@article{HeisswolfObermaierPoethke2005, author = {Heisswolf, Annette and Obermaier, Elisabeth and Poethke, Hans-Joachim}, title = {Selection of large host plants for oviposition by a monophagous leaf beetle: nutritional quality or enemy-free space?}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-47728}, year = {2005}, abstract = {1. Oviposition site selection is crucial for the reproductive success of herbivorous insects. According to the preference-performance hypothesis, females should oviposit on host plants that enhance the performance of their offspring. More specifically, the plant vigour hypothesis predicts that females should prefer large and vigorously growing host plants for oviposition and that larvae should perform best on these plants. 2. The present study examined whether females of the monophagous leaf beetle Cassida canaliculata Laich. (Coleoptera: Chrysomelidae) prefer to oviposit on large host plant individuals of the meadow clary and whether large host plants are of higher nutritional quality than small host plants. Subsequently, it was tested whether the female preference correlates with offspring performance and survival. 3. In the field, females preferred large host plant individuals for oviposition and host plant quality, i.e. leaf nitrogen content, was significantly higher in leaves of large than of small host plants. 4. In the laboratory, larval development time was shorter on leaves of large host plant individuals than on small host plant individuals, but this could not be shown in the field. 5. However, a predator-exclusion experiment in the field resulted in a higher survival of larvae on large host plants than on small host plants when all predators had free access to the plants. On caged host plants there was no difference in survival of larvae between plant size categories. 6. It is concluded that females of C. canaliculata select oviposition sites that enhance both performance and survival of their offspring, which meets the predictions of the plant vigour hypothesis.}, subject = {Insekten}, language = {en} } @phdthesis{Groh2005, author = {Groh, Claudia}, title = {Environmental influences on the development of the female honeybee brain Apis mellifera}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-17388}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2005}, abstract = {F{\"u}r die Honigbiene spielt der Geruchssinn eine entscheidende Rolle bei der Kommunikation innerhalb des Sozialstaates. Kastenspezifische, auf uweltbedingten Einfl{\"u}ssen basierende sowie altersbedingte Unterschiede im olfaktorisch gesteuerten Verhalten liefern ein hervorragendes Modellsystem f{\"u}r diese Studie, um die Entwicklung und Funktion neuronaler Plastizit{\"a}t im olfaktorischen System zu untersuchen. Diese Studie konzentriert sich auf Unterschiede zwischen K{\"o}niginnen und Arbeiterinnen, den beiden weiblichen Kasten innerhalb des Bienestaates, sowie auf umweltbedingte Plastizit{\"a}t. Diploide Eier, aus denen sich K{\"o}niginnen und Arbeiterinnen entwickeln, sind genetisch identisch. Dennoch entwickeln sich K{\"o}niginnen wesentlich schneller zum Adulttier als Arbeiterinnen, sind als Imago gr{\"o}ßer, leben wesentlich l{\"a}nger und zeigen andere Verhaltensweisen. Diese Unterschiede werden durch eine differentielle larvale F{\"u}tterung initiiert. Im Anschluss an das Larvenstadium und somit nach erfolgter Kastendetermination, entwickeln sich die Bienen {\"u}ber eine Puppenphase (verdeckelte Phase) zum Imago. Adulte Bienen klimatisieren das zentrale Brutareal auf einer mittleren Temperatur von 35°C konstant. Bienen, die bei niedrigeren Temperaturen innerhalb des physiologisch relevanten Bereichs aufwachsen, weisen Defizite im olfaktorischen Lernverhalten und in der Tanzkommunikation auf. M{\"o}gliche neuronale Korrelate f{\"u}r altersbedingte, temperatur- und kastenspezifische Unterschiede im olfaktorisch gesteuerten Verhalten sollten in dieser Arbeit betrachtet werden. Die strukturellen Analysen konzentrierten sich dabei auf prim{\"a}re (Antennalloben) und sekund{\"a}re (Pilzk{\"o}rper-Calyces)olfaktorische Verarbeitungszentren im Gehirn von sich entwickelnden und adulten Tieren beider Kasten. Synchron verdeckelte Brutzellen beider Kasten wurden unter kontrollierten Bedingungen im Inkubator herangezogen. Neuroanatomische Untersuchungen wurden an fixierten Gewebeschnitten mittels einer Doppelfluoreszenzf{\"a}rbung mit Fluor-Phalloidin und anti-Synapsin Immuncytochemie durchgef{\"u}hrt. Diese Doppelmarkierung erm{\"o}glichte die Visualisierung und Quantifizierung individueller Synapsenkomplexe (Microglomeruli) im Pilzk{\"o}rper-Calyx. Phalloidin bindet an verschiedene F-Aktin Isoformen und kann zum Nachweis von F-Aktin im Insektennervensystem verwendet werden. F-Aktin wird w{\"a}hrend der Entwicklung in Wachstumskegeln und in adulten Gehirnen in pr{\"a}synaptischen Endigungen und dendritischen Dornen exprimiert. Pr{\"a}synaptische Elemente wurden durch den Einsatz eines spezifischen Antik{\"o}rpers gegen das Drosophila-Vesikeltransportprotein Synapsin I charakterisiert. Mit Hilfe der konfokalen Laser-Scanning Mikroskopie wurde die exakte r{\"a}umliche Zuordnung der Fluoreszenzsignale anhand optischer Schnitte durch die Pr{\"a}parate realisiert. Anhand dieser Methodik konnten erstmals {\"u}ber reine Volumenanalysen hinausgehende Messungen zur synaptischen Strukturplastizit{\"a}t im Pilzk{\"o}rper-Calyx durchgef{\"u}hrt werden. Die Untersuchungen an Gehirnen in den verschiedenen Puppenstadien zeigten Unterschiede im Entwicklungsverlauf der Gehirne mit dem Fokus auf die Bildung antennaler Glomeruli und calycaler Microglomeruli. Unterschiede in der Gehirnentwicklung verdeutlichten die ontogenetische Plastizit{\"a}t des Gehirns der Honigbiene. Entsprechend der k{\"u}rzeren Puppenphase der K{\"o}niginnen bildeten sich sowohl antennale Glomeruli als auch alle Untereinheiten (Lippe, Collar, Basalring) des Calyx etwa drei Tage fr{\"u}her aus. Direkt nach dem Schlupf zeigten quantitative Analysen innerhalb der Pilzk{\"o}rper-Calyces eine signifikant geringere Anzahl an Microglomeruli bei K{\"o}niginnen. Diese neuronale Strukturplastizit{\"a}t auf verschiedenen Ebenen der olfaktorischen Informationsverarbeitung korreliert mit der kastenspezifischen Arbeitsteilung. Die Arbeit liefert Erkenntnisse {\"u}ber den Einfluss eines wichtigen kontrollierten Umweltparameters, der Bruttemperatur, w{\"a}hrend der Puppenphase auf die synaptische Organisation der adulten Pilzk{\"o}rper-Calyces. Bereits geringe Unterschiede in der Aufzuchtstemperatur (1°C) beeinflussten signifikant die Anzahl von Microglomeruli in der Lippenregion des Calyx beider weiblicher Kasten. Die maximale Anzahl an MG entwickelte sich bei Arbeiterinnen bei 34.5°C, bei K{\"o}niginnen aber bei 33.5°C. Neben dieser entwicklungsbedingten neuronalen Plastizit{\"a}t zeigt diese Studie eine starke altersbedingte Strukturplastizit{\"a}t der MG w{\"a}hrend der relativ langen Lebensdauer von Bienenk{\"o}niginnen. Hervorzuheben ist, dass die Anzahl an MG in der olfaktorischen Lippenregion mit dem Alter anstieg (~55\%), in der angrenzenden visuellen Collarregion jedoch abnahm (~33\%). Die in der vorliegenden Arbeite erstmals gezeigte umweltbedingte Entwicklungsplastizit{\"a}t sowie altersbedingte synaptische Strukturplastizit{\"a}t in den sensorischen Eingangsregionen der Pilzk{\"o}rper-Calyces k{\"o}nnte kasten- und altersspezifischen Anpassungen im Verhalten zugrunde liegen.}, subject = {Biene}, language = {en} } @phdthesis{Pils2005, author = {Pils, Birgit}, title = {Insights into the evolution of protein domains give rise to improvements of function prediction}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-16805}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2005}, abstract = {The growing number of uncharacterised sequences in public databases has turned the prediction of protein function into a challenging research field. Traditional annotation methods are often error-prone due to the small subset of proteins with experimentally verified function. Goal of this thesis was to analyse the function and evolution of protein domains in order to understand molecular processes in the cell. The focus was on signalling domains of little understood function, as well as on functional sites of protein domains in general. Glucosaminidases (GlcNAcases) represent key enzymes in signal transduction pathways. Together with glucosamine transferases, they serve as molecular switches, similar to kinases and phosphatases. Little was known about the molecular function and structure of the GlcNAcases. In this thesis, the GlcNAcases were identified as remote homologues of N-acetyltransferases. By comparing the homologous sequences, I was able to predict functional sites of the GlcNAcase family and to identify the GlcNAcases as the first family member of the acetyltransferase superfamily with a distinct catalytic mechanism, which is not involved in the transfer of acetyl groups. In a similar approach, the sensor domain of a plant hormone receptor was studied. I was able to predict putative ligand-binding sites by comparing evolutionary constraints in functionally diverged subfamilies. Most of the putative ligand-binding sites have been experimentally confirmed in the meantime. Due to the importance of enzymes involved in cellular signalling, it seems impossible to find substitutions of catalytic amino acids that turn them catalytically inactive. Nevertheless, by scanning catalytic positions of the protein tyrosine phosphatase families, I found many inactive domains among single domain and tandem domain phosphatases in metazoan proteomes. In addition, I found that inactive phosphatases are conserved throughout evolution, which led to the question about the function of these catalytically inactive phosphatase domains. An analysis of evolutionary site rates of amino acid substitutions revealed a cluster of conserved residues in the apparently redundant domain of tandem phosphatases. This putative regulatory center might be responsible for the experimentally verified dimerization of the active and inactive domain in order to control the catalytic activity of the active phosphatase domain. Moreover, I detected a subgroup of inactive phosphatases, which presumably functions in substrate recognition, based on different evolutionary site rates within the phosphatase family. The characterization of these new regulatory modules in the phosphatase family raised the question whether inactivation of enzymes is a more general evolutionary mechanism to enlarge signalling pathways and whether inactive domains are also found in other enzyme families. A large-scale analysis of substitutions at catalytic positions of enzymatic domains was performed in this work. I identified many domains with inactivating substitutions in various enzyme families. Signalling domains harbour a particular high occurrence of catalytically inactive domains indicating that these domains have evolved to modulate existing regulatory pathways. Furthermore, it was shown that inactivation of enzymes by single substitutions happened multiple times independently in evolution. The surprising variability of amino acids at catalytic positions was decisive for a subsequent analysis of the diversity of functional sites in general. Using functional residues extracted from structural complexes I could show that functional sites of protein domains do not only vary in their type of amino acid but also in their structural location within the domain. In the process of evolution, protein domains have arisen from duplication events and subsequently adapted to new binding partners and developed new functions, which is reflected in the high variability of functional sites. However, great differences exist between domain families. The analysis demonstrated that functional sites of nuclear domains are more conserved than functional sites of extracellular domains. Furthermore, the type of ligand influences the degree of conservation, for example ion binding sites are more conserved than peptide binding sites. The work presented in this thesis has led to the detection of functional sites in various protein domains involved in signalling pathways and it has resulted in insights into the molecular function of those domains. In addition, properties of functional sites of protein domains were revealed. This knowledge can be used in the future to improve the prediction of protein function and to identify functional sites of proteins.}, subject = {Dom{\"a}ne }, language = {en} } @phdthesis{Schaefer2005, author = {Sch{\"a}fer, Matthias}, title = {Molecular mechanisms of floor plate formation and neural patterning in zebrafish}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-15789}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2005}, abstract = {The vertebrate spinal cord is composed of billions of neurons and glia cells, which are formed in a highly coordinated manner during early neurogenesis. Specification of these cells at distinct positions along the dorsoventral (DV) axis of the developing spinal cord is controlled by a ventrally located signaling center, the medial floor plate (MFP). Currently, the origin and time frame of specification of this important organizer are not clear. During my PhD thesis, I have analyzed the function of the novel secreted growth factor Midkine-a (Mdka) in zebrafish. In higher vertebrates, mdk and the related factor pleiotrophin (ptn) are widely expressed during embryogenesis and are implicated in a variety of processes. The in-vivo function of both factors, however, is unclear, as knock-out mice show no embryonic phenotype. We have isolated two mdk co-orthologs, mdka and mdkb, and one single ptn gene in zebrafish. Molecular phylogenetic analyses have shown that these genes evolved after two large gene block duplications. In contrast to higher vertebrates, zebrafish mdk and ptn genes have undergone functional divergence, resulting in mostly non-redundant expression patterns and functions. I have shown by overexpression and knock-down analyses that Mdka is required for MFP formation during zebrafish neurulation. Unlike the previously known MFP inducing factors, mdka is not expressed within the embryonic shield or tailbud but is dynamically expressed in the paraxial mesoderm. I used epistatic and mutant analyses to show that Mdka acts independently from these factors. This indicates a novel mechanism of Mdka dependent MFP formation during zebrafish neurulation. To get insight into the signaling properties of zebrafish Mdka, the function of both Mdk proteins and the candidate receptor Anaplastic lymphoma kinase (Alk) have been compared. Knock-down of mdka and mdkb resulted in the same reduction of iridophores as in mutants deficient for Alk. This indicates that Alk could be a putative receptor of Mdks during zebrafish embryogenesis. In most vertebrate species a lateral floor plate (LFP) domain adjacent to the MFP has been defined. In higher vertebrates it has been shown that the LFP is located within the p3 domain, which forms V3 interneurons. It is unclear, how different cell types in this domain are organized during early embryogenesis. I have analyzed a novel homeobox gene in zebrafish, nkx2.2b, which is exclusively expressed in the LFP. Overexpression, mutant and inhibitor analyses showed that nkx2.2b is activated by Sonic hedgehog (Shh), but repressed by retinoids and the motoneuron-inducing factor Islet-1 (Isl1). I could show that in zebrafish LFP and p3 neuronal cells are located at the same level along the DV axis, but alternate along the anteroposterior (AP) axis. Moreover, these two different cell populations require different levels of HH signaling and nkx2.2 activities. This provides new insights into the structure of the vertebrate spinal cord and suggests a novel mechanism of neural patterning.}, subject = {Zebrab{\"a}rbling}, language = {en} } @phdthesis{JimenezPearson2005, author = {Jim{\´e}nez-Pearson, Mar{\´i}a-Antonieta}, title = {Characterization of the mechanisms of two-component signal transduction involved in motility and chemotaxis of Helicobacter pylori}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-15698}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2005}, abstract = {Flagellen-basierte Motilit{\"a}t und Chemotaxis stellen essentielle Pathogenit{\"a}tsfaktoren dar, die f{\"u}r die erfolgreiche Kolonisierung der Magenschleimhaut durch H. pylori notwendig sind. Die Mechanismen der Regulation der Flagellensynthese und das Chemotaxis-System von H. pylori weisen trotz einiger {\"A}hnlichkeiten fundamentale Unterschiede zu den Systemen anderer Bakterien auf. In H. pylori ist die Flagellensynthese durch eine komplex regulierte Kaskade kontrolliert, die Regulatorkomponenten wie das Zweikomponentensystem HP244/FlgR, die Sigma Faktoren 54 und 28 und den Sigma Faktor28-Antagonisten FlgM enth{\"a}lt. Das Signal, welches {\"u}ber die Histidinkinase des Zweikomponentensystems HP244/FlgR die Expression der Sigma Faktor54-abh{\"a}ngigen Klasse 2 Flagellengene reguliert, ist bisher noch nicht bekannt. Allerdings konnte mit HP137 ein Protein identifiziert werden, das im „yeast two-hybrid" System sowohl mit der korrespondierenden Kinase HP244 des Flagellenregulators FlgR, als auch mit der Flagellenkomponente FlgE´ interagiert (Rain et al., 2001). In dieser Arbeit wurde eine m{\"o}gliche Rolle von HP137 in einem R{\"u}ckkopplungsmechanismus untersucht, welcher die Aktivit{\"a}t der Histidinkinase in der Flagellenregulation kontrollieren k{\"o}nnte. Obwohl die Deletion des ORF hp137 zu einer unbeweglichen Mutante f{\"u}hrte, legen die erfolglosen Komplementations Experimente, sowie die Beobachtung, dass HP137 in vitro keinen bedeutenden Effekt auf die Aktivit{\"a}t der Histidinkinase HP244 hat nahe, dass HP137 weder in H. pylori noch im nahe verwandten C. jejuni direkt an der Flagellenregulation beteiligt ist. Das Chemotaxis-System von H. pylori unterscheidet sich vom gutuntersuchten Chemotaxis-System der Enterobakterien in einigen Aspekten. Zus{\"a}tzlich zu dem CheY Response Regulator Protein (CheY1) besitzt H. pylori eine weitere CheY-artige Receiver-Dom{\"a}ne (CheY2) welche C-terminal an die Histidinkinase CheA fusioniert ist. Zus{\"a}tzlich finden sich im Genom von H. pylori Gene, die f{\"u}r drei CheV Proteine kodieren die aus einer N-terminalen Dom{\"a}ne {\"a}hnlich CheW und einer C-terminalen Receiver Dom{\"a}ne bestehen, w{\"a}hrend man keine Orthologen zu den Genen cheB, cheR, and cheZ findet. Um einen Einblick in den Mechanismus zu erhalten, welcher die chemotaktische Reaktion von H. pylori kontrolliert, wurden Phosphotransferreaktionen zwischen den gereinigten Signalmodulen des Zweikomponentensystems in vitro untersucht. Durch in vitro-Phosphorylierungsexperimente wurde eine ATP-abh{\"a}ngige Autophosphorylierung der bifunktionellen Histidinkinase CheAY2 und von CheA´, welches ein verk{\"u}rztes Derivat von ChAY2 ohne Receiver-Dom{\"a}ne darstellt, nachgewiesen. CheA´ zeigt eine f{\"u}r an der Chemotaxis beteiligte Histidinkinasen typische Phosphorylierungskinetik mit einer ausgepr{\"a}gten exponentiellen Phase, w{\"a}hrend die Phosphorylierungskinetik von CheAY2 nur eine kurze exponentielle Phase aufweist, gefolgt von einer Phase in der die Hydrolyse von CheAY2~P {\"u}berwiegt. Es wurde gezeigt, dass die Anwesenheit einer der CheY2 Dom{\"a}ne die Stabilit{\"a}t der phosphorylierten P1 Dom{\"a}ne im CheA Teil des bifunktionellen Proteins beeinflusst. Außerdem wurde gezeigt, dass sowohl CheY1 als auch CheY2 durch CheAY2 phosphoryliert werden und dass die drei CheV Proteine die Histidinkinase CheA´~P dephosphorylieren, wenn auch mit einer im Vergleich zu CheY1 und CheY2 geringeren Affinit{\"a}t. Außerdem ist CheA´ in der Lage seine Phosphatgruppen auf CheY1 aus C. jejuni und CheY aus E. coli zu {\"u}bertragen. Retrophosphorylierungsexperimente weisen darauf hin, dass CheY1~P die Phosphatgruppe zur{\"u}ck auf die Histidinkinase CheAY2 {\"u}bertragen kann und dass die CheY2-Dom{\"a}ne in dem bifunktionellen Protein CheAY2 als „Phosphat Sink" agiert der den Phosphorylierungszustand und damit die Aktivit{\"a}t des frei diffundierbaren Proteins CheY1 reguliert, das vermutlich es mit dem Flagellenmotor interagiert. Es konnte weiterhin gezeigt werden, dass die unabh{\"a}ngige Funktion der beiden Dom{\"a}nen CheA´ und CheY2 f{\"u}r eine normale chemotaktische Signalgebung in vivo nicht ausreicht. In dieser Arbeit wurden also Hinweise auf eine komplexe Kaskade Phosphat{\"u}bertragungsreaktionen im chemotaktischen System von H. pylori gefunden, welches {\"A}hnlichkeiten zu dem Syteme-Chemotaxis von S. meliloti aufweist an denen multiple CheY Proteine beteiligt sind. Die Rolle der CheV Proteine bleibt im Moment unklar, jedoch k{\"o}nnte es sein, dass sie an einer weiteren Feinregulierung der Phosphatgruppen{\"u}bertragungsreaktionen in diesem komplexen chemotaktischen System beteiligt sind}, subject = {Helicobacter pylori}, language = {en} } @phdthesis{Masek2005, author = {Masek, Pavel}, title = {Odor intensity learning in Drosophila}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-15546}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2005}, abstract = {It has been known for a long time that Drosophila can learn to discriminate not only between different odorants but also between different concentrations of the same odor. Olfactory associative learning has been described as a pairing between odorant and electric shock and since then, most of the experiments conducted in this respect have largely neglected the dual properties of odors: quality and intensity. For odorant-coupled short-term memory, a biochemical model has been proposed that mainly relies on the known cAMP signaling pathway. Mushroom bodies (MB) have been shown to be necessary and sufficient for this type of memory, and the MB-model of odor learning and short-term memory was established. Yet, theoretically, based on the MB-model, flies should not be able to learn concentrations if trained to the lower of the two concentrations in the test. In this thesis, I investigate the role of concentration-dependent learning, establishment of a concentration-dependent memory and their correlation to the standard two-odor learning as described by the MB-model. In order to highlight the difference between learning of quality and learning of intensity of the same odor I have tried to characterize the nature of the stimulus that is actually learned by the flies, leading to the conclusion that during the training flies learn all possible cues that are presented at the time. The type of the following test seems to govern the usage of the information available. This revealed a distinction between what flies learned and what is actually measured. Furthermore, I have shown that learning of concentration is associative and that it is symmetrical between high and low concentrations. I have also shown how the subjective quality perception of an odor changes with changing intensity, suggesting that one odor can have more than one scent. There is no proof that flies perceive a range of concentrations of one odorant as one (odor) quality. Flies display a certain level of concentration invariance that is limited and related to the particular concentration. Learning of concentration is relevant only to a limited range of concentrations within the boundaries of concentration invariance. Moreover, under certain conditions, two chemically distinct odorants could smell sufficiently similarly such, that they can be generalized between each other like if they would be of the same quality. Therefore, the abilities of the fly to identify the difference in quality or in intensity of the stimuli need to be distinguished. The way how the stimulus is analyzed and processed speaks in favor of a concept postulating the existence of two separated memories. To follow this concept, I have proposed a new form of memory called odor intensity memory (OIM), characterized it and compared it to other olfactory memories. OIM is independent of some members of the known cAMP signaling pathway and very likely forms the rutabaga-independent component of the standard two-odor memory. The rutabaga-dependent odor memory requires qualitatively different olfactory stimuli. OIM is revealed within the limits of concentration invariance where the memory test gives only sub-optimal performance for the concentration differences but discrimination of odor quality is not possible at all. Based on the available experimental tools, OIM seems to require the mushroom bodies the same as odor-quality memory but its properties are different. Flies can memorize the quality of several odorants at a given time but a newly formed memory of one odor interferes with the OIM stored before. In addition, the OIM lasts only 1 to 3 hours - much shorter than the odor-quality memory.}, subject = {Taufliege}, language = {en} } @phdthesis{Motsch2005, author = {Motsch, Isabell}, title = {Lamin A and lamin C are differentially dysfunctional in autosomal dominant Emery-Dreifuss muscular dystrophy}, url = {http://nbn-resolving.de/urn:nbn:de:bvb:20-opus-15360}, school = {Universit{\"a}t W{\"u}rzburg}, year = {2005}, abstract = {Emery-Dreifuss muscular dystrophy (EDMD) is a rare genetic disorder characterised by early contractures of the elbows, Achilles tendons and spine, slowly progressive muscle wasting and cardiomyopathy associated with cardiac conduction defect. The autosomal dominant form is caused by mutations in the LMNA gene which gives rise to lamin A and lamin C proteins by alternative splicing. These A-type lamins, together with B-type lamins, form the nuclear lamina, a network of intermediate filament proteins underlining the nuclear envelope. In order to ascertain the role lamin A and C separately contribute to the molecular phenotype, we analysed ten LMNA mutations and one single nucleotide polymorphism (SNP) in transfection studies in COS7 fibroblasts and, partially, in C2C12 myoblasts. The EGFP or DsRed2 tagged lamins were exogenously expressed either individually or both A-types together and examined by light and electron microscopy. The protein mobility of lamin A mutants was determined by FRAP analysis. Additionally, a co-immunoprecipitation binding assay of in vitro synthesised A-type lamins and emerin was performed.Eight of the LMNA mutations (R50S, R133P, E358K, E358K+C