6 resultados para BLOQUEO NEUROMUSCULAR-UTILIZACION
em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha
Resumo:
The establishment of appropriate synapses between neurons and their target cells is an essential requirement for the formation of functional neuronal circuits. However, there is very little insight into the mechanisms underlying de novo formation of synapses and synaptic terminals. To identify novel genes involved in signalling or structural aspects of these processes I capitalised on possibilities provided by the model organism Drosophila. Thus, I contributed to a screen of a collection of third chromosomal mutations (Salzberg et al., 1997, Genetics 147, 1723ff.) selecting those mutant strains displaying structural defects of Drosophila neuromuscular junctions (NMJ). Carrying out genetic mapping experiments, I could assign 7 genes to interesting candidate mutations. All 7 mutations selected in this process cause size alterations of the embryonic NMJ, and one shows additional disturbances in the distribution of synaptic markers. 4 of these turned out to be transcription factors, not falling into the remit of this project. Only for one of these, the neuronal transcription factor Castor, I could show that its overgrown mutant NMJ phenotype is due to an increase in the number of motorneurons. The remaining genes encode a potential nitrophenylphosphatase, the translation initiation factor eIF4AIII, and a novel protein Waharan. Unfortunately, the nitophenylphosphatase gene was identified too late to carry out functional studies in the context of this project, but potential roles are discussed. eIF4AIII promotes NMJ size tempting to speculate that local translation at the NMJ is affected. I found that the synaptic scaffolding molecule Discs large (Dlg; orthologue of PSD95) is upregulated at eIF4AIII mutant NMJs. Targeted upregulation of Dlg can not mimic the eIF4AIII mutant phenotype, but dlg mutations suppress it. Therefore, Dlg function is required but not sufficient in this context. My findings are discussed in detail, pointing out future directions. The main focus of this work is the completely novel gene waharan (wah), an orthologue of the human gene KIAA1267 encoding a big brain protein of likewise unknown structure and function. My studies show that mutations or RNAi knock-down of wah cause NMJ overgrowth and reveal additional crucial roles in the patterning of wing imginal discs. RNAi studies suggest Wah to be required pre- and postsynaptically at NMJs and, consistently, wah is transcribed in the nervous system and muscles. Anti-Wah antisera were produced but could no longer be tested here, but preliminary studies with newly generated HA-targeted constructs suggest that Wah localises at NMJs and in neuronal nuclei. In silico analyses predict Wah to be structurally related to the Rad23-family of proteins, likely to target ubiquitinated proteins to the proteasome for degradation (Chen et al., 2002, Mol Cell Biol 22, 4902ff.) . In agreement with this prediction, poly-ubiquitinated proteins were found to accumulate in the absence of wah function, and wah-like mutant phenotypes were induced in NMJs and wing discs by knocking down proteasome function. My analysis further revealed that poly-ubiquitinated proteins are reduced in nuclei of wah mutant neurons and muscles, suggesting that Wah may play additional roles in ubiquitin-mediated nuclear import. Taken together, this study has uncovered a number of interesting candidate genes required for the de novo formation of Drosophila NMJs. 3 of these genes fell into the focus of this project. As discussed in detail, discovery of these genes and insights gained into their function have high potential to be translatable into vertebrate systems.
Resumo:
Wir präsentieren zwei Techniken, mit deren Hilfe es erstmals möglich ist, zentralnervöse Synapsen im Zentralen Nervensystem (ZNS) von Drosophila melanogaster reproduzierbar darzustellen und experimentellen Methoden zugänglich zu machen. Die erste Technik beruht auf dem UAS/Gal4-System und ermöglicht die Expression markierter synaptischer Proteine in bekannten reproduzierbaren Neuronen. Die zweite Technik beruht auf der Einzel-Zelltransplantation und erlaubt die reproduzierbare Visualisierung von Synapsen in allen neuralen Zell-Linien des Drosophila Bauchmark.Mit Hilfe dieser Techniken konnte gezeigt werden, dass Neuriten im Bauchmark von Drosophila mindestens drei unterschiedliche Kompartimente aufweisen: 1. Primäre, häufig transversal verlaufende Neurite ohne Output-Synapsen, 2. Seitenneurite von vermutlich rein postsynaptischer Natur und 3. Seitenneurite, die präsynaptisch spezialisierte Regionen aufweisen. Des Weiteren konnten wir nachweisen, dass die Seitenneurite von Motroneuronen im ZNS vermutlich rein postsynaptisch sind. Weitere Beobachtungen veranlassen uns zu der Hypothese, dass motorneuronale Seitenneurite in Drosophila homolog oder analog zu Dendriten in Vertebraten sein könnten.Mit Hilfe der Transplantationstechnik untersuchten wir weiterhin die Funktion des Gens kakapo im ZNS. Obwohl kakapo für die Entwicklung von Synapsen an der Neuromuskulären Verbindung wichtig ist, konnten wir im ZNS keinen Phänotyp feststellen. Dies legt nahe, dass zwischen der Entwicklung von periphären und zentralnervösen Synapsen klare Unterschiede bestehen.
Resumo:
The nervous system is the most complex organ in animals and the ordered interconnection of neurons is an essential prerequisite for normal behaviour. Neuronal connectivity requires controlled neuronal growth and differentiation. Neuronal growth essentially depends on the actin and microtubule cytoskeleton, and it has become increasingly clear, that crosslinking of these cytoskeletal fractions is a crucial regulatory process. The Drosophila Spectraplakin family member Short stop (Shot) is such a crosslinker and is crucial for several aspects of neuronal growth. Shot comprises various domains: An actin binding domain, a plakin-like domain, a rod domain, calcium responsive EF-hand motifs, a microtubule binding Gas2 domain, a GSR motif and a C-terminal EB1aff domain. Amongst other phenotypes, shot mutant animals exhibit severely reduced dendrites and neuromuscular junctions, the subcellular compartmentalisation of the transmembrane protein Fasciclin2 is affected, but it is also crucially required in other tissues, for example for the integrity of tendon cells, specialised epidermal cells which anchor muscles to the body wall. Despite these striking phenotypes, Shot function is little understood, and especially we do not understand how it can carry out functions as diverse as those described above. To bridge this gap, I capitalised on the genetic possibilities of the model system Drosophila melanogaster and carried out a structure-function analysis in different neurodevelopmental contexts and in tendon cells. To this end, I used targeted gene expression of existing and newly generated Shot deletion constructs in Drosophila embryos and larvae, analyses of different shot mutant alleles, and transfection of Shot constructs into S2 cells or cultured fibroblasts. My analyses reveal that a part of the Shot C-terminus is not essential in the nervous system but in tendon cells where it stabilises microtubules. The precise molecular mechanism underlying this activity is not yet elucidated but, based on the findings presented here, I have developed three alternative testable hypothesis. Thus, either binding of the microtubule plus-end tracking molecule EB1 through an EB1aff domain, microtubulebundling through a GSR rich motif or a combination of both may explain a context-specific requirement of the Shot C-terminus for tendon cell integrity. Furthermore, I find that the calcium binding EF-hand motif in Shot is exclusively required for a subset of neuronal functions of Shot but not in the epidermal tendon cells. These findings pave the way for complementary studies studying the impact of [Ca2+] on Shot function. Besides these differential requirements of Shot domains I find, that most Shot domains are required in the nervous system and tendon cells alike. Thus the microtubule Gas2 domain shows no context specific requirements and is equally essential in all analysed cellular contexts. Furthermore, I could demonstrate a partial requirement of the large spectrin-repeat rod domain of Shot in neuronal and epidermal contexts. I demonstrate that this domain is partially required in processes involving growth and/or tissue stability but dispensable for cellular processes where no mechanical stress resistance is required. In addition, I demonstrate that the CH1 domain a part of the N-terminal actin binding domain of Shot is only partially required for all analysed contexts. Thus, I conclude that Shot domains are functioning different in various cellular environments. In addition my study lays the base for future projects, such as the elucidation of Shot function in growth cones. Given the high degree of conservation between Shot and its mammalian orthologues MACF1/ACF7 and BPAG1, I believe that the findings presented in this study will contribute to the general understanding of spectraplakins across species borders.
Resumo:
Diese Arbeit charakterisiert die Funktion und das Expressionmuster der beiden Zinkfinger-Homöodomänentranskriptionsfaktoren zfh1 und zfh2 von Drosophila melanogaster. Das zfh2 Gen wurde hierbei vor allem molekular charakterisiert. Es wurden eine Vielzahl möglicher Spleißformen identifiziert, welche das regulatorische Potential von Zfh2 enorm erweitern. Für Überexpressionsexperimente wurde zudem erstmalig die cDNA des längsten zfh2-Transkriptes kloniert. Durch Analysen an zfh1 Mutanten konnte gezeigt werden, dass zfh1 sowohl notwendig ist für die embryonale Entwicklung von Motoneuronen, als auch das larvale Wachstum motoneuronaler Endplatten reguliert. Wegen weit reichender pleiotroper Effekte, die zfh1 Funktionsverlustmutanten haben, war es notwendig, neben dem Einsatz hypomorpher Allele auf die Analyse genetischer Mosaike auszuweichen. Die als MARCM-Technik (Lee und Luo, 1999) bezeichnete Methode zur Erzeugung genetischer Mosaike wurde modifiziert um in dieser Arbeit erstmals für die Analyse mutanter larvaler Motoneurone eingesetzt werden zu können. Weitergehend konnte gezeigt werden, dass Zfh1 notwendig ist für die larvale Expression des Neuropeptides FMRFamid. Anhand von Sequenzvergleichen und durch Verwendung eines fmrfamid-Promoterkonstruktes (Benveniste et al., 1998) konnten Hinweise dafür gesammelt werden, dass die Zfh1-abhängige Regulation sehr wahrscheinlich direkter Natur ist. Bei fmrfamid handelt es sich somit um das erste identifizierte neurale Zielgen von Zfh1, an dem sich zudem modellhaft der molekulare Wirkmechanismus von Zfh1 erforschen lässt.
Resumo:
Aggregation oder Überexpression der Transmembran-Isoform des extrazellulären Matrix-Proteoglycans Agrin in Neuronen führt zur Bildung zahlreicher filopodienartiger Fortsätze auf Axonen und Dendriten. Ähnliche Fortsätze können auch durch Überexpression von Transmembran-Agrin in verschiedenen nicht-neuronalen Zelllinien induziert werden. Untersuchungen zu dieser Fortsatz-induzierenden Aktivität in Neuronen und nicht-neuronalen Zellen zeigen, dass der extrazelluläre Teil von Transmembran-Agrin für die Fortsatzbildung notwendig ist. In dieser Arbeit wurde mittels verschiedener Deletions- und Mutationskonstrukte der Bereich zwischen den Cysteinen C535 und C567 der siebten Follistatin-ähnlichen Domäne von Transmembran-Agrin als essentiell für die Bildung der filopodienartigen Fortsätze identifiziert. Die siebte Follistatin-ähnliche Domäne konnte durch die erste oder sechste, jedoch nicht durch die achte Follistatin-ähnliche Domäne funktionell ersetzt werden, was für eine funktionelle Redundanz bei einigen Follistatin-ähnlichen Domänen Agrins spricht. Zudem scheint eine kritische Distanz der siebten Follistatin-ähnlichen Domäne zur Plasmamembran für die Fortsatzbildung wichtig zu sein. Diese Ergebnisse zeigen, dass unterschiedliche Regionen innerhalb Agrins für die Bildung der Synapse an der neuromuskulären Endplatte und der Fortsätze im Zentralnervensystem verantwortlich sind, und deuten auf eine Funktion der Follistatin-ähnlichen Domänen Agrins bei der Entwicklung des Zentralnervensystems hin.
Comparative functional analysis of factors controlling glial differentiation in Drosophila and mouse
Resumo:
The present study is a comparative functional analysis of three factors controlling glial differentiation in mouse (Fyn Src kinase, hnRNPF/H and NG2) and their homologues in Drosophila (Src42A and 64B, Glorund and Kon-tiki (Kon)). In Drosophila, mutations in any of these genes were not associated with major embryonic neurodevelopmental phenotypes. Src kinases and Glorund were shown to be ubiquitously expressed, whereas kon mRNA showed selective expression in muscles as well as in central and peripheral glia. Kon was also shown to be expressed in L3 larvae with high levels of protein accumulation at the neuromuscular junction (NMJ) and in muscles in the form of speckles. Knockdown of kon in glia resulted in NMJ phenotypes, mainly characterized by a significant increase in bouton number and a reduction in α-Konecto staining intensity at the NMJ. From the three glial layers ensheathing the peripheral nervous system, subperineurial glial showed to be the one contributing the most to kon knockdown dependent NMJ phenotypes, while perineurial glia only had a minor role. The knockdown of kon in glia also showed to affect Glutamate receptor subunit (α-GluRIIA) clustering in the postsynapse, same as microtubule arrangement in the presynapse, as seen by α-Futsch pattern interruptions and alterations. kon knockdown in glia also resulted in impaired axonal transport, as seen by the accumulation of Bruchpilot-positive vesicles along the nerves, abnormal formation of neuronal derived protrusions and swellings, filled with vacuole-like structures. Glia number along the peripheral nerves is also reduced as consequence of kon knockdown. Muscle derived Kon was shown to accumulate at the NMJ and play a role in bouton consolidation and to interfere with phagocytosis of ghost boutons. NMJ bouton and branch number was also significantly increased in Kon overexpression in glia. The overexpression of Kon in glia also resulted in a massive elongation of the ventral nerve cord, which served in a suppressor screen to identify intracellular interaction partners of Kon in glia. It was shown that Kon is processed in glia and preliminary results indicate that the metalloendopeptidase Kuzbanian (the fly homologue of ADAM10) may play a role in the shedding of Konecto. In the present work, Kon is shown as a multifunctional gene with various roles in glia-neuron and glia-neuron-muscle interaction.