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In this thesis two genes involved in causing neurodegenerative phenotypes in Drosophila are described. olk (omb-like), a futsch allele, is a micotubule associated protein (MAP) which is homologous to MAP1B and sws (swiss cheese) a serine esterase of yet unknown function within the nervous system. The lack of either one of these genes causes progressive neurodegeneration in two different ways. The sws mutant is characterized by general degeneration of the adult nervous system, glial hyperwrapping and neuronal apoptosis. Deletion of NTE (neuropathy target esterase), the SWS homolog in vertebrates, has been shown to cause a similar pattern of progressive neural degeneration in mice. NTE reacts with organophosphates causing axonal degeneration in humans. Inhibition of vertebrate NTE is insufficient to induce paralyzing axonal degeneration, a reaction called "aging reaction" is necessary for the disease to set in. It is hypothesized that a second "non-esterase" function of NTE is responsible for this phenomenon. The biological function of SWS within the nervous system is still unknown. To characterize the function of this protein several transgenic fly lines expressing different mutated forms of SWS were established. The controlled expression of altered SWS protein with the GAL4/UAS system allowed the analysis of isolated parts of the protein that were altered in the respective constructs. The characterization of a possible non-esterase function was of particular interest in these experiments. One previously described aberrant SWS construct lacking the first 80 amino acids (SWSΔ1-80) showed a deleterious, dominant effect when overexpressed and was used as a model for organophosphate (OP) intoxication. This construct retains part of its detrimental effect even without catalytically active serine esterase function. This strongly suggests that there is another characteristic to SWS that is not defined solely by its serine esterase activity. Experiments analyzing the lipid contents of sws mutant, wildtype (wt) and SWS overexpressing flies gave valuable insights into a possible biological function of SWS. Phosphatidylcholine, a major component of cell membranes, accumulates in sws mutants whereas it is depleted in SWS overexpressing flies. This suggests that SWS is involved in phosphatidylcholine regulation. The produced α-SWS antibody made it possible to study the intracellular localization of SWS. Images of double stainings with ER (endoplasmic reticulum) markers show that SWS is in great part localized to the ER. This is consistent with findings of SWS/ NTE localization in yeast and mouse cells. The olk mutant also shows progressive neurodegeneration but it is more localized to the olfactory system and mushroom bodies. Regarding specific cell types it seemed that specifically the projection neurons (PNs) are affected. A behavioral phenotype consisting of poor olfactory memory compared to wt is also observed even before histologically visible neurodegeneration sets in. Considering that the projection neurons connect the antennal lobes to the mushroom bodies, widely regarded as the "learning center", this impairment was expected. Three mutants where identified (olk1-3) by complementation analysis with the previously known futschN94 allele and sequencing of the coding sequence of olk1 revealed a nonsense mutation early in the protein. Consistent with the predicted function of Futsch as a microtubule associated protein (MAP), abnormalities are most likely due to a defective microtubule network and defects in axonal transport. In histological sections a modified cytoskeletal network is observed and western blots confirm a difference in the amount of tubulin present in the olk1 mutant versus the wt. The elaboration of neuronal axons and dendrites is dependent on a functional cytoskeleton. Observation of transport processes in primary neural cultures derived from olk1 mutant flies also showed a reduction of mitochondrial transport. Interaction with the fragile X mental retardation gene (dfmr1) was observed with the olk mutant. A dfmr1/ olk1 double mutant shows an ameliorated phenotype compared to the olk1 single mutant. tau, another MAP gene, was also shown to be able to partially rescue the olk1 mutant.
Kathepsin B und L sind lysosomale Cysteinproteasen, die mit einer Reihe von pathologischen Prozessen, wie z. B. Cancerogenese, Tumorangiogenese und Neurodegeneration in Verbindung gebracht werden. Dennoch sind bis jetzt nur wenige Proteinsubstrate beschrieben. Ausserdem sind die Mechanismen der Regulation von Zellproliferation, -invasion und -apoptose durch Kathepsin B und L weitgehend unverstanden. Ein kombinierter Mangel beider Kathepsine führt zu einer frühzeitigen Neurodegeneration in Mäusen, die an neuronale Lipofuszinosen beim Menschen erinnert. In der vorliegenden Studie wurden Unterschiede in der Proteinzusammensetzung von wildtypischen und doppelt-defizienten Gehirnlysosomen quantifiziert. Eine Kombination von subzellulärer Fraktionierung und LC-MS/MS unter Verwendung einer isobarischen Markierung (iTraqTM) erlaubte uns die gleichzeitige Untersuchung von zerebralen Lysosomen aus Wildtyp und Kathepsin B-/-L-/- Mäusen. Ingesamt waren 19 Proteine signifikant erhöht in Kathepsin B-/-L-/- Lysosomen. Die meisten erhöhten Proteine wurden der neuronalen Biosynthese, regenerierenden bzw. endozytotischen oder lysosomalen Kompartimenten zugeordnet. Der Anstieg von Calcyon, dem Delta/Notch- verwandten epidermalen Wachstumsfaktor-Rezeptor (DNER), Neurochondrin, Phospholipase D3, Rab14, Cathepsin D und Apolipoprotein E lässt eine potentielle Rolle von Kathepsin B und L im Axonwachstum und der Synapsenbildung während der postnatalen Entwicklung des Zentralnervensystems vermuten.
Die HIV-Infektion des Gehirns induzierte eine Vielzahl neurologischer und neuropsychiatrischer Veränderungen, die gemeinsam als HIV-assoziierte Demenz bezeichnet werden. Insbesondere eine Beteiligung der glutamate-vermittelten Toxizität wird im Rahmen der HIV-Demenz diskutiert. Die vorliegende Arbeit verwendete das wichtigste Tiermodell der HIV-Infektion, mit simianen Immundefizienzviren (SIV) infizierte Rhesusaffen, um die komplexen Wechselwirkungen zwischen Immunaktivierung und adaptiven Veränderungen der glutamatergen Synapse und ihrer Umgebung zu untersuchen. Mittels einer Microarrayanalyse wurden allgemein Unterscheide im Genexpressionsprofil der Basalganglien von Rhesusaffen während dem Fortschreiten der Infektion erfasst. Die Ergebnisse zeigten Unterschiede in der transkriptionalen Regulation zwischen Chinesischen und Indischen Makakkensubspezies, sowie ein einzigartig differenziertes Genexpressionsmuster als Antwort auf die SIV-Infektion selbst. Um adaptive Veränderungen in den funktionalen Elementen der glutamatergen Synapse weiter zu charakterisieren, wurde die Expression der N-methyl-D-aspartat-Rezeptoruntereinheiten gemessen, wobei ein progressiver Verlust der Untereinheitenexpression im Putamen sowie ein differenziellen Expressionsmuster in Abhängigkeit sowohl von der Makakkensubspezies sowie von der Hirnregion im Nucleus accumbens SIV-infizierter Rhesusaffen festgestellt wurde. Außerdem konnte die vorliegende Arbeite zum ersten Mal eine Störung der exzitatorischen Aminosäuretransporter, dem wichtigsten Glutamatwiederaufnahmesystem, im Putamen, aber nicht im Nucleus accumbens, während der SIV-Infektion nachweisen. Zuvor durchgeführte Arbeiten wiesen darauf hin, dass neurochemischen Dysfunktionen unter Umständen das Ergebnis einer indirekten Toxizität vermittelt durch aktivierte Mikroglia und der daraus resultierenden Ausschüttung schädlicher Faktoren sein könnten. Entsprechend zeigten unsere Daten einen Anstieg in der MHC-II- und TNF-alpha-Expression bereits während der asymptomatischen Phase, und eine noch deutlichere Heraufregulierung in AIDS-Tieren. Zusammenfassend weist die vorliegen Arbeit auf komplexe und kombinierte Mechanismen von einem Anstieg in der Glutamatkonzentration mit einer Dysregulation der NMDA-Rezeptorfunktion sowie der Glutamatwiederaufnahmesysteme verursacht durch eine Immunaktivierung hin. Außerdem konnte in Versuchen zur pharmakologischen Beeinflussung der glutamatergen Synapse mittels dopaminerger Substanzen, NMDAR-Antagonisten und Antioxidantien eine Verbesse-rung der neurochemischen Funktion durch den nichtkompetitiven Antagonisten Memantin und die Antioxidantien Melatonin sowie N-Acetylcystein gezeigt werden. Hingegen trugen die Ergebnisse mit dem MAO-B-Inhibitor Selegilin weiter zu Bedenken zur Sicherheit und Effizienz dopaminerger Substanzen in der Behandlung von HIV-Patienten bei. Außerdem zeigte die vorliegende Arbeit, dass Memantin spezifisch die mRNA- und Proteinexpression des Neurotrophins BNDF heraufregulierte und weist somit auf eine neuartige pharmakologische Wirkung Antidementivums hin. In einer ergänzenden Studie wurden Schritte zur Entwicklung und Verbesserung adeno-assoziierten viraler und foamyviraler Vektoren, die shRNAs für die effiziente Ausschaltung der Expression des murinen und humanen Dopamintransporters, durchgeführt. Es wurden verschieden virale Vektorplasmide kloniert, Effektormoleküle mit einer hohen Knockdown-Aktivität identifiziert, und infektiöse rekombinante Viren hergestellt. Zudem konnte die Expression des humanen Dopamintransporters auf Lymphozyten bestätigt werden. Diese Ergebnisse werden die Entwicklung transgener Tiere und Zelllinien erleichtern und tragen so zur Analyse der natürlichen dopaminergen Neurotransmission in der psychiatrischen Forschung bei, wobei die durch endogene Anpassungen der dopaminerge Systeme in klassischen Knockout-Systemen hervorgerufenen Schwierigkeiten umgangen werden können.
The neuronal ceroid lipofuscinoses (NCLs) are fatal neurodegenerative disorders in which the visual system is affected in early stages of disease. A typical accompanying feature is neuroinflammation, the pathogenic impact of which is presently unknown. In this study, the role of inflammatory cells in the pathogenesis was investigated in Palmitoyl-protein thioesterase 1-deficient (Ppt1-/-) and Ceroidlipofuscinosis, neuronal 3-deficient (Cln3-/-) mice, models of the infantile and juvenile forms of NCL, respectively. Focusing predominantly on the visual system, an infiltration of CD8+ cytotoxic Tlymphocytes and an activation of microglia/macrophage-like cells was observed early in disease. To analyze the pathogenic impact of lymphocytes, Ppt1-/- mice were crossbred with mice lacking lymphocytes (Rag1-/-) and axonal transport, perturbation and neuronal survival were scored. Lack of lymphocytes led to a significant amelioration of neuronal disease and reconstitution experiments revealed a crucial role of CD8+ cytotoxic T-lymphocytes. Lack of lymphocytes also caused an improved clinical phenotype and extended longevity. To investigate the impact of microglia/macrophage-like cells, Ppt1-/- and Cln3-/- mice were crossbred with mice lacking sialoadhesin (Sn-/-), a monocyte lineage-restricted cell adhesion molecule important for interactions between macrophage-like cells and lymphocytes. Similar to the lack of lymphocytes, absence of sialoadhesin significantly ameliorated the disease in Ppt1-/- and Cln3-/- mice. Taken together, both T-lymphocytes and microglia/macrophage-like cells were identified as pathogenic mediators in two distinct forms of fatal inherited neurodegenerative storage disorders. These studies expand the concept of secondary inflammation as a common pathomechanistic feature in some neurological diseases and provide novel insights that may be crucial for developing treatment strategies for different forms of NCL.
Multiple sclerosis (MS) is an autoimmune disorder of the central nervous system (CNS) and characterized by the infiltration of immune cells, demyelination and axonal loss. Loss of axons and nerve fiber pathology are widely accepted as correlates of neurological disability. Hence, it is surprising that the development of neuroprotective therapies has been neglected for a long time. A reason for this could be the diversity of the underlying mechanisms, complex changes in nerve fiber pathology and the absence of biomarkers and tools to quantify neuroregenerative processes. Present therapeutic strategies are aimed at modulating or suppressing the immune response, but do not primarily attenuate axonal pathology. Yet, target-oriented neuroprotective strategies are essential for the treatment of MS, especially as severe damage of nerve fibers mostly occurs in the course of disease progression and cannot be impeded by immune modulatory drugs. This review shall depict the need for neuroprotective strategies and elucidate difficulties and opportunities.
Voltage-gated calcium channels (VGCCs) are widely distributed within the central nervous system (CNS) and presumed to play an important role in the pathophysiology of a broad spectrum of CNS disorders including Alzheimer’s and Parkinson’s disease as well as multiple sclerosis. Several calcium channel blockers have been in clinical practice for many years so that their toxicity and side effects are well studied. However, these drugs are primarily used for the treatment of cardiovascular diseases and most if not all effects on brain functions are secondary to peripheral effects on blood pressure and circulation. While the use of calcium channel antagonists for the treatment of CNS diseases therefore still heavily depends on the development of novel strategies to specifically target different channels and channel subunits, this review is meant to provide an impulse to further emphasize the importance of future research towards this goal.
SLC2A3 encodes the predominantly neuronal glucose transporter 3 (GLUT3), which facilitates diffusion of glucose across plasma membranes. The human brain depends on a steady glucose supply for ATP generation, which consequently fuels critical biochemical processes, such as axonal transport and neurotransmitter release. Besides its role in the central nervous system, GLUT3 is also expressed in nonneural organs, such as the heart and white blood cells, where it is equally involved in energy metabolism. In cancer cells, GLUT3 overexpression contributes to the Warburg effect by answering the cell's increased glycolytic demands. The SLC2A3 gene locus at chromosome 12p13.31 is unstable and prone to non‐allelic homologous recombination events, generating multiple copy number variants (CNVs) of SLC2A3 which account for alterations in SLC2A3 expression. Recent associations of SLC2A3 CNVs with different clinical phenotypes warrant investigation of the potential influence of these structural variants on pathomechanisms of neuropsychiatric, cardiovascular, and immune diseases. In this review, we accumulate and discuss the evidence how SLC2A3 gene dosage may exert diverse protective or detrimental effects depending on the pathological condition. Cellular states which lead to increased energetic demand, such as organ development, proliferation, and cellular degeneration, appear particularly susceptible to alterations in SLC2A3 copy number. We conclude that better understanding of the impact of SLC2A3 variation on disease etiology may potentially provide novel therapeutic approaches specifically targeting this GLUT.
Targeting neuroinflammation in models for infantile and juvenile forms of neuronal ceroid lipofuscinosis (NCL, CLN disease) with the clinically established immunomodulators fingolimod and teriflunomide significantly attenuates the neurodegenerative phenotype when applied preventively, i.e. before the development of substantial neural damage and clinical symptoms. Here, we show that in a mouse model for the early onset and rapidly progressing CLN1 form, more complex clinical phenotypes like disturbed motor coordination and impaired visual acuity are also ameliorated by immunomodulation. Moreover, we show that the disease outcome can be attenuated even when fingolimod and teriflunomide treatment starts after disease onset, i.e. when neurodegeneration is ongoing and clinical symptoms are detectable. In detail, treatment with either drug led to a reduction in T-cell numbers and microgliosis in the CNS, although not to the same extent as upon preventive treatment. Pharmacological immunomodulation was accompanied by a reduction of axonal damage, neuron loss and astrogliosis in the retinotectal system and by reduced brain atrophy. Accordingly, the frequency of myoclonic jerks and disturbed motor coordination were attenuated. Overall, disease alleviation was remarkably substantial upon therapeutic treatment with both drugs, although less robust than upon preventive treatment. To test the relevance of putative immune-independent mechanisms of action in this model, we treated CLN1 mice lacking mature T- and B-lymphocytes. Immunodeficient CLN1 mice showed, as previously reported, an improved neurological phenotype in comparison with genuine CLN1 mice which could not be further alleviated by either of the drugs, reflecting a predominantly immune-related therapeutic mechanism of action. The present study supports and strengthens our previous view that repurposing clinically approved immunomodulators may alleviate the course of CLN1 disease in human patients, even though diagnosis usually occurs when symptoms have already emerged.
Symptomatic treatments are available for Parkinson's disease and Alzheimer's disease. An unmet need is cure or disease modification. This review discusses possible reasons for negative clinical study outcomes on disease modification following promising positive findings from experimental research. It scrutinizes current research paradigms for disease modification with antibodies against pathological protein enrichment, such as α-synuclein, amyloid or tau, based on post mortem findings. Instead a more uniform regenerative and reparative therapeutic approach for chronic neurodegenerative disease entities is proposed with stimulation of an endogenously existing repair system, which acts independent of specific disease mechanisms. The repulsive guidance molecule A pathway is involved in the regulation of peripheral and central neuronal restoration. Therapeutic antagonism of repulsive guidance molecule A reverses neurodegeneration according to experimental outcomes in numerous disease models in rodents and monkeys. Antibodies against repulsive guidance molecule A exist. First clinical studies in neurological conditions with an acute onset are under way. Future clinical trials with these antibodies should initially focus on well characterized uniform cohorts of patients. The efficiency of repulsive guidance molecule A antagonism and associated stimulation of neurogenesis should be demonstrated with objective assessment tools to counteract dilution of therapeutic effects by subjectivity and heterogeneity of chronic disease entities. Such a research concept will hopefully enhance clinical test strategies and improve the future therapeutic armamentarium for chronic neurodegeneration.
Hereditary retinal degenerations like retinitis pigmentosa (RP) are among the leading causes of blindness in younger patients. To enable in vivo investigation of cellular and molecular mechanisms responsible for photoreceptor cell death and to allow testing of therapeutic strategies that could prevent retinal degeneration, animal models have been created. In this study, we deeply characterized the transcriptional profile of mice carrying the transgene rhodopsin V20G/P23H/P27L (VPP), which is a model for autosomal dominant RP. We examined the degree of photoreceptor degeneration and studied the impact of the VPP transgene-induced retinal degeneration on the transcriptome level of the retina using next generation RNA sequencing (RNASeq) analyses followed by weighted correlation network analysis (WGCNA). We furthermore identified cellular subpopulations responsible for some of the observed dysregulations using in situ hybridizations, immunofluorescence staining, and 3D reconstruction. Using RNASeq analysis, we identified 9256 dysregulated genes and six significantly associated gene modules in the subsequently performed WGCNA. Gene ontology enrichment showed, among others, dysregulation of genes involved in TGF-β regulated extracellular matrix organization, the (ocular) immune system/response, and cellular homeostasis. Moreover, heatmaps confirmed clustering of significantly dysregulated genes coding for components of the TGF-β, G-protein activated, and VEGF signaling pathway. 3D reconstructions of immunostained/in situ hybridized sections revealed retinal neurons and Müller cells as the major cellular population expressing representative components of these signaling pathways. The predominant effect of VPP-induced photoreceptor degeneration pointed towards induction of neuroinflammation and the upregulation of neuroprotective pathways like TGF-β, G-protein activated, and VEGF signaling. Thus, modulation of these processes and signaling pathways might represent new therapeutic options to delay the degeneration of photoreceptors in diseases like RP.