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Nervous system development requires a sequence of processes such as neuronal migration, the development of dendrites and dendritic spines and the formation of synapses. The extracellular matrix protein Reelin plays an important role in these processes, Reelin regulates for example the migration of neurons from proliferative zones to their target positions in the brain. As a consequence, layered structures are formed in the neocortex, the hippocampus and cerebellum (Lambert de Rouvroit et al., 1999). Reelin exerts its functions by binding to two transmembrane receptors, apolipoprotein E receptor 2 (ApoER2) and very-low-density lipoprotein receptor (VLDLR). This binding causes phosphorylation of the intracellular adapter protein Disabled-1 (Dab1) (D’Arcangelo et al., 1999) via activation of Src-family kinases (SFKs) (Bock and Herz, 2003), leading to cytoskeletal reorganization which enables cell migration and morphological changes (Lambert de Rouvroit and Goffinet, 2001). Since ApoER2 and VLDLR do not possess intrinsic kinase activity to activate SFKs, the existence of a co-receptor was suggested. EphrinBs are transmembrane ligands for Eph receptors and have signaling capabilities required for axon guidance (Cowan et al., 2004), dendritic spine maturation (Segura et al., 2007) and synaptic plasticity (Essmann et al., 2008; Grunwald et al., 2004). As stimulation of cultured cortical neurons with soluble EphB receptors causes recruitment of SFKs to ephrinB-containing membrane patches and SFK activation (Palmer et al., 2002), we investigated whether ephrinB ligands would be the missing co-receptors in the Reelin signaling pathway functioning during neuronal migration, dendritic spine maturation and synaptic plasticity. We found that the extracellular part of ephrinBs directly binds to Reelin and that ephrinBs interact with Dab1, phospho-Dab1, ApoER2 and VLDLR. EphrinB3 is localized in the same neurons as ApoER2 and Dab1 in the cortex and hippocampus, and in the cerebellum ephrinB2 is detected in neurons that express Dab1. To investigate the requirement of ephrinBs for neuronal migration, triple knockout mice lacking all ephrinB ligands were analyzed. The cortical layering of ephrinB1, B2, B3 knockout brains is inverted, showing the outside-in pattern typical for the reeler cortex. The hippocampus and cerebellum of triple knockout mice also exhibit reeler-like malformations, although less penetrant than the cortical defects. Dab1 phosphorylation is impaired in mice lacking ephrinB3 and this effect is strongly enhanced in neurons lacking all ephrin ligands. Moreover, activation of ephrinB3 reverse signaling induces Dab1phosphorylation in reeler primary neurons. In agreement with an important regulatory function of ephrinBs in Reelin signaling, activation of ephrinB3 reverse signaling is even able to rescue reeler defects in cortical layering in organotypic slice cultures. In summary, all these results identify ephrinBs as co-receptors for Reelin signaling, playing essential roles in neuronal migration during the development of cortex, hippocampus and cerebellum (Sentürk et al., 2011).
The midbrain DA system comprising dopamine (DA) neurons of the substantia nigra (SN) and the ventral tegmental area (VTA) is involved in various brain functions, including voluntary movement and the encoding and prediction of behaviorally relevant stimuli. In Parkinsonʼs disease (PD), a progressive degeneration of particularly vulnerable SN DA neurons causes a progressive DA depletion of striatal projection sites. As a consequence, motor symptoms such as tremor, hypokinesia and rigidity appear once about 50 % to 70 % of SN DA neurons have been lost. Under physiological conditions, SN DA neurons can encode behaviorally salient events and coordinated movements through tonic and phasic activity and correlated striatal DA release. Burst-activity mediates a phasic, supralinear rise of striatal DA levels and allows to activate coordinated movements via modulation of corticostriatal signals.
In the present dissertation project, pathophysiological adaptations of surviving SN DA neurons after a partial degeneration of the nigrostiatal system have been studied using a 6-hydroxydopamine mouse model of PD. Combining in vivo retrograde tracing techniques with in vitro whole-cell patch-clamp recordings, multifluorescent immunolabeling and confocal microscopy allowed an unambiguous correlation of electrophysiological phenotypes, anatomical positions and neurochemical phenotypes of recorded neurons on a single-cell level. In vitro, neuronal activity of SN DA neurons is characterized by spontaneous, slow pacemaker activity of 1 to 10 Hz and a high degree of spike-timing precision. In vitro current-clamp recordings of surviving SN DA neurons using acute brain slice preparations after a partial, PD-like degeneration of the nigrostriatal DA system showed a significant perturbation of spontaneous pacemaker activity, mirrored by a decreased spike-timing precision compared to controls. Selective pharmacology and whole-cell voltage-clamp recordings served to identify calciumactivated SK channels as molecular effectors of a perturbated pacemaker activity of surviving SN DA neurons. SK channels and have been shown to critically contribute to the spike-timing precision of SN DA neurons. Consistently, in vitro current-clamp recordings after pharmacological blockade of SK channels in vitro caused a significant decrease of spike-timing precision, occluding previously observed differences between surviving SN DA neurons and controls.In addition to in vitro patch-clamp recordings, extracellular single-unit recordings in anaesthetized animals in vivo served to study surviving SN DA neurons embedded in an intact neuronal network after a partial, PD-like degeneration of the nigrostriatal DA system. Combining in vivo single-unit recordings, juxtacellular neurobiotin labeling and multifluorescent immunohistochemistry allowed to directly correlate electrophysiological and neurochemical phenotypes as well as anatomical positions on a single-cell level. In vivo, surviving SN DA neurons showed a significant decrease of spike-timing precision as reflected by an increased irregularity and an augmented burst activity compared to controls.
The present dissertation project provided a unique combination of a neurotoxicological PD mouse model, retrograde tracing techniques and in vitro as well as in vivo electrophysiologiy, allowing to unambiguously correlate electrophysiological adaptations, projection-specific anatomical positions and neurochemical phenotypes of SN DA neurons after a partial degeneration of the nigrostriatal system. Surviving SN DA neurons exhibited a significant deficit of SK channel activity after a partial degeneration of the nigrostriatal DA system. In consequence of a diminished SK channel activity observed in vitro, surviving SN DA neurons exhibited and enhanced burst activity in vivo, providing a plausible mechanism to compensate a striatal DA depletion.
BMPs control postnatal dendrite growth and complexity in sympathetic neurons / von Afsaneh Majdazari
(2012)
The vertebrate nervous system is a complex network of billions of neurons connected by dendrites and axons, integrated to functional circuits and areas/organs in the central and peripheral nervous system. The cells of the nervous system origin from common progenitors, which take on different cell fates based on intrinsic and extrinsic factors. These factors determine general neuronal traits, but also the morphology and the type of connections made to other cells. Mechanisms underlying axonal and dendritic growth are well described in contrast to the initiation of neurite growth, which remains to be fully elucidated, especially concerning dendrite formation. Recently BMPs have been identified as candidate dendrite inducing factors in sympathetic, cortical and hippocampal neurons. Here we focus on the in vivo role of BMPs on dendrite growth in sympathetic neurons as their development and differentiation processes have been analyzed in detail.
Durch RNAinterferenz (RNAi) läßt sich die Expression eines beliebigen Gens spezifisch unterdrücken. Dafür müssen in das Zytoplasma kurze, doppelsträngige RNA Moleküle (siRNA bzw. shRNA) eingebracht werden, die teilweise komplementäre Sequenzen zu dem Zielgen aufweisen. Um siRNAs mit einer hohen Effizienz und Kopienzahl in die Zielzelle einzubringen, wurden Transfersysteme unterschiedlicher Art entwickelt. Nicht-virale Transfersysteme können nur einen transienten Effekt auslösen - ein Umstand, der für Langzeitstudien eine mehrfache Transfektion bedingt. Zur Lösung dieses Problems wurden retrovirale Vektorsysteme entwickelt, die durch Integration der shRNA-Expressionskassette in das zelluläre Genom eine stabile Unterdrückung eines Zielgens erreichen können. Insbesondere für präklinische Studien in vivo ist jedoch ein System mit erhöhter Transferrate wünschenswert, um in möglichst vielen Zielzellen einen RNAi-Effekt zu bewirken. Sliva et al. konnten zeigen, dass das Murine Leukämie Virus (MLV) theoretisch diese Anforderung erfüllt. Dafür wurde eine shRNA-Expressionskassette in das Virusgenom eingefügt und in vitro ein RNAi-Effekt nachgewiesen. In der vorliegenden Arbeit wurde dieses System nun durch die Verwendung von microRNA-adaptierten shRNAs (shRNAmir) verbessert. In mehreren Publikationen wurde bestätigt, dass shRNAs, die endogenen microRNAs nachempfunden sind, eine höhere Effizienz und niedrigere Toxizität aufweisen. Zunächst wurde die für die genetische Stabilität optimale Orientierung der shRNAmir-Expressionskassette bestimmt. Das Konstrukt in reverser Orientierung wies eine Deletion in der shRNAmir Promotersequenz auf, die wahrscheinlich durch Interferenz mit dem 5’LTR Promoter entstanden ist. Mit dem genetisch stabilen Viruskonstrukt wurden Experimente zur Reduktion der Expression von Markergenen durchgeführt, um die Effizienz der RNAi-Aktivität leicht zu quantifizieren. Dafür wurden humane Fibrosarkom (HT1080) Zellen infiziert, die eGFP oder Luziferase stabil exprimieren.
Mit eGFP- und Luziferase-spezifischen shRNAmir-Expressionskassetten konnte nach Infektion eine Herunterregulation von eGFP auf etwa 20 % und für Luziferase auf unter 10% beobachtet werden. Das Kontrollvirus, das eine unspezifische shRNAmir kodiert, hatte keinen Einfluss auf die Expression beider Markerproteine. Die Kinetik mit der die Markerproteine herrunterreguliert wurden, war abhängig von der Virusdosis. Die Virusdosis hatte aber keinen Einfluß auf die Stärke des RNAi-Effekts, der nach Infektion aller Zellen festgestellt werden konnte. Dieses Ergebnis entspricht der Erwartung an ein replikatives Transfersystems, das je nach applizierter Virusdosis unterschiedlich schnell RNAi in der Zellkultur ausbreitet und induziert. Die Anwendbarkeit dieses RNAi-Transfersystems auch für endogene Gene wurde mit MMP14-spezifischen shRNAmirs gezeigt. Nach Infektion von HT1080 Zellen mit den entsprechenden Viren in HT1080 Zellen konnte eine verringerte Menge an MMP14 mRNA und Protein nachgewiesen werden. Dies konnte funktionell durch eine verringerte Menge an intermediärem MMP2 und durch eine reduzierte Invasivität bestätigt werden. Zudem war die Fähigkeit dieser Zellen subkutane Tumore zu bilden stark eingeschränkt.
Um die Anwendbarkeit dieses Systems für in vivo Applikationen zu zeigen, wurde in Mäuse, die Luziferase-exprimierenden Tumoren trugen, MLV-shLuc oder das Kontrollvirus systemisch appliziert. 21 Tage nach Virusgabe konnte in den Tumoren von MLV-shLuc infizierten Mäusen eine Abnahme der Luziferaseaktivität auf 15 % nachgewiesen werden. Auch in Mäusen, die systemisch applizierte Tumorzellen erhielten, konnte eine Tendenz von RNAi-vermittelter Luziferase-Reduktion beobachtet werden.
Damit wurde in dieser Arbeit ein neuartiges RNAi-Transfersystem geschaffen, das in der Lage ist, auch in vivo einen starken und lang andauernden RNAi-Effekt auszulösen. Die Einzigartigkeit besteht in der Kombination von shRNAmir und Replikations-kompetenten Retroviren. Dadurch konnte eine erweiterte Transferrate von shRNAmir in Tumorzellen erreicht werden, so dass nun Genfunktionsstudien mit sehr hoher Aussagekraft möglich sind.
Prokaryotische Organismen werden in ihrer natürlichen Umgebung mit schwankenden Umwelteinflüssen konfrontiert oder müssen gegebenenfalls extremen Bedingungen standhalten. Um sich an derartige Veränderungen anpassen zu können und damit ein weiteres Überleben zu sichern, ist es wichtig neue genetische Informationen zu akquirieren. Die molekulare Basis dieser Anpassung sind Genmutationen, Genverlust, intramolekulare Rekombination und/oder horizontaler Gentransfer. Der vorliegende Selektionsdruck der Umwelt begünstigt schlussendlich die Spezialisierung und damit die Erschließung neuer Standorte aufgrund des Erwerbs neuer metabolischer Eigenschaften, Resistenzgene oder Pathogenitätsfaktoren. Vergleichende Analysen bakterieller Genome, welche auf Analysen der GC-Gehalte, der Codon- und Aminosäurenutzung und der Genlokalisation beruhen, zeigten, dass bei diesem evolutiven Prozess bzw. der Weiterentwicklung der bakteriellen Genome der horizontale Gentransfer als treibende Kraft eine entscheidende Rolle spielt. So indizieren Genomstudien, dass 0-22% der gesamten bakteriellen und 5-15% der archaeellen Gene horizontal erworben wurden, wobei der DNA-Transfer nicht ausschließlich zwischen Vertretern einer Domäne, sondern ebenfalls zwischen Organismen unterschiedlicher Domänen stattgefunden hat. So sind z.B. 24 bzw. 16% der Gene von Genomen hyperthermophiler Organismen wie Thermotoga maritima oder Aquifex aeolicus archaeellen Ursprungs. Ebenso finden sich Gene für Chaperone und DNA-Reparaturenzyme im Genom des thermophilen Bakteriums Thermus thermophilus wieder, welche wahrscheinlich ebenfalls durch horizontalen Gentransfer aus hyperthermophilen und archaeellen Genomen erworben wurden um eine Anpassung an extreme Standorte zu ermöglichen. Durch vergleichende Genomstudien wurde ebenfalls festgestellt, dass die durch horizontalen Gentransfer erworbenen Gene oftmals zu einer Neuorganisation von Transkriptionseinheiten und zu einer veränderten Genomorganisation führten. Dennoch finden sich immer wieder Beispiele von horizontal erworbenen Operonen in den verschiedenen Organismen. Gut charakterisierte Vertreter horizontal übertragener Operone sind dabei z.B. das archaeelle H+-ATPase-Operon, das Operon der Na+-translozierenden NADH:Ubichitonoxidoreduktase oder das Nitratreduktase-Operon.
Man unterscheidet bei dem horizontalen Gentransfer zwischen drei Mechanismen der DNAAufnahme: Konjugation, Transduktion und Transformation. Die DNA-Übertragung durch Konjugation ist durch einen spezifischen Zell-Zell-Kontakt definiert, der durch einen von der Donorzelle ausgehenden, sogenannten F-Pilus hergestellt wird. Die Donorzelle überträgt schließlich Plasmid-kodierte genetische Informationen und oftmals Eigenschaften für die eigenständige Konjugation auf eine Rezipientenzelle. Die Transduktion hingegen beschreibt die DNA-Übertragung von Bakteriophagen auf eine Wirtszelle, wobei hier eine hohe Wirtsspezifität Voraussetzung ist. Die Übertragung der DNA von einer Bakterienzelle in eine andere erfolgt dabei ohne Kontakt der Zellen. Die natürliche Transformation ist definiert als Transfer von freier DNA und ermöglicht damit im Gegensatz zu den beiden ersten spezifischen Mechanismen der DNA-Übertragung ein größeres Spektrum der Verbreitung genetischer Informationen. Freie DNA, welche entweder durch Zelllyse oder Typ-IVSekretion ausgeschieden wird und aufgrund von Adsorption an mineralische Oberflächen über längere Zeiträume stabil in der Umgebung vorliegen kann, kann unter der Voraussetzung der Existenz eines speziellen Aufnahmesystems von Bakterien aufgenommen werden. Mittlerweile sind über 44 Bakterien aus unterschiedlichen taxonomischen Gruppen beschrieben, die eine natürliche Kompetenz ausbilden können. Die bekanntesten Beispiele für natürlich transformierbare Gram-negative Bakterien sind Heliobacter pylori, Neisseria gonorrhoeae, Pseudomonas stutzeri, Haemophilus influenzae, T. thermophilus und Acinetobacter baylyi. Auch unter den Gram-positiven Bakterien finden sich einige Vertreter, die natürlich kompetent sind, wie Deinococcus radiodurans, Bacillus subtilis und Streptococcus pneumoniae. Ungeachtet der relevanten Rolle der Transformation im horizontalen Gentransfer, ist über die Struktur und Funktion der komplexen DNA-Aufnahmesysteme wenig bekannt.
Due to recent technical developments, it became evident that the mammalian transcriptome is much more complex than originally expected. Alternative splicing(AS) and the transcription of long non-coding RNAs (lncRNAs) are two phenomenas which have been greatly underestimated in their frequency. Nowadays it is accepted that almost every gene has at least one alternative isoform and the number of lncRNAs exceeds the one of protein-coding genes.
We built user-friendly web interfaces which can process Affymetrix GeneChip Exon 1.0 ST Arrays (exon arrays) and GeneChip Gene 1.0 ST Arrays (gene arrays)for the analysis of alternative splicing events. Results are presented with detailed annotation information and graphics to identify splice events and to facilitate biological validations. Based on two studies using exon arrays, we show how our tools were used to profile genome-wide splicing changes under silencing of Jmjd6 and under hypoxic conditions. Since gene arrays are not intended for AS analysis originally, we demonstrated their applicability by profiling alternative splicing events during embryonic heart development.
To measure lncRNAs expressions with exon arrays, we completely re-annotation all probes and built a lncRNA specific annotation. To demonstrate the applicability of exon arrays in combination with our annotation, we profiled the expression of tens of thousands of lncRNAs. Further, our custom annotation allows for a detailed inspection of lncRNAs and to distinguish between isoforms, as we validated by RTPCR.
To allow for a general usage to the research community, we integrated the annotation in an easy-to-use web interface, which provides various helpful features for the analysis of lncRNAs.
Struktur-Funktionsbeziehungen des Verpackungschaperons Gsf2 in der Hefe Saccharomyces cerevisiae
(2007)
Im Rahmen der vorliegenden Arbeit wurde die Funktion des in der Membran des Endoplasmatischen Retikulum lokalisierten Proteins Gsf2 der Hefe Saccharomyces cerevisiae näher charakterisiert. Gsf2 ist ein 46 kDa großes ER-Transmembranprotein mit zwei membrandurchspannenden Domänen, wobei C- und N-Terminus cytosolisch orientiert sind. Zudem besitzt Gsf2 C-terminal ein klassisches Dilysin-Motiv. Eine Deletion des GSF2-Gens resultiert in einer Retention der Hexosetransporter Hxt1, Hxt3 und Gal2 im ER, so dass es sich bei Gsf2 möglicherweise um ein Hexosetransporterspezifisches Verpackungschaperon handelt.
Um Sequenzbereiche zu determinieren, die für die Funktion des Verpackungschaperons bezüglich der Reifung und des ER-Transportes von Hxt1 notwendig sind, wurden verkürzte Versionen des Gsf2-Proteins hergestellt. Die funktionelle Analyse zahlreicher verkürzter Versionen ergab die Lokalisation eines essentiellen Sequenzbereiches in den hinteren 40 Aminosäuren der carboxyterminalen Domäne des Gsf2-Proteins.
Vorläufige genetische und biochemische Untersuchungen hatten ergeben, dass Gsf2 mit Komponenten der Ribosomen, des Sec61-Translokationsapparates und mit Proteinen der COPII-Vesikel interagiert.
Mit Hilfe des Split-Ubiquitin Systems konnte in der vorliegenden Arbeit eine direkte Interaktion zwischen Gsf2 und dem Sec61-Translokations-Komplex und den Komponenten des sekretorischen Weges Sec12 und Sar1 bestimmt werden. Sec12 ist ein Sar1-spezifischer Guanin-Nucleotid-Austausch-Faktor, der für die Aktivierung von Sar1 benötigt wird. Sar1 ist ein kleines G-Protein, welches für die Initiation der COPII-Vesikelbildung benötigt wird. Sar1 ist aber auch für die Erkennung di-basische ER-Exportsignale spezifischer Cargo-Proteine zuständig. Diese Interaktion weist daraufhin, dass Gsf2 über solch ein Motiv verfügt und somit die Verpackung von Hxt1 in COPII-Vesikel gewährleisten könnte.
Postuliert wird ein Modell, wonach Gsf2 bereits eine wichtige Funktion bei der Translokation des Hexosetransporter Hxt1 in die ER-Membran übernimmt. Dabei interagiert Gsf2 mit dem Sec61-Translokon, um den Reifungsprozess der naszierenden Polypeptidkette des Metabolittransporters zu ermöglichen. Anschließend rekrutiert Gsf2 das gefaltete Proteine an Exit-Sites des Endoplasmatischen Retikulums. Es interagiert dort mit Sec12 und Sar1, so dass Gsf2 zusammen mit dem Hexosetransporter in die COPII-Vesikel verpackt und zum Golgi-Apparat transportiert wird. Aufgrund des ERRetentionssignals wird Gsf2 über COPI-Vesikel recycelt.
Dieses Modell impliziert, dass Hxt1 über kein ER-Exportsignal verfügt und daher Gsf2 als guide eine ausschlaggebende Funktion bei dessen Translokation übernimmt.
Life-attenuated measles virus (MV) vaccines have revealed their capacity to routinely induce life-long immunity against MV after just a single or two low-dose injections. Moreover, MV vaccines have been shown to be extensively safe and well tolerated, in general. Thus, MV is a prime candidate for a recombinant vaccine platform to protect also against other pathogens after vaccination. For this purpose, foreign genes can be inserted into additional transcription units (ATU) in recombinant MV genomes so that the encoded foreign proteins are co-expressed with MV proteins in infected cells. These so-called bivalent MV should protect against infection by MV or the pathogen, which the encoded foreign protein had been derived from. Bivalent MVs have already been shown to be effective vaccines against e.g. dengue virus or hepatitis B virus infections by inducing humoral and sometimes also cellular immune responses. In most of these studies, soluble or soluble versions of the pathogens' antigens were used for generation of bivalent MVs.
We hypothesized that the form of the antigen expressed by bivalent MVs is crucial for the potency and constitution of the induced immune responses. Therefore, three different forms of an antigen expressed by bivalent MVs were analyzed, here. The model antigen chosen for this purpose has been the envelope protein (Env) of SIVsmmPBj1.9. In its natural mature form, Env is composed of the surface unit gp120 and the transmembrane unit gp41, which stay non-covalently linked after proteolytic processing of the common precursor protein gp160. However, gp120 can be shed by infected cells or virus particles. Therefore, natural gp160 antigen was used as shedding form. Furthermore, stabilized covalently-linked gp160 variants and soluble gp140 variants were used in this thesis. These different antigen forms were inserted either behind the P or behind the H expression cassettes into the MV genome. The respective bivalent MVs were rescued and characterized. Expression of SIVsmmPBj1.9 Env variants by the bivalent MVs was confirmed by immuno blot and in situ immunoperoxidase assays. Replication curves of bivalent MV showed that growth of MVs expressing the different Env variants was slightly delayed by approximately 24 h compared to control viruses.
For immunization of transgenic, MV-susceptible IFNAR-/--CD46Ge mice, which are the current standard to analyze MV vaccines in a small animal model, an optimal dose of 1x105 TCID50 was determined. For the evaluation of humoral immune responses in transgenic mice, two ELISA systems for the detection of total α-MV and α-SIV antibodies and neutralization assays for detection of neutralizing antibodies against MV and SIV in sera of immunized mice were established. Mice immunized with any of the bivalent MVs showed significant humoral immune responses against MV comparable to those elicited by the parental MV vaccine strain without further genetic modifications. Mice immunized with MVvac2-gp140(P) expressing the soluble gp140 variant revealed highest α-SIV titers with a maximal OD of up to 0.4. Second highest levels of α-SIV antibodies were detected in mice that were immunized with the shedding variants or soluble Env in other positions. MVs expressing the stabilized variants induced only very low α-SIV antibody titers. Neutralizing antibodies directed against SIV could be detected in sera of mice immunized with MVs expressing the soluble or shedding variants, but not in sera of mice immunized with MVs expressing the stabilized variants. In sera of control mice immunized with PBS no antibodies could be detected, as expected. Thus, soluble and shedding antigens induced humoral immune responses, whereas stabilized antigens induced only weak humoral immune responses but no neutralizing antibodies. Analysis of cellular immune responses is still ongoing.
Besides Env, further SIV antigens could be tested for their potency to induce humoral as well as cellular immune responses.
Besides being used as a vaccine platform, recombinant MVs are evaluated as future agent for cancer therapy due to their significant inherent tumor-lytic, so-called oncolytic activity. Currently, the anti-tumoral activity of MV is analyzed in clinical phase I trials. MV strains with high fusion activity are used as oncolytic agents. The fusion protein F of MV strain NSe is highly fusogenic, in contrast to e.g. F of MVwt323, a clone of the pathogenic strain IC-B. Sequence analysis of these two proteins identified one coding nucleotide difference at aa 94 in the F2 domain: a valine (V) in FNSe and a methionine (M) in Fwt323. To evaluate impact of this difference, residues at aa 94 were exchanged. After transient-transfection of MV F and H expression plasmids in receptor-positive cells, V94 in the F2 subunit of FNSe or Fwt323 led to about 6-fold higher fusion activity compared to F proteins with M94. The co-expressed H protein (HNSe or Hwt323) did not influence fusion activity, indicating that the receptor (CD46 or SLAM) bound by H does not quantitatively affect the F proteins' activation. Analysis of F and H showed that formation and transport of MV glycoprotein complexes are not altered by substitution in aa 94 of FNSe or Fwt323.
Furthermore, recombinant MVNSe, MVNSe-F-M94, MVwt323, or MVwt323-F-V94 were rescued. Viral replication revealed slightly higher titers for recombinant MVs expressing M94 in F after 96 h of replication, compared to MVs expressing V94. MVs expressing V94 in F2 showed 2.5-fold higher fusion activity on CD46- and SLAM-positive Vero-hSLAM cells and 2-fold higher fusion activity on B95a cells expressing only SLAM compared to MVs expressing F with M94. Fusion activity of recombinant MVs can thus be modulated by substituting a single aa. V94 in the F protein results in highly fusion active MVs with possibly increased direct cytotoxicity in infected tumors, whereas M94 in F could be associated with decreased fusion activity for therapies, where higher virus titers are required.
Die Hefe Saccharomyces cerevisiae hat sich wie kaum ein anderer Organismus auf die Verwertung von Glukose spezialisiert. Die Aufnahme dieser Hexose stellt dabei den ersten Schritt der Metabolisierung dar. Saccharomyces cerevisiae besitzt hierfür eine große Zahl an Hexosetransportern und eignet sich daher gut zur Untersuchung der Wirkungsweise und Regulation dieser Transporter, sowie deren Translokation zur Plasmamembran.
Ziel der vorliegenden Arbeit war es, die Funktion des in der Membran des Endoplasmatischen Retikulums lokalisierten Proteins Gsf2 der Hefe Saccharomyces cerevisiae näher zu charakterisieren. Gsf2 ist an der Translokation der Hexosetransporter Hxt1, Hxt3 und Gal2 zur Plasmamembran beteiligt. Die Deletion von GSF2 führt zur Akkumulation dieser Transporter in der Membran des Endoplasmatischen Retikulums. Interaktionen von Gsf2 mit ribosomalen Proteinen, Komponenten der Translokationsmaschinerie und COPII-Hüllproteinen deuten auf eine multifunktionelle Hexosetransporterspezifische Funktion des Verpackungschaperons Gsf2 hin.
Mit Hilfe des „Synthetic Genetic Arrays“ wurde nach synthetisch letalen und synthetisch kranken Interaktionspartnern von GSF2 gesucht, die zur Aufklärung der Funktion von GSF2 beitragen beziehungsweise bisherige Forschungsergebnisse verifizieren sollten. Unter den nicht-essentiellen Genen der Hefe konnte allerdings kein synthetisch letaler oder synthetisch kranker Interaktionspartner von GSF2 ermittelt werden.
Im zweiten Projekt sollten Multicopy-Suppressoren aus einer Genbank identifiziert werden, die in der Lage sind die Deletion von GSF2 und damit verbundene Retention von Hxt1 in der Membran des Endoplasmatischen Retikulums zu komplementieren. Mit Hilfe dieses Screenings konnten einzig GSF2-kodierende Plasmide identifiziert werden.
Die Ergebnisse der beiden genetischen Screening-Verfahren belegen, dass Gsf2 eine herausragende Rolle innerhalb des Translokationsprozesses von Hxt1 einnimmt.
Plants absorb sunlight via photosynthetic pigments and convert light energy intochemical energy in the process of photosynthesis. These pigments are mainly bound to antenna protein complexes that funnel the excitation energy to the photosynthetic reaction centres. The peripheral antenna of plant photosystem II (PSII) consists of the major light-harvesting complex of PSII (LHC-II) and the minor LHCs CP29, CP26 and CP24. Light intensity can change frequently and plants need to adapt to high-light conditions in order to avoid photodamage. When more photons are absorbed than can be utilised by the photosynthetic machinery, excessive excitation energy is dissipated as heat by short-term adaptation processes collectively known as non-photochemical quenching (NPQ). A decrease in PSII antenna chlorophyll (Chl) fluorescence yield and a reduction in the average Chl fluorescence lifetime are associated with NPQ. The main component of NPQ is the so-called energy-dependent quenching (qE), and it is triggered by the rapid drop in thylakoid lumenal pH resulting from the plant’s photosynthetic activity. This process is thought to take place at the PSII antenna complexes, which therefore not only capture and transfer light energy but are also involved in balancing the energy flow. The decrease in lumenal pH acivates the enzyme violaxanthin de-epoxidase (VDE), which converts the xanthophyll violaxanthin (Vio) into zeaxanthin (Zea) in the xanthophyll cycle. In addition, the PSII subunit PsbS was discovered to be essential for qE by screening qE-deficient Arabidopsis thaliana mutants. This membrane protein is considered a member of the LHC superfamily, which also includes LHC-II and the minor LHCs. Previous studies on PsbS isolated either from native source or refolded in vitro have produced inconsistent results on its pigment binding capacity. Interestingly, a pH-dependent change in the quaternary structure of PsbS under high light conditions has been reported. This observed dimer-tomonomer transition very likely follows the protonation of lumenal glutamates upon the drop in pH and is accompanied by a change in PSII supercomplex localisation. PsbS dimers are preferentially found in association with the PSII core, whereas PsbS monomers co-localise with LHC-II.Despite the identification of !pH, Zea and PsbS as key players in qE, both the nature of the quencher(s) as well as the underlying molecular mechanism leading to excess energy dissipation still remain unknown. Several models have been put forward to explain the reversible switch in the antenna from an energy-transmitting to a quenched state. Proposals include a simple pigment exchange of Vio for Zea, and aggregation or an internal conformational change of LHC-II. Charge transfer (CT)quenching in the minor LHCs or quenching by carotenoid dark state (Car S1)-Chl interactions have also been suggested. However, none of these qE models has so far been capable of accommodating all the physiological observations and available experimental data. Most importantly, the function of PsbS remains an enigma. A recent qE model suggested that monomerisation of PsbS enables the protein to transiently bind a carotenoid and form a quenching unit with a Chl of a PSII LHC. In view of the various proposed qE mechanisms, this thesis aimed at understanding the interplay of the different qE components and the contribution of the PSII subunits LHC-II, the minor LHCs and PsbS to qE. The initial approach was to investigate the properties of the PSII subunits in the most simple in vitro model system, namely in detergent solution. For this purpose, LHC-II was isolated either from native source or refolded from recombinantly produced protein. Investigation of the minor LHCs and PsbS required heterologous expression and refolding. In addition, experiments were performed on aggregated LHC-II. Aggregates of LHC-II have been used as a popular model system for qE because they exhibit highly quenched Chl fluorescence. At the final stage of this doctoral work, a more sophisticated model system to approximate the thylakoid membrane was developed by reconstitution of the PSII subunits LHC-II and PsbS into liposomes. This system not only allowed for investigation of these membrane proteins in their native environment, but also for mimicking the xanthophyll cycle by distribution of Zea within the membrane as well as !pH by outside buffer exchange. The role of Zea in qE was first investigated with detergent solubilised antenna proteins. The requirement of this xanthophyll for qE is well-known, but the specific contribution to the molecular quenching mechansim is unclear. Previous work had shown that replacement of Vio for Zea in LHC-II was not sufficient to induce Chl fluorescence quenching in Zea-LHC-II, as suggested by the so-called molecular gearshift mechanism. However, by means of selective two-photon excitation spectroscopy, an increase in electronic interactions between Car S1 and Chls was observed for LHC-II upon lowering the pH of the detergent buffer. Electronic Car S1-Chl coupling became even stronger when Zea-LHC-II was probed. The extent of Car S1-Chl coupling correlated directly with the extent of Chl fluorescence quenching, in a similar way as observed previously in live plants under high-light conditions. However, very similar results were obtained with LHC-II aggregates. This implied that the increase in electronic interactions and fluorescence quenching was independent of Zea and low pH. Further experiments on aggregates of LHC-II Chl mutants indicated that the targeted pigments were also not essential for the observed effects. It is proposed that the same molecular mechanism causes an increase in electronic Car S1-Chl interactions and Chl fluorescence quenching in Zea-LHC-II at low pH as well as in aggregated LHC-II. Most likely, surface exposed pigments form random quenching centres in both cases. On the other hand, it was possible that Zea could act as a direct quencher of excess excitation energy in the minor LHCs. However, enrichment of refolded CP29, CP26 and CP24 with Zea did not lead to a change in the Chl excited state lifetime. Formation of a carotenoid radical cation, previously implied in CT quenching, was also not observed, although artificial generation of such a radical cation was principally possible as shown for CP29. During the course of this work, a study reporting the formation of Zea radical cations in minor LHCs was published. Therefore, Zea-enriched minor LHCs were again investigated on the experimental apparatus used in the reported study. Indeed, the presence of at least one carotenoid radical cation for each minor complex was detected. It is suggested that either the preparation method of incubating the refolded minor LHCs with Zea in contrast to refolding the complexes with only Zea and lutein causes the observed differences or that the observed spectral radical cation signatures are due to experimental artifacts. While the experiments with LHC-II and the minor LHCs gave useful insights into the putative qE mechanism, the quencher site and the mode of action of Zea could still not be unambiguously identified. Most importantly, these studies could not explain the function of the qE keyplayer PsbS. Therefore, the focus of the work was shifted to PsbS protein production, purification and characterisation. In view of inconsistent reports on the pigment binding capacity of this PSII subunit, refolding trials with and without photosynthetic pigments were conducted. The formation of a specific pigmentprotein complex typical for other LHCs was not observed and neither was the earlier reported “activation” of Zea for qE by binding to this protein. Nevertheless, PsbS refolded without pigments displayed secondary structure content in agreement with previous studies, indicating pigment-independent folding. Reconstitution of pigmentfree, refolded PsbS into liposomes confirmed that the protein is stable in the absence of pigments. Zea distributed in PsbS-containing liposomes also showed no spectral alteration that would indicate its “activation”. With the ability to reconstitute PsbS, it was then possible to proceed to modelling qE in a proteoliposome system. For this purpose, PsbS was co-reconstituted with LHC-II, which has been reported to interact with PsbS. One-photon excitation (OPE) and two-photon excitation (TPE) spectroscopy measurements were performed on LHC-II- and LHC-II/PsbS-containing liposomes. This enabled both quantification of Chl fluorescence quenching as well as determination of the extent of electronic Car S1-Chl interactions. The effect of Zea was investigated by incorporating it in the proteoliposome membrane. It was shown that Zea alone was not able to induce significant Chl fluorescence quenching when only LHC-II was present. However, when LHC-II and PsbS were co-reconstituted, pronounced Chl fluorescence quenching and an increase in electronic Car S1-Chl interactions were observed and both effects were enhanced when Zea was present. Western blot analysis indicated the presence of a LHC-II/PsbS-heterodimer in these proteoliposomes. In addition to the OPE and TPE measurements, the average Chl fluorescence lifetime was determined in detergent-free buffer at neutral pH and directly after buffer exchange to low pH. No significant changes in the average lifetime were observed for LHC-II proteoliposomes when either Zea was present or after exchange for low pH buffer. This indicated that Zea alone cannot act as a direct quencher, which concurs with the OPE measurements. Moreover, the complex was also properly reconstituted as no aggregation or significant Chl fluorescence quenching were observed. The average lifetime was not significantly affected in LHC-II/PsbS-proteoliposomes, independent of Zea or pH. However, a shortlived component in the presence of a long-lived component was not resolvable with the time resolution of the fluorescence lifetime apparatus.
Implications for qE model systems and the in vivo quenching mechanism are discussed based on the experiments in detergent solution, on LHC-II aggregates and with the proteoliposome model system.