was bei der SMA zu pathologischem Wachstum, Differenzierung und Funktion der Motoraxone führt. Im Rahmen dieser Arbeit wurden kultivierte Motoneurone aus einem Mausmodell für die SMA Typ I (Genotyp Smn-/-;SMN2) mit zwei unterschiedlichen Substanzen behandelt und deren Wirkungen auf das präsynaptische Differenzierungsverhalten der Motoneurone verglichen: R-Roscovitine, ein Agonist/Modulator spannungsabhängiger N-Typ- und P/Q-Typ-Kalziumkanäle, welcher zudem eine CDK-inhibierende Wirkung besitzt, sowie Valproat, ein HDAC-Inhibitor, der eine stimulierende Wirkung auf die SMN-Transkription hat. Es zeigte sich, dass R-Roscovitine in der Lage ist, das pathologische Wachstums- und präsynaptische Differenzierungsverhalten der Smn-defizienten Motoneurone zu normalisieren, ohne hierbei Einfluss auf die erniedrigte Menge an Smn-Protein zu nehmen. Die Behandlung mit Valproat beeinflusst hingegen weder die Menge an Smn-Protein, noch die pathologische Differenzierung der Wachstumskegel Smn-defizienter Motoneurone. Erklären lassen sich diese Effekte in erster Linie durch den Agonismus an spannungsabhängigen Kalziumkanälen durch R-Roscovitine. Durch vermehrten Kalziumeinstrom kommt es zur Normalisierung von Struktur und Funktion der Wachstumskegel. Ein CDK-vermittelter Effekt scheint unwahrscheinlich. Obgleich die genauen Vorgänge noch nicht verstanden sind, zeigen diese Ergebnisse, dass sich Smn-defiziente Motoneurone normal entwickeln können, wenn die hierfür erforderlichen kalziumabhängigen präsynaptischen Differenzierungssignale korrekt ausgelöst werden. Bei weiterer Erforschung sind Therapeutika denkbar, die in Zukunft die überwiegend genetisch orientierten Therapieansätze zur Hochregulation der SMN-Expression bei SMA-Patienten über einen von der Genetik unabhängigen Wirkmechanismus unterstützen können.