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The long sought molecular function of membrane raft-associated flotillin proteins is slowly becoming resolved, partially owing to the increasing knowledge about their interaction partners. Being ubiquitously expressed and evolutionarily highly conserved, flotillins carry out important cellular functions, one of which is the regulation of signal transduction pathways. This study shows that the signaling adaptor protein fibroblast growth factor receptor substrate 2 (FRS2) directly interacts both in vivo and in vitro with flotillin-1 (flot-1). FRS2 is an important docking protein of many receptor tyrosine kinases. It regulates downstream signaling by forming molecular complexes with other adaptor proteins and tyrosine phosphatases, and seems to be a critical mediator of sustained extracellular signal regulated kinase (ERK) activity. Flot-1 has also been implicated in the regulation of ERK activity upon EGF and FGF stimuli. Furthermore, flot-1 forms signalosomes with EGFR and the downstream components of the MAP kinase pathway. The newly discovered interaction between FRS2 and flot-1 was shown to be mediated by the phosphotyrosine binding (PTB) domain and, to a lesser extent, the C-terminus (CT) of FRS2 and by the C-terminus of flot-1. Flot-1 coprecipitated together with FRS2 from murine tissues and cell lysates, demonstrating that this interaction also takes place in vivo. Interestingly, flot-2, which shows a high homology to flot-1 and forms stable oligomeric complexes with it, does not appear to directly interact with FRS2. Novel insights into the functional role of the interaction between flot-1 and FRS2 were provided by the results showing that depletion of flot-1 affects the cellular localization of FRS2. In hepatocytes stably depleted of flot-1, FRS2 appeared to be more soluble. Furthermore, upon pervanadate stimulation of the cells, a small fraction of FRS2 was recruited into detergent resistant membranes, but the recruitment did not take place in the absence of flot-1. Triggered by the same stimulus, a fraction of FRS2 was translocated to the nucleus independently of flot-1. Overexpression of FRS2 has previously been shown to result in increased ERK activation. However, in cells depleted of flot-1, FRS2 was not able to compensate for the compromised ERK activation after EGF or FGF stimulation. This might imply that FRS2 and flot-1 are functionally interconnected and that FRS2 resides upstream of flot-1. Taken together, the results presented here indicate that this complex may be involved in the control of signaling downstream of receptor tyrosine kinases and is important for ensuring a proper signaling response. In the absence of flot-1, increased Tyr phosphorylation of FRS2 was observed. It is known that Tyr and Thr phosphorylation of FRS2 are reciprocally regulated. Since ERK is a known executor of the FRS2 Thr phosphorylation, and ERK activity was shown to be severely diminished upon flot-1 depletion, the increased Tyr phosphorylation of FRS2 was in agreement with this and might be a direct consequence of a decreased ERK activity upon flot-1 depletion. FRS2 owes its name to the major and the first described function of this protein as a substrate for FGFR. PTB domain of FRS2 was published to constitutively bind the juxtamembrane domain of FGFR. In this study, the PTB domain was mapped to be involved in the constitutive interaction with flot-1 and the competition was shown to exist between flot-1 and FGFR1 for binding to FRS2. Another novel interaction partner of FRS2 was discovered in the present study. Cbl-associated protein (CAP) is an adaptor protein with three SH3 domains and it plays a role during insulin signaling by recruiting the signaling complex to lipid rafts. CAP was previously shown to interact with flot-1 via the SoHo domain, and this interaction was found to be crucial for the lipid raft recruitment of other signaling components. Both the PTB domain and CT of FRS2 were found to mediate the interaction with CAP, whereas in CAP, the SoHo domain, together with the third SH3 domain, seems to bind to FRS2. SH3 domains mediate the assembly of specific protein complexes by binding to proline rich sequences, several of which are present in FRS2. Due to overlapping interaction domains, FRS2 and flot-1 competed for the binding to CAP. However, the interaction with neither CAP nor flot-1 was necessary for the observed nuclear translocation of FRS2. Since CAP is expressed as several tissue- and developmental stage-specific isoforms, a further aim of this study was to analyze the expression of its isoforms in mouse embryonic fibroblasts (MEFs). Many new isoforms were discovered here which have not been described in the literature so far. They all contain the SoHo domain and three SH3 domains, but differ among themselves by the presence and length of a proline-rich region that preceeds the SoHo domain and by a novel 20-amino acid (AA) stretch between the second and the third SH3 domain. The length of the proline-rich region turned out to be an important factor determining the strength of the interaction with FRS2. The interaction was found to be weakened by the increasing length of this region. The new isoforms possessing the 20-AA stretch are specifically expressed in murine muscular tissues, with the highest level in the heart. During adipogenesis, we observed a shift in the abundance of the isoforms, in that only the isoforms without the insertion were shown to be upregulated on mRNA level. However, during myogenesis, preferentially expressed isoforms were those with the insertion. The collected data implicate that isoforms with the 20-AA insertion might be more ubiquitous in nondifferentiated/embryonic cells and that the observed "isoform-switch" might be dependent on the cell fate and differentiation state.
The capability of osmoadaptation is a prerequisite of organisms that live in an environment with changing salinities. Halobacillus halophilus is a moderately halophilic bacterium that grows between 0.4 and 3 M NaCl by accumulating both chloride and compatible solutes as osmolytes. Chloride is absolutely essential for growth and, moreover, was shown to modulate gene expression and activity of enzymes involved in osmoadaptation. The synthesis of different compatible solutes is strictly salinity- and growth phase-dependent. This unique hybrid strategy of H. halophilus will be reviewed here taking into account the recently published genome sequence. Based on identified genes we will speculate about possible scenarios of the synthesis of compatible solutes and the uptake of potassium ion which would complete our knowledge of the fine-tuned osmoregulation and intracellular osmolyte balance in H. halophilus.
Soluble guanylyl cyclase (sGC) is a cytosolic enzyme producing the intracellular messenger cyclic guanosine monophosphate (cGMP) on activation with nitric oxide (NO) which leads to the activation of GMP dependent protein kinases and to vasodilation. NO signaling may be affected by altered expression of sGC subunits, as has been shown in different pathological and physiological conditions and developmental stages. The molecular mechanisms underlying altered sGC expression in these and other conditions have not yet been revealed. Gene expression can also be regulated at the level of mRNA through alterations in translational efficiency and in mRNA stability. HuR (Human R) is a ubiquitously expressed member of the embryonic lethal abnormal vision (ELAV) family of RNA-binding proteins. Among other RNAs, there has been recent evidence that the expression of sGC is subject to post-transcriptional regulation by HuR. It has been shown that chronic hypertension induces changes in HuR expression and activity, which account for decreased sGC expression and activity in the aorta of hypertensive rats. This thesis should study was performed in an effort to provide some insight to the transcriptional and post-transcriptional regulation of sGC expression in a mammal, the rat. We investigated rat sGC alpha-1 transcriptional regulation in rat lung fibroblast (RLF-6) cells. The 3000bp 5' upstream region of the alpha-1 sGC gene was isolated and analyzed for promoter activity by using luciferase reporter constructs- Alpha3000 (with -2794 bp), Alpha1100 (-1092 bp), Alpha350 (-346 bp) and Alpha200 (-200 bp). The promoter activity was the highest in the 200bp construct (about 6-fold higher than Alpha3000) suggesting that this fragment contains all the crucial elements necessary to support basal transcription of the alpha-1 sGC gene. Analysis of the 200 bp of the 5’ UTR of the alpha-1 gene was performed using the MATINSPECTOR V2.2 software for putative transcription factors. The constructs containing the deleted sites for NFY and Sp1 showed a significant decrease in constitutive promoter activity by almost 80% and 60% respectively, implying that these transcription factors are crucial elements in the basal expression of the of sGC alpha-1 subunit. Treatment of RLF-6 cells with genistein 50 microM and mithramycinA 100 nM, known to inhibit the NFY and Sp1 binding to DNA respectively, reflected the same effects. Furthermore the cGMP content of the cells was significantly reduced by both inhibitors, almost completely by genistein, and by about 40 % by mithramycinA. Electrophoretic mobility-shift assay (EMSA) clearly showed the formation of multiple complexes with the biotinylated ODN (decoy oligodeoxynucleotide) probes for NFY and Sp1 when incubated with RLF-6 nuclear extract. A “supershift” observed in the presence of antibodies to the individual transcription factors confirmed that these factors were present in the shifted band, indeed. NFY and Sp1 are instrumental in several physiological and pathophysiological effects mediated by several growth factors in smooth muscle cells. Thus the regulation of the promoter, in response to serum, was also analysed. 10% foetal calf serum led to decreased alpha-1 sGC level as shown by western blots performed with rat aorta. Decreased sGC alpha-1 mRNA expression was observed in RLF-6 cells and cultured rat aortic smooth muscle cells incubated with FCS for 24 hours. This decrease was reflected in the promoter activity in RLF-6 cells using both Alpha3000 and Alpha200 constructs confirming that the regulation took place at promoter level. EMSA performed with nuclear extracts from FCS treated RLF-6 cells led to diminished binding to NFY, but to an enhanced binding to Sp1 site. We concluded that the factors Sp1 and NFY (the sites overlapping) compete for binding, and in the presence of FCS, it is Sp1 that binds stronger, and hence results in diminishing promoter activity. In order to delineate the post-transcriptional regulation of sGC alpha-1 subunit, studies were performed to demonstrate the regulation of expression of the mRNA stabilizing protein HuR. It has been observed that exposure of isolated rat aortic segments to the activator of adenylyl cyclase, forskolin, strongly reduced sGC alpha-1/beta-1 and HuR protein and mRNA expression in a time-dependent and actinomycin D-sensitive fashion. Transcription factor decoy approach proved that the cAMP-induced down-regulation of HuR is mediated by the activation of AP-1. It has been established that HuR stabilises the sGC alpha-1 and beta-1 mRNA. However the pathway underlying this regulation remains unknown. In order to identify the mechanism of this regulation, we looked for HuR interacting proteins employing the yeast two hybrid assay. The enzyme of the polyamine catabolic pathway spermidine/spermine N1-acetyltransferase (SSAT) was found to interact with the hinge region of HuR. This interaction was confirmed by performing immunoprecipitation and GST-pulldown experiments. A direct effect of these proteins on each other’s biological activity was not visible as tested through the SSAT activity assay and HuR gel shift. It might be possible that SSAT-mediated modulation of local polyamine concentrations enhances/reduces HuR activity and sGC expression to affect cell proliferation. In summary, this study represents an analysis of the rat sGC alpha-1 promoter regulation in rat fibroblast cells and identifies NFY and Sp1 as important factors in sGC alpha-1 expression. It also gives first evidence of sGC regulation at the transcriptional level in response to an external stimulus, and proposes the possible mechanism. It also identifies SSAT as a HuR interacting protein. These might have implications in the various pathophysiological conditions where sGC plays an important role.
Janthinobacterium and Duganella are well-known for their antifungal effects. Surprisingly, almost nothing is known on molecular aspects involved in the close bacterium-fungus interaction. To better understand this interaction, we established the genomes of 11 Janthinobacterium and Duganella isolates in combination with phylogenetic and functional analyses of all publicly available genomes. Thereby, we identified a core and pan genome of 1058 and 23,628 genes. All strains encoded secondary metabolite gene clusters and chitinases, both possibly involved in fungal growth suppression. All but one strain carried a single gene cluster involved in the biosynthesis of alpha-hydroxyketone-like autoinducer molecules, designated JAI-1. Genome-wide RNA-seq studies employing the background of two isolates and the corresponding JAI-1 deficient strains identified a set of 45 QS-regulated genes in both isolates. Most regulated genes are characterized by a conserved sequence motif within the promoter region. Among the most strongly regulated genes were secondary metabolite and type VI secretion system gene clusters. Most intriguing, co-incubation studies of J. sp. HH102 or its corresponding JAI-1 synthase deletion mutant with the plant pathogen Fusarium graminearum provided first evidence of a QS-dependent interaction with this pathogen.
In high light, the antenna system in oxygenic photosynthetic organisms switches to a photoprotective mode, dissipating excess energy in a process called non-photochemical quenching (NPQ). Diatoms exhibit very efficient NPQ, accompanied by a xanthophyll cycle in which diadinoxanthin is de-epoxidized into diatoxanthin. Diatoms accumulate pigments from this cycle in high light, and exhibit faster and more pronounced NPQ. The mechanisms underlying NPQ in diatoms remain unclear, but it can be mimicked by aggregation of their isolated light-harvesting complexes, FCP (fucoxanthin chlorophyll-a/c protein). We assess this model system by resonance Raman measurements of two peripheral FCPs, trimeric FCPa and nonameric FCPb, isolated from high- and low-light-adapted cells (LL, HL). Quenching is associated with a reorganisation of these proteins, affecting the conformation of their bound carotenoids, and in a manner which is highly dependent on the protein considered. FCPa from LL diatoms exhibits significant changes in diadinoxanthin structure, together with a smaller conformational change of at least one fucoxanthin. For these LL-FCPa, quenching is associated with consecutive events, displaying distinct spectral signatures, and its amplitude correlates with the planarity of the diadinoxanthin structure. HL-FCPa aggregation is associated with a change in planarity of a 515-nm-absorbing fucoxanthin, and, to a lesser extent, of diadinoxanthin. Finally, in FCPb, a blue-absorbing fucoxanthin is primarily affected. FCPs thus possess a plastic structure, undergoing several conformational changes upon aggregation, dependent upon their precise composition and structure. NPQ in diatoms may therefore arise from a combination of structural changes, dependent on the environment the cells are adapted to.
Riboswitches are a novel class of genetic control elements that function through the direct interaction of small metabolite molecules with structured RNA elements. The ligand is bound with high specificity and affinity to its RNA target and induces conformational changes of the RNA's secondary and tertiary structure upon binding. To elucidate the molecular basis of the remarkable ligand selectivity and affinity of one of these riboswitches, extensive all-atom molecular dynamics simulations in explicit solvent ({approx}1 µs total simulation length) of the aptamer domain of the guanine sensing riboswitch are performed. The conformational dynamics is studied when the system is bound to its cognate ligand guanine as well as bound to the non-cognate ligand adenine and in its free form. The simulations indicate that residue U51 in the aptamer domain functions as a general docking platform for purine bases, whereas the interactions between C74 and the ligand are crucial for ligand selectivity. These findings either suggest a two-step ligand recognition process, including a general purine binding step and a subsequent selection of the cognate ligand, or hint at different initial interactions of cognate and noncognate ligands with residues of the ligand binding pocket. To explore possible pathways of complex dissociation, various nonequilibrium simulations are performed which account for the first steps of ligand unbinding. The results delineate the minimal set of conformational changes needed for ligand release, suggest two possible pathways for the dissociation reaction, and underline the importance of long-range tertiary contacts for locking the ligand in the complex.
Mitochondria are dynamic organelles indispensible for viability of eukaryotic cells. Diffusion of proteins in mitochondrial membranes is a prerequisite for the correct functionality of the organelles. However, its study is made complicated due to the nontrivial geometry, small size and positional instability of the organelle, restricting the usability of regular experimental methods and theoretical understanding of acquired data. Therefore, here the molecular transport along the main mitochondrial axis was investigated using highly accurate computational methods combining them with traditional experimental approaches. Using recently reported electron microscopic tomography data concerning the constitution of mitochondria [Fre02], a lattice model of the inner mitochondrial membrane (IM) reproducing its structure in great details was built up. With Monte Carlo (MC) simulations of particle dynamics on this model, it was found that the membrane geometry induces nonlinear effects in the motion of molecules along the mitochondrial axis, which in turn lead to a transient violation of the 2nd Fick?s equation. We show that mere curvature of the IM resulting from the presence of cristae is sufficient for the emergence of transient anomalous diffusion (TAD) in the membrane. The MC calculations have enabled an accurate estimation of regularities in the extent of deviations from the normal regime, therefore allowing us to propose non-homogenous power law as a suitable generalization of the current approach to the analysis of experimental data for the transient dynamics. The general cause of TAD resulting from the membrane curvature alone, without any involvement of specific inter-particle interactions prompted us to predict the similar dynamical effect also for other curved cellular membranes, be it diffusion in endoplasmic reticulum or in plasma membrane of cells possessing dense microvilli. The data indicate that the geometry-induced anomalous diffusion should be easily detectable with current experimental methods, but only in the restricted range of time scales corresponding to high temporal resolution. Until now, experimental measurements of molecular diffusion in biological membranes indiscriminately assumed either pure normal or pure anomalous diffusion schemes for the analysis of data acquired in very wide range of temporal resolutions, which often lead to ambiguities in the interpretation of diffusion parameters. The MC calculations have clearly illustrated the necessity for a more subtle treatment of experimental conditions: the assumption of pure Gaussian diffusion model is justified only if the applied temporal resolution is sufficiently low (as is often the case when using scanning techniques exemplified further); otherwise, the transient regime should be tested for by means of the non-homogenous power function. In the second part of the study the Fluorescence Recovery after Photobleaching (FRAP) with the laser scanning microscope is introduced as a method of choice for studying protein mobility within mitochondrial membranes. The conventional FRAP methodology [Axe76] was extended to enable its application for the determination of confined diffusion with conventional laser scanning microscopes which allowed us to communicate for the first time the direct measurement of protein diffusion in mitochondrial membranes of living cells. This is achieved through adaptation of FRAP data analysis to account for the spatial dimensions of the organelle and the spatiotemporal pattern of light pulses induced by the microscope. The experimental circumstances existing during the particular measurement session are computationally recreated and this way the best suited values of diffusion parameters are found. The method is validated experimentally for four FP-tagged mitochondrial membrane proteins: the IM OxPhos complexes F1F0 ATPase and cytochrome c oxidase and for Tom7 and hFis1 - components of the mitochondrial protein import and fission machineries respectively localized in the outer membrane. We find that for all proteins simple normal diffusion is not a sufficient description. In the inner membrane, diffusion coefficient of F1F0 ATPase expressed in HeLa cell line is found to be 0.2 ?m2/s, with more than 1/3 of the protein molecules being immobilized, while cytochrome c oxidase (in CEF primary cells) demonstrated a similar diffusivity pattern (0.4 ?m2/s, 30% immobile). In the outer membrane, the D (0.7 ?m2/s) and immobile fraction (7-8%) of GFP-Tom7 and GFP-hFis1 (both in HeLa cells) are identical, which designates a substantial difference in comparison to the IM protein mobility. Diffusion coefficients of mitochondrial membrane proteins studied here lay in the intermediate region between those measured in artificial bilayers and in plasma membranes. Protein crowding and intermolecular interactions will be among the major causes responsible for the detected slowdown of diffusion.
Die Verarbeitung von Informationen im zentralen Nervensystem beruht auf dem Zusammenspiel von erregender und hemmender Neurotransmission. Die Übertragung von Signalen zwischen Neuronen erfolgt chemisch über die Ausschüttung von Neurotransmittern an spezialisierten Kontaktstellen, den Synapsen. Glyzin und gamma-Aminobuttersäure (GABA) sind die bedeutendsten inhibitorischen Neurotransmitter im zentralen Nervensystem von Säugern, welche Rezeptoren vom Glyzin- (GlyR) und GABAA-Typ (GABAAR) aktivieren. Diese ligandengesteuerten Ionenkanäle sind in postsynaptischen Membranen angereichert und mit intrazellulären Proteinen assoziiert. Die Rekrutierung der Rezeptoren in postsynaptischen Domänen ist ein an das zytoplasmatisch lokalisierte Protein Gephyrin gekoppelter Prozess. So bindet Gephyrin spezifisch an die intrazelluläre Domäne der beta-Untereinheit des GlyR (GlyR beta) und bildet für die Verankerung des Rezeptors ein gerüstartiges Netzwerk unterhalb der synaptischen Membran. Die gezielte Inaktivierung des Gephyrin-Gens führt in Mäusen zu einem postnatal letalen Phänotyp und zu dem Verlust der synaptischen Anreicherung des GlyR und bestimmter GABAA-Rezeptoren auf zellulärer Ebene. Gephyrin ist ein 93 kDa großes Protein, das nicht nur im zentralen Nervensystem (ZNS), sondern auch in anderen Organen wie Leber und Niere exprimiert wird, in denen es an der Synthese des Molybdän-Kofaktors von Oxido-Reduktasen beteiligt ist. Das Gephyrin-Protein wird durch 30 Exons codiert, von denen zehn als sogenannte Kassetten alternativ gespleißt werden können. Die bestuntersuchte Spleißvariante besitzt 736 Aminosäuren und ist in eine N- und eine C-terminale Domäne (Aminosäuren 1-181 bzw. 318-736) sowie eine zentrale Linker-Domäne unterteilt. Die N- und die C-terminalen Bereiche von Gephyrin sind den Proteinen MogA und MoeA aus E. coli homolog und werden daher auch als G-Domäne (N-terminal) bzw. E-Domäne (C-terminal) bezeichnet. In kristallographischen Untersuchungen wurde gezeigt, dass die G- und E-Domänen zur Tri- bzw. Dimerisierung befähigt sind. Diese speziellen Oligomerisierungseigenschaften der beiden Gephyrindomänen bilden wahrscheinlich die Grundlage für die Entstehung von Gephyrin-Clustern sowie eines hexagonalen Gephyrin-Gerüstes. Dieses Gerüst stellt den Verknüpfungspunkt zwischen Rezeptoren und dem Zytoskelett dar und ermöglicht somit die effiziente Clusterbildung und die zielgerichtete Anordnung einer großen Anzahl inhibitorischer Rezeptoren. In der vorliegenden Arbeit sollten die Rolle dieser beiden Domänen bei der Bildung membranassoziierter Gephyrinaggregate und die molekularen Mechanismen der Clusterbildung des Gephyrinmoleküls untersucht werden. Zu diesem Zweck wurden durch zielgerichtete Mutagenese unterschiedliche Gephyrin-Mutanten hergestellt, um die Fähigkeit der Oligomerisierung der G- und E-Domäne gezielt zu modifizieren. Dadurch sollte die Bedeutung der Oligomerisierung hinsichtlich der Aggregat- bzw. Clusterbildung untersucht werden. Außerdem sollten die Wechselwirkungen zwischen Gephyrin und anderen Proteinen und deren Einfluss auf die synaptische Lokalisation analysiert werden. Für diese Untersuchungen wurden auf der Basis von Röntgenstruktur-Daten spezifische Aminosäurereste an den bei der Oligomerisierung beteiligten Kontaktstellen ausgetauscht. In der G-Domäne wurden zu diesem Zweck vier separate Aminosäuren des Trimer-Interface durch Arginin ersetzt (GephRRRR). Analog hierzu wurden in der EDomäne einzelne Aminosäuren durch Arginin bzw. Glutamat substituiert (GephRER), um dadurch eine Dimersierung zu verhindern. Für die Kassette C5’ wird angenommen, dass deren Vorhandensein die Interaktion zwischen Gephyrin und GlyR beeinträchtigt, wodurch GlyR aus GABAergenen Synapsen ausgeschlossen wird. Daher wurde der Einfluss dieser Gephyrin-Spleißvariante (GephC5’), die zu einer Peptidinsertion innerhalb der G-Domäne führt, und einer Gephyrin-Mutante (Gephmut), die den Verlust der Wechselwirkung mit dem GlyR bedingt, auf die Aggregatbildung von Gephyrinoligomeren untersucht. Bei dem Konstrukt Gephmut wurden, basierend auf Daten von Röntgenstrukturuntersuchungen, neun Aminosäuren (713-721) am Cterminalen Ende der E-Domäne durch den homologen Bereich des bakteriellen MoeA Proteins aus E. coli ersetzt. Zunächst wurden die einzelnen isolierten Domänen mittels Gelfiltration hinsichtlich ihres Oligomerisierungsverhaltens untersucht. Die Mutationen wurden hierzu in verkürzte Proteine eingeführt, bei denen nur die G- bzw. die E-Domäne exprimiert wurden. Diese Konstrukte wurden daher als GRRRR, GC5’ bzw. ERER und Emut bezeichnet. Bei diesen zeigte sich, dass die G-Domäne des Gephyrin-Wildtyps zu trimeren Proteinkomplexen oligomerisiert. Im Gegensatz hierzu war die Mutante GRRRR nicht in der Lage, Trimere zu bilden. Das Einfügen der C5’-Kassette führte ebenfalls zu einer Störung der Trimerisierung. Gelfiltrationsexperimente mit der E-Domäne ergaben, dass die mutierte Domäne ERER, im Gegensatz zum Wildtyp-Konstrukt, keine Dimere ausbildet. Bisherige Studien haben jedoch gezeigt, dass das Emut Polypeptid zur Dimerisierung befähigt ist. Das Oligomerisierungsverhalten des kompletten Gephyrin-Proteins wurde mittels blauer nativer Gelelektrophorese (BN-PAGE) analysiert. Für die hier beschriebenen Untersuchungen mit BN-PAGE wurde rekombinantes Gephyrin in Xenopus laevis Oozyten heterolog exprimiert. Die Analyse ergab, dass Wildtyp Gephyrin nativ als Hexamer vorliegt, welches durch ansteigende Konzentrationen des Detergenzes Natriumdodecylsulfat (SDS) in Trimere, Dimere und Monomere zerfällt. Sowohl GephRRRR und GephC5’ liegen nativ fast ausschließlich als Dimere vor, während GephRER nur trimere Aggregate formt. Die entsprechende Doppelmutante mit Mutationen in Gund E-Domäne war wie erwartet nur noch als Monomer existent. Die als Kontrolle eingesetzte Glyzinrezeptor-Bindungsmutante Gephmut bildete, ebenso wie der Wildtyp, Hexamere aus. Daraus folgt, dass die Oligomere der G- bzw E-Domäne Zwischenprodukte der Hexamerbildung darstellen. Die Analyse der Oligomerisierungseigenschaften der Mutanten wurde nachfolgend in humanen embryonalen Nierenzellen (HEK 293T) untersucht. Nach heterologer Expression von Wildtyp Gephyrin in HEK 293T-Zellen formen sich große, charakteristische Gephyrinaggregate. Die Oligomerisierungs-Mutanten GephRRRR, GephRER und GephC5’ aggregierten jedoch nicht, sondern waren diffus im Zytoplasma verteilt. Die wiederum als Kontrolle eingesetzte Bindungsmutante Gephmut hingegen wies eine normale Aggregation auf. Diese Ergebnisse bestätigen die grundlegende Rolle der Oligomerisierung von G- und E- Domänen für die Aggregatbildung von Gephyrin. Mittels GST-Pulldown und Kolokalisationsanalysen in HEK Zellen wurde die Wechselwirkung der Gephyrinmutanten mit der GlyR beta, dem Motorkomplexprotein Dynein light chain-1 (Dlc-1) und dem Guanin-Nukleotid-Austauschfaktor Collybistin (Cb) untersucht. Beide Ansätze weisen darauf hin, dass die Trimerisierung der G-Domäne an der Interaktion von Gephyrin mit Dlc-1 und die Dimerisierung der E-Domäne bei der Bindung an GlyR beta und Cb beteiligt ist. Die Mutante Gephmut zeigte in beiden Fällen einen totalen Verlust der Bindungsfähigkeit sowohl an das GlyR beta Bindungsmotiv als auch an Cb. Der Einbau der C5’ Kassette in Gephyrin scheint jedoch nicht dessen Bindung an den GlyR zu beeinflussen. Für die Analyse der Clusterbildung und des zielgerichteten Transports in Neuronen wurden Wildtyp und mutiertes Gephyrin in hippocampalen und spinalen Primärkulturen der Ratte exprimiert. Zur Überprüfung einer synaptischen Lokalisation wurde Gephyrin gemeinsam mit dem vesikulären inhibitorischen Aminosäure-Transporter (VIAAT), einem präsynaptischen Marker-Protein, detektiert. In beiden Kulturen wies Gephyrin eine punktartige Verteilung in den Neuriten auf und wurde gezielt an Synapsen angereichert. Im Kontrast dazu zeigten alle Oligomerisierungsmutanten, GephRRRR, GephC5’ und GephRER keine Ausbildung von Clustern sondern eine diffuse Verteilung im Zellkörper und in Dendriten. Das Konstrukt Gephmut wies jedoch Clusterbildung und eine punktförmige Verteilung auf. Diese Daten belegen, dass die Oligomerisierung der G- wie auch der E-Domänen für die Clusterbildung und synaptische Lokalisation von Gephyrin unerlässlich ist. Die Wechselwirkung mit dem GlyR und/oder Collybistin ist ebenfalls für die Anreicherung in der Synapse erforderlich, nicht jedoch für die Bildung der Gephyrin-Cluster. Die dargestellten Ergebnisse belegen die Rolle der spezifischen Oligomerisierungseigenschaften der G- und E-Domäne für die Ausbildung des hexagonalen Gephyringerüstes und dessen grundlegende Bedeutung für die spezifische Anreicherung von Gephyrin an inhibitorischen Synapsen in Neuronen.
The tumour suppressor p53 controls transcription of various genes involved in apoptosis, cell-cycle arrest, DNA repair and metabolism. However, its DNA-recognition specificity is not nearly sufficient to explain binding to specific locations in vivo. Here, we present evidence that KLF4 increases the DNA-binding affinity of p53 through the formation of a loosely arranged ternary complex on DNA. This effect depends on the distance between the response elements of KLF4 and p53. Using nuclear magnetic resonance and fluorescence techniques, we found that the amino-terminal domain of p53 interacts with the KLF4 zinc fingers and mapped the interaction site. The strength of this interaction was increased by phosphorylation of the p53 N-terminus, particularly on residues associated with regulation of cell-cycle arrest genes. Taken together, the cooperative binding of KLF4 and p53 to DNA exemplifies a regulatory mechanism that contributes to p53 target selectivity.
Secretion in blowfly (Calliphora vicina) salivary glands is stimulated by the biogenic amine serotonin (5-hydroxytryptamine, 5-HT), which activates both inositol 1,4,5-trisphosphate (InsP3)/Ca2+ and cyclic adenosine 3′,5′-monophosphate (cAMP) signalling pathways in the secretory cells. In order to characterize the signal-inducing 5-HT receptors, we cloned two cDNAs (Cv5-ht2α, Cv5-ht7) that share high similarity with mammalian 5-HT2 and 5-HT7 receptor genes, respectively. RT-PCR demonstrated that both receptors are expressed in the salivary glands and brain. Stimulation of Cv5-ht2α-transfected mammalian cells with 5-HT elevates cytosolic [Ca2+] in a dose-dependent manner (EC50 = 24 nM). In Cv5-ht7-transfected cells, 5-HT produces a dose-dependent increase in [cAMP]i (EC50 = 4 nM). We studied the pharmacological profile for both receptors. Substances that appear to act as specific ligands of either Cv5-HT2α or Cv5-HT7 in the heterologous expression system were also tested in intact blowfly salivary gland preparations. We observed that 5-methoxytryptamine (100 nM) activates only the Cv5-HT2α receptor, 5-carboxamidotryptamine (300 nM) activates only the Cv5-HT7 receptor, and clozapine (1 µM) antagonizes the effects of 5-HT via Cv5-HT7 in blowfly salivary glands, providing means for the selective activation of each of the two 5-HT receptor subtypes. This study represents the first comprehensive molecular and pharmacological characterization of two 5-HT receptors in the blowfly and permits the analysis of the physiological role of these receptors, even when co-expressed in cells, and of the modes of interaction between the Ca2+- and cAMP-signalling cascades.