Biologische Hochschulschriften (Goethe-Universität; nur lokal zugänglich)
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Retroviral vectors are powerful tools in clinical gene therapy as they integrate permanently into the target cell genome and thus guarantee long-term expression of transgenes. Therefore, they belong to the most frequently used application platforms in clinical gene therapy involving a broad range of different target cells and tissues. However, stable genomic integration of retroviral vectors can be oncogenic, as reported in several animal models and in clinical trials. In particular, γ-retroviral vectors, which derive from naturally mutagenic γ-retroviruses, integrate semirandomly into the host genome with regard to the target sequence, but have a preference for regions of active transcription and regulatory elements of transcriptionally active genes. The integration can result in overexpression of adjacent genes or disruption of ‘target’ gene expression. Moreover, γ-retroviral integration can cause modified transcripts and proteins through alternative or aberrant splicing or through premature termination of transcription.
Initially, the event of insertional mutagenesis and subsequent induction of leukemia by the genotoxicity of a γ-retroviral vector was described in a mouse model after genetic modification of hematopoietic stem cells (HSCs). Vector-related activation and overexpression of the oncogene ecotropic viral integration site-1 (Evi1) fostered clonal outgrowth and leukemogenesis. Additional genotoxic events of γ-retroviral vectors were observed in clinical HSC gene therapy trials for X-linked severe combined immune deficiency (SCID-X1), chronic granulomatous disease (X-CGD), and Wiskott-Aldrich Syndrome (WAS). But, genotoxicity induced by γ-retroviral vectors has never been described in clinical gene therapy trials involving adoptive transfer of genetically modified mature T lymphocytes. This fact is surprising, since T cells are long-lived and have a high capacity of self-renewal.
In a previous study, the susceptibility towards oncogenic transformation of mature T cells and HSCs after genetic modification was compared. It could be demonstrated that T-cell receptor (TCR)-polyclonal mature T cells are far less prone to transformation after γ-retroviral transfer of (proto-)oncogenes in vivo than HSCs. Additional experiments revealed that TCR-oligoclonal (OT-I and P14) mature T cells are transformable in the same setting and give rise to mature T-cell lymphomas (MTCLs).
In the present thesis, the susceptibility of mature T cells towards insertional mutagenesis was investigated. Within the first part of the thesis, retroviral integration sites (RISs) from 33 murine MTCLs were retrieved and subsequently analyzed in terms of integration pattern, detection of common integration sites (CIS) and gene ontology (GO). As these bioinformatic results demonstrated that insertional mutagenesis most likely contributed to mature T-cell lymphomagenesis, the susceptibility of mature T cells was directly assessed in a mouse model. Therefore, murine TCR-oligoclonal OT-I T cells were transduced with an enhanced green fluorescent protein (EGFP) encoding γ-retroviral vector and gene-modified T cells were transplanted into RAG1-/- mice. After 16 months, including one round of serial transplantation, a case of MTCL emerged. Tumor cells were characterized by CD3, CD8, TCR and ICOS expression. Integration site analysis via ligation-mediated polymerase chain reaction (LM-PCR) revealed a proviral insertion in the Janus kinase 1 (Jak1) gene. Subsequent overexpression of Jak1 could be demonstrated on transcriptional and protein level. Furthermore, T-cell lymphoma cells were characterized by an activated Jak/STAT-pathway as signal transducer and activator of transcription 3 (STAT3) was highly phosphorylated. The overexpression of Jak1 was causally implicated in tumor growth promotion as specific pharmacological inhibition of Jak1 using Ruxolitinib significantly prolonged survival of mice transplanted with these Jak1-activated tumor cells. A concluding systematic metaanalysis of available gene expression data on human mature T-cell lymphomas/leukemias confirmed the relevance of Jak/STAT overexpression in sporadic human T-cell tumorigenesis.
This was the first reported case of an insertional mutagenesis event in mature T cells in vivo. Thus, the results obtained in this thesis underline the importance of long-term monitoring of genetically modified T cells in vivo and the evaluation of vector toxicology and safety in T-cell based gene therapies. In particular, the transduction of T cells with a recombinant TCR or CAR (chimeric antigen receptor) bears a risk enhancement, as normal T-cell homeostasis is perturbed besides the general risk of insertional mutagenesis.
In this thesis the integral membrane protein diacylglycerol kinase (DAGK) from E.coli is investigated with solid-state NMR. The aim is to gain an insight into the enzyme’s mechanism through integration of kinetic, structural and dynamic data. The biological function of DAGK is the transfer of the γ-phosphate group from Mg*ATP to diacylglycerol (DAG) building phosphatidic acid (PA)[6] as port of the membrane-derived oligosaccharide cycle[31,34]. Surprisingly, DAGK does not share structural or sequential similarities with other kinases[12]. Typical sequence motives found in other kinases, which catalyze phosphoryl transfer reactions, are not found[13]. In its physiological form DAGK is a homo-trimer with nine transmembrane helices, three catalytic centers and a size of 39.6 kDa.
First, the set-up of a real-time 31P MAS NMR experiment is shown. This experiment allows measuring in real-time the simultaneous ATP hydrolysis in the aqueous phase and lipid substrate phos-phorylation in the membrane phase with atomic resolution under magic angle spinning[56]. After fast transfer of the sample into the NMR spectrometer the enzymatic reaction is started with a temperature jump. This approach of real-time MAS NMR in a dual-phase system was demonstrated for the lipid substrate analogs dioleoyl- (DOG) and dibutyrylglycerol (DBG), with a C8 and C4 aliphatic chain, respectively. The combination of 31P direct and cross polarization functions as a dynamic filter. In the 31P direct polarized experiment nuclei in both phases are detected, while in the 31P cross polar-ized experiment, only nuclei in the membrane phase are detected. Rates for substrate turnover, i.e. degradation of γP-, βP, αP-ATP and build-up of βP-, αP-ADP, free phosphate as side reaction, and PA are obtained, which reveal a Michaelis-Menten behavior with regard to Mg*ATP and DBG. Here Mg*ATP and DBG follow a random-equilibrium model, where every substrate can bind indepen-dently from the other substrate. Analyses of the peak integrals from educts and products of the enzymatic reaction, revealed the stoichiometry of the reaction: 1.5 ATP molecules are used to phos-phorylate one DBG molecule. The excess of ATP is attributed to the basal ATPase activity. Further-more, experiments with ATPγS, usually regarded as a non-hydrolysable ATP-analog, where carried out. Surprisingly, DAGK hydrolyzes ATPγS and also transfers the thio-phosphate group to the lipid acceptor DBG, which points to a certain degree of plasticity in the active center. A phosphorylated enzyme intermediate was not detected. These results suggest the building of a ternary complex of Mg*ATP, DBG and DAGK performing a direct-phosphoryl transfer reaction, without passing through a phosphorylated enzyme intermediate. Experiments with the transition state analog ortho-vanadate (Vi) showed a decoupling of the ATP hydrolysis activity from lipid substrate phosphorylation. This indicates a specific transfer site for the γ-phosphate group from ATP to DAG, which can be blocked by Vi.
A general disadvantage of NMR spectroscopy compared to other spectroscopic methods is its inherent low sensitivity. One possible starting point for the improvement of signal-to-noise per unit time is the reduction of the spin-lattice relaxation time of protons[209]. Usually 95 % of the experi-mental time is required for the relaxation of the 1H to equilibrium. The addition of paramagnetic species can be used to reduce the 1H T1[233]. In a comprehensive study four different paramagnetic agents were tested: Cu2+-EDTA, Cu2+-EDTA-tag, Gd3+-TTAHA and Gd3+-DOTA. The titration of these paramagnetic complexes showed the principle feasibility of this approach, but differences between the tested species exist. The most promising complex is Gd3+-DOTA which, at a concentration of 2 mM, causes a 10-time improvement of signal-to-noise ratio per unit time. This allowed measuring 2D 13C-13C correlation spectra of proteoliposomes in one tenth of the usual required experimental time (i.e. 10 hours vs. 4 days) with good signal-to-noise.
For the investigation of structural or dynamic changes in the protein upon substrate interaction with MAS NMR, the spectral properties CP efficiency and resolution of the DAGK in liposomes needed to be improved. The most critical step during sample preparation is the reconstitution of the membrane protein from detergent micelles into a membrane of synthetic lipids under detergent removal. For this procedure the important criteria are enzymatic activity, measured in a coupled ATPase assay[55], and homogeneity of the proteoliposomes, which was tested e.g. on a discontinuous sucrose step gradient. Therefore an extensive study was carried out, in which different detergents, lipids and lipid mixtures, techniques for detergent removal and different protein-to-lipid ratios were tested. A direct correlation between high ATPase activity and good resolution was not found. Moreover, active DAGK in a mixture of DMPC and cholesterol, which emulates the membrane features of a membrane containing DAG, showed the best CP efficiency and resolution.
The assignment of the protein backbone and amino acid side chains the first mandatory step towards the investigation of structural and dynamical features influencing and defining the enzymatic mechanism by MAS NMR. As the assignment procedure is very time consuming for a total protein, a special labeling scheme for DAGK was developed, which allows assigning most of the protein areas presumably involved in enzyme catalysis. The assignment of DAGK with solution NMR[132] was not transferable to the MAS NMR spectra. Most important for the assignment process were the unique pairs[335], two consecutive amino acids which only appear once in the amino acid sequence. These unique pairs served as anchor points. Five different multinuclear MAS NMR experiments (DARR, NCO, NCA, NCACX, NCOCX) were required for the sequential assignment. It was possible to assign 35 % of the total amino acid sequence with one sample and 8 experiments acquired at 850 MHz. The secondary structure analysis showed subtle differences to the DAGK assignment with solution NMR[132], which can be attributed to the different environment in lipid bilayers and detergent micelles.
Data about structural and dynamical changes under substrate interaction can reveal details about the enzymatic mechanism. Therefore changes in chemical shift in 2D heteronuclear correlation experiments in the apo-state and under substrate saturated conditions with the substrates Mg*AMP-PNP, a non-hydrolysable ATP-analog, DOG, a mixture of Mg*AMP-PNP and DOG as well as inhibited by Vi were recorded. The most significant peak changes were observed at the interface membrane-cytoplasm as well as the the N-terminal amphipathic helix. The residues revealing chemical shift perturbations correlate with conserved residues or such residues, for which importance for catalysis and/or folding could be shown in mutation studies[8]. Especially noticeable were the changes at the amino acids Asn 72, Lys 64, His 87, Tyr 86 and Asp 95.
Beside changes of the chemical shift, changes of line width or signal doubling were observable. These changes can point to a correlation with dynamic reorientations in the μs-ms time regime, which are most relevant for enzymatic processes. The protein backbone dynamics in the apo-state as well as saturated with the substrates or inhibited with Vi were investigated with a 15N-CODEX experiment, which is based on the reorientation of the CSA tensor upon dynamical changes[350]. Specific effects of the different substrates or analogs on the protein backbone dynamic were revealed complementing the structural data and the chemical shift perturbation experiments.
Clathrin-mediated endocytosis (CME) involves spatially and temporally restricted molecular dynamics.
Although protein kinases and the actin cytoskeleton contribute to the process, whether and how
functions of kinases and actin are integrated remains unknown. Here, we demonstrate that neural
Wiskott-Aldrich syndrome protein (N-WASP) and protein kinase CK2 form a complex and localize on
clathrin-coated vesicles (CCVs). N-WASP binds to and is phosphorylated by CK2, thereby reducing the
kinase activity of CK2. By contrast, N-WASP-promoted actin polymerization is decreased upon both
phosphorylation and binding of CK2. Knockdown of N-WASP and CK2, alone or in combination, results
in impaired endocytosis of epidermal growth factor (EGF) and increased cell-surface levels of EGF
receptor (EGFR). In order to rescue the phenotype of N-WASP-CK2 knockdown cells, both N-WASP and
CK2 activities and abilities to assemble in a complex are required. In summary, this study shows that the
N-WASP-CK2 complex integrates in a single circuit different activities contributing to CME of EGFR and
that the interplay between the two proteins optimizes this process.
Shrew-1 wurde bei der Suche invasivitätsassoziierter Gene mittels eines DDRT-PCR-Ansatzes aus invasiven Zellen isoliert. Wie computergestützte Analysen der Sequenz ergaben, wies das bis dahin unbekannte Protein keinerlei Ähnlichkeiten mit bereits bekannten Proteinen auf und homologe Proteine wurden bisher nur in Vertebraten gefunden. Expressionsanalysen mit einem GFP-markierten shrew-1 zeigten, dass es an der basolateralen Plasmamembran lokalisiert, wo es mit dem E-Cadherin vermittelten Adhäsions-Komplex kolokalisiert. Eine Integration in diesen Komplex geschieht höchstwahrscheinlich durch direkte Interaktion mit β-Catenin. Ein weiteres Molekül das als potenzieller Interaktionspartner von shrew-1 identifiziert wurde und das in der Literatur oft als Tumorsuppressor diskutiert wird, ist Caveolin-1. Ferner konnten Überexpressionexperimente bereits zeigen, dass shrew-1 die Invasivität von HT1080-Zellen erhöhen kann. Das Ziel dieser Arbeit war es, zum einen mit Hilfe des Hefe-Split-Ubiquitin-Systems eine Interaktion von shrew-1 und Caveolin-1 zu bestätigen und zum anderen neue Interaktionspartner zu identifizieren, die helfen könnten, die Rolle von shrew-1 in invasiven Vorgängen zu erklären. Um eine mögliche Verbindung von shrew-1 und einem neuen Interaktionspartner in Bezug auf die Zellinvasivität zu untersuchen, sollten sowohl shrew-1 als auch der potenzielle Interaktionspartner mittels RNAi ausgeschaltet werden. Mit Hilfe des Split-Ubiquitin-Systems war es möglich, die Interaktion zwischen shrew-1 und caveolin-1 zu bestätigen und zu zeigen, dass diese durch die zytoplasmatische Domäne von shrew-1 vermittelt wird. Weiterhin konnte CD147 als neuer Interaktionpartner identifiziert werden. Eine Interaktion beider Proteine konnte ferner mit Hilfe des Bimolekularen-Fluoreszens-Komplementations-Systems (BIFC), des Fluoreszens-Resonanz-Energie-Transfers (FRET) und Coimmunoprezipitationen bestätigt werden. Die Interaktion von shrew-1 und CD147 scheint allerdings abhängig vom zellulären Kontext zu sein, wie die FRET-Analysen vermuten lassen. So konnte nämlich mit diesen Analysen eine starke Interaktion in MCF7-Zellen gezeigt werden, wohingegen die Interaktion in MDCK-Zellen schwächer war. Einer der auffälligsten Unterschiede dieser beiden Zelllinien im Bezug auf diese Interaktion könnte sein, dass MCF7-Zellen im Gegensatz zu MDCK-Zellen kein Caveolin-1 exprimieren. Caveolin-1 konnte seinerseits als Interaktionspartner von shrew-1 mit Hilfe des Hefe-Split-Ubiquitin-Systems bestätigt werden und andererseits wurde von einer anderen Arbeitsgruppe eine Interaktion von CD147 mit Caveolin-1 publiziert. Um dies näher zu untersuchen, wurde Caveolin-1 in MCF7-Zellen exprimiert und die FRET-Analysen in diesen wiederholt. Wie vermutet kam es zu einer Reduktion der Interaktion in Caveolin-1 exprimierenden MCF7-Zellen. CD147 ist neben vielen anderen Funktionen auch maßgeblich an der Regulation von Matrix-Metalloproteinasen beteiligt und kann somit die Invasivität von Zellen beeinflussen. Um einen Einfluß von shrew-1 und CD147 auf die Invasivität zu untersuchen, wurden beide Proteine mittels RNAi in HeLa-Zellen ausgeschaltet. Nachdem ein negativer Einfluss dieses Ansatzes auf das Proliferationsverhalten der Zellen ausgeschlossen werden konnte, wurde ein möglicher Effekt auf die Invasivität der Zellen untersucht. Durch die Analyse in Matrigel-Invasionsassays konnte gezeigt werden, dass das unabhängige Ausschalten beider Proteine die Invasivität der Zellen auf 35-55% im Vergleich zu Kontrollzellen reduziert. Die Ergebnisse dieser Arbeit untermauern die Annahme, dass shrew-1 eine Rolle bei invasiven Vorgängen spielt und weisen darauf hin, dass dies möglicherweise durch eine Interaktion mit CD147 geschieht. Die Interaktion mit CD147 und damit eine mögliche Funktion von shrew-1 bei invasiven Vorgängen scheinen dabei abhängig vom zellulären Kontext zu sein.
Batten disease refers to neuronal ceroid lipofuscinoses (NCLs), which are inherited lysosomal storage diseases with diverse ages of onset and cause progressive neurodegeneration. The most common NCL is Juvenile NCL (JNCL), which begins in early childhood and is characterized by lysosomal accumulation of subunit c of the mitochondrial ATP synthase (subunit c). JNCL is caused by mutations in the gene CLN3. This gene encodes the CLN3 protein, a transmembrane protein of unknown structure. Localization of CLN3 is ambiguous, and its exact cellular function is not known. Thereby, it is unclear what mechanisms lead to neurodegeneration in JNCL. Models of JNCL present disturbed membrane bound organelles and cytoskeleton as well as impaired autophagy and lysosomal function. The JNCL gene defect that most patients harbor is deletion of the exons 7 and 8 of CLN3. In the Cln3Δex7/8/Δex7/8 mouse model of JNCL, this deletion has been introduced to the mouse Cln3 gene.
The actin cytoskeleton consists of filaments formed through polymerization of actin and provides a framework which defines cellular morphology and also facilitates cell motility, cytokinesis, and cell surface remodeling. Rho GTPases are signaling proteins which regulate the assembly and dynamics of the actin cytoskeleton and play an important role in neuronal morphology. Rho GTPases need to be membrane-anchored in order to become active and initiate a signaling cascade. Their membrane anchorage is achieved through their geranylgeranyl tails, which they acquire through prenylation. Protein prenylation refers to the attachment of a geranylgeranyl or farnesyl group to the C-terminus of a protein. The enzyme geranylgeranyl transferase (GGTase) catalyzes geranylgeranylation, whereas geranylgeranyl pyrophosphate (GGPP) is the donor of the geranylgeranyl group. Cells produce GGPP as well as cholesterol and other lipids through the mevalonate pathway (MVA pathway).
The aim of this study was to analyze how the JNCL gene defect affects cellular morphology, especially the actin cytoskeleton and Rho GTPases, and the MVA pathway which is connected with Rho GTPase activation. These important cellular components play crucial roles in neurons and are implicated in other neurodegenerative diseases, but have received little attention in JNCL. The immortalized CbCln3Δex7/8/Δex7/8 cerebellar precursor cell line from Cln3Δex7/8/Δex7/8 mice was used for the experiments and provides a genetically accurate, neuronal cell model of JNCL. CbCln3Δex7/8/Δex7/8 cells present subunit c accumulation only when aged at confluency, but sub-confluent cells display other phenotypes. The experiments of this study were performed both with confluency-aged and sub-confluent cells. Filamentous actin was visualized, and protein levels as well as membrane localization of several small Rho GTPases was analyzed biochemically. Also the protein levels of GGTase and the key enzymes of the mevalonate pathway were determined.
Staining pattern of filamentous actin was disturbed in confluency-aged CbCln3Δex7/8/Δex7/8 cells. Additionally it was found out that these cells did not grow to wild-type size and exhibited an elongated peroxisomal morphology. Rho GTPases had reduced total levels and showed a tendency of decreased membrane localization. Levels of GGTase and the MVA pathway enzymes were altered. Results of sub-confluent CbCln3Δex7/8/Δex7/8 cells were similar with the exception of HMG-CoA reductase, which is the rate-limiting enzyme of the MVA pathway: while its level in confluency-aged CbCln3Δex7/8/Δex7/8 cells was increased, at sub-confluency it showed a reduced level. Also, in contrast with the confluency-aged cells, Rho GTPases presented a tendency of increased membrane localization.
The results of this study reveal that the accurate JNCL gene defect alters cellular morphology and the activity of the MVA pathway in neuronal cells. Small cell size and disrupted architecture of the actin cytoskeleton are confirmed as neuronal JNCL phenotypes, and the peroxisome is introduced as a novel cellular component affected in JNCL. Through defects in endocytosis, autophagy, lysosomal and mitochondrial function, and cytoskeleton, the JNCL gene defect may prevent cells from growing to wild-type size. The JNCL gene defect may attenuate the MVA pathway via mitochondrial dysfunction and/or upregulation of degradative processes. Attenuation of the MVA pathway may contribute to impaired membrane rafts, which are an established phenotype of JNCL cells. As indicated by reduced GGTase level and supported by downregulation of lipid production through the MVA pathway, the JNCL gene defect might also decrease prenylation of proteins.
Lichtsensitive Proteine bzw. Photorezeptoren eignen sich hervorragend für das Studium des Zusammenhangs von Proteinstruktur und –funktion. Lichtrezeptorproteine werden leicht durch Licht angeregt, wodurch eine gute Zeitauflösung für deren Untersuchung erreicht werden kann. Weiterhin sind sie als Signalproteine während der Etablierung des aktiven Zustandes und dessen Zerfalls großen konformationellen und strukturellen Änderungen unterworfen. Ausgehend von diesen Eigenschaften wurde bereits eine große Zahl von Lichtrezeptorproteinen genauer untersucht. Diese vorliegende Arbeit beschäftigt sich mit lichtinduzierten konformationellen Änderungen in Membranproteinen. Dafür wurden drei verschiedene Systeme herangezogen: das kleine α-helikale Peptid Gramicidin A, der G-Protein gekoppelte Rezeptor Rhodopsin and die BLUF (blue light using FAD) Domäne des hypthetischen Membranproteins Blrp (blue-light regulated phosphodiesterase) aus E. coli. Gramicidin A (gA) ist ein aus dem Bodenbakterium B. brevis isoliertes Antibiotikum, das Transportkanäle für einwertige Kationen wie Lithium, Natrium und Kalium ausbildet. Gelöst in Detergenzmizellen, wurde für gA unerwartet eine Wechselwirkung mit Blaulicht fest gestellt (Abbildung 1). Diese Beobachtung wurde mit statischen und zeitaufgelösten NMRspektroskopischen Methoden genauer untersucht und ist in Kapitel 2 näher beschrieben. Basierend auf den gewonnenen Erkenntnissen wird postuliert, dass einer der Tryptophanreste (Trp9) eine lichtinduzierte konformationelle Änderung erfährt. Ausgehend von der Konformation in Lösung befindet sich die Seitenkette von Trp9 in einem Gleichgewicht (70:30) mit einer zweiten Konformation. Bei der zweiten Konformation handelt es sich möglicherweise um die Orientierung, die der Tryptophanrest unter Festkörper-NMR Bedingungen einnimmt. Die Lebensdauer der neuen Konformation beträgt in etwa eine Sekunde. Der G-Protein gekoppelte Rezeptor Rhodopsin ist verantwortlich für die Verarbeitung von Lichtsignalen in den Stäbchenzellen der Retina. Die Absorption eines einzelnen Photons führt zur Isomerisierung des kovalent gebundenen Chromophors 11-cis-Retinal, wodurch konformationelle Änderungen im Protein veranlasst werden. Der aktivierte Metarhodopsin II (MetaII) Zustand induziert eine Enzymkaskade und schließlich einen Nervenimpuls, das Säugern das Kontrastsehen ermöglicht. Eine große Bandbreite an hochauflösenden NMRspektroskopischen Methoden, (einschließlich zeitaufgelöster und Festkörper-NMR Methoden) wurde im Laufe dieser Arbeit angewandt, um Konformation und Dynamik von bovinem Rhodopsin näher zu untersuchen. In Kapitel 3.1 sind zu Beginn mehrere Optimierungsschritte im Hinblick auf ein kostengünstiges, isotopenmarkiertes Säugerzellenmedium beschrieben. In diesem Zusammenhang wurden mehrere Rhodopsin NMR-Proben hergestellt, wobei der Gehalt an isotopenmarkierten Aminosäuren ca. 50% betrug. Anhand dieser Proben konnte bewiesen werden dass sich mit Lösungs-NMR-Spektroskopie auch sehr große, in Detergenzmizellen stabilisierte Membranproteine (~150 kD Gesamtmasse) detailliert studieren lassen. Die Untersuchungen konzentrierten sich auf den C-Terminus, für den nach sequentieller Zuordnung (Abbildung 2a) und heteronuklearern Relaxationsmessungen ein Mobilitätsverhalten bestimmt wurde, das dem mittelgroßer Proteine ähnelt. Des Weiteren konnten keinerlei definierte Strukturelemente innerhalb des C-Terminus identifiziert werden, u.a. durch einen Vergleich mit eines 19mer Peptids, dessen Primärsequenz des Rhodopsin C-Terminus entspricht (Abbildung 2a und 2b). In Kapitel 3.2 wird die nichtinvasive Zuordnung der Rückgratresonanzen aller fünf Trytophane mit Hilfe einer Kombination aus Lösungs- und Festkörper-NMR beschrieben. Dazu wurden verschiedene Rhodopsinproben hergestellt, die alle möglichen 13C’i-1-Carbonyl/15Ni-Tryptophan isotopenmarkierten Amidpaare enthielten. Eine Teilzuordnung der Tryptophanindolsignale konnte in Lösung durch Protonen-/Deuteriumaustausch und heteronukleare Relaxationsmessungen erreicht werden. Die Ergebnisse legen nahe, dass die Kombination aus Lösungs- und Festkörper-NMR-Spektroskopie sehr gut geeignet ist um komplementäre Informationen zu strukturellen und dynamischen Eigenschaften von Rhodopsin zu liefern. Fehlende Zuordnungen in den Lösungspektren konnten durch den Verglich mit Festkörperspektren ergänzt werden und umgekehrt (Abbildung 3). In Kapitel 3.3 ist die erfolgreiche Adaption der zeitaufgelösten NMR-Spektroskopie für die Untersuchung des Rhodopsin MetaII Zerfalls in vitro beschrieben. Die zeitaufgelösten protonendetektieren NMR-Experimente wurden mit unmarkiertem, in Detergenzmizellen stabilisiertem Protein bei verschiedenen Temperaturen aufgenommen, wobei sich die anschließende Auswertung auf die stark tieffeldverschobene Indolregion konzentrierte (Abbildung 4). Für die berücksichtigten Signale traten nach Induktion des aktivierten Zustandes deutliche chemische Verschiebungsänderungen auf, außerdem zeigten sie unterschiedlich schnellen MetaII Zerfall. Zusätzlich zu der erwarteten Zeitkonstante des MetaII Zerfalls (~6 min bei 298 K) konnte erstmalig eine zweite, ca. zehnmal langsamere Zeitkonstante bestimmt werden. Diese zweite Zeitkonstante ist möglicherweise ein Ausdruck für die langsame Entfaltung von Sekundärstrukturelementen nach dem Zerfall des Proteins in Opsin und Retinal. Die BLUF-Domänen verwenden Flavinadeninnukleotid (FAD) als Chromophor und gehören zu der Familie der Blaulichtrezeptoren. In Kapitel 4 wird die Untersuchung des lichtadaptierten Zustandes der E. coli BLUF Domäne auf Protein- und Ligandenebene mit zeitaufgelösten proton- und phosphordetektierten NMR-Experimenten beschrieben. In Abbildung 5 sind die statischen Licht- und Dunkelspektren (jeweils licht- und dunkeladaptiert) dargestellt. Im Folgenden konnte durch Beobachtung der Dunkeladaption bei verschiedenen Temperaturen die Aktivierungsenergie des Lichtzustandes bestimmt werden. Des Weiteren wurden zum ersten Mal phosphordetektierte NMR-Experimente erfolgreich angewandt, um einen biologisch relevanten Vorgang zeitabhängig näher zu bestimmen.
Project I: The progression of rod and cone degeneration in retinally degenerate (rd) mice ultimately results in a complete loss of photoreceptors and blindness. The inner retinal neurons survive and several recent studies using genetically targeted, light activated channels have made these neurons intrinsically light sensitive. We crossbred a transgenic mouse line expressing channelrhodopsin2 (ChR2) under the control of the Thy1 promoter with the Pde6b(rd1) mouse, a model for retinal degeneration (rd1/rd1). Approximately 30-40% of the ganglion cells of the offspring expressed ChR2. Extracellular recordings from ChR2-expressing ganglion cells in degenerated retinas revealed their intrinsic light sensitivity which was approximately 7 log U less sensitive than the scotopic threshold and approximately 2 log U less sensitive than photopic responses of normal mice. All ChR2-expressing ganglion cells were excited at light ON. The visual performance of rd1/rd1 mice and ChR2 rd1/rd1 mice was compared. Behavioral tests showed that both mouse strains had a pupil light reflex and they were able to discriminate light fields from dark fields in the visual water task. Cortical activity maps were recorded with optical imaging. The ChR2rd1/rd1 mice did not show a better visual performance than rd1/rd1 mice. In both strains the residual vision was correlated with the density of cones surviving in the peripheral retina. The expression of ChR2 under the control of the Thy1 promoter in retinal ganglion cells does not rescue vision. Project II: Lentiviral vectors are becoming the vector of choice for transgene delivery into cells due to their ability to infect non- dividing cells and stably integrate the gene into the genome of the host. Two different viral vector systems, namely HIV-1 and SIV and three different viral vectors PLECYT, PHRCMVChR2 of HIV-1 family and PBjChR2 of SIV were used in this study. The efficiency of the vectors was analyzed by applying them onto the retinal explants in culture and checking the transgene expression. The transgene in the PLECYT lentiviral vector was driven by the EF1A promoter. Upon administration of 5.2 X 106 infectious units of PLECYT viral vector suspension onto the retinal explant resulted in the transduction of retinal ganglion cells. Very few other retinal neurons were found transduced. In the case of PHRCMVChR2, approximately 5 X 105 TU/ml of the vector was used and resulted in the transduction of different neuronal subtypes. Many amacrine cells, ganglion cells and Müller cells were found expressing the transgene. For PBjChR2, 5.6 X104 TU/ml was used which resulted in Müller cell- specific transduction. Very few or no other retinal neurons were found transduced. This study demonstrates the transduction efficiency of different viral vectors on the retinal neurons in vitro. An interesting observation on these viral vectors is their altered tropism. The glycoprotein of the virus is critical for determining their tropism and in this study, all the viral vectors generated were pseudotyped with VSVG, which confers a broad non-specific spectrum of infection. However, analyzing the transgene expression, the viral vectors differ from one another and show remarkable difference in their transduction pattern. To list a few factors that might possibly responsible for the drastic transduction difference exerted by the viral vectors include; 1. Promoters used to drive the transgene expression. 2. HIV or SIV component of the vector in combination with the promoter 3. Titre of the vector used and 4. Other factors like pH and serum used in the study. Therefore optimizing the viral vectors and generating high titers would increase the efficiency and cell-type specific expression of the transgene.
5-lipoxygenase (5-LO) catalyzes the first two steps in leukotriene (LT) biosynthesis. In a two step reaction the enzyme oxygenates arachidonic acid (AA) to form the highly unstable epoxide leukotriene A4 (LTA4) in dehydrating a hydroperoxide intermediate (20). LTA4 can then be further metabolized by two terminal synthases yielding either the potent chemoattractant leukotriene B4 (LTB4) or the cysteinyl leukotrienes (CysLTs). 5-LO enzyme expression is primarily found in mature leukocytes (22) where it can either reside in the cytoplasm or in the nucleus associated with euchromatin (29). Its enzymatic activity is embedded in a complicated network in intact cells regulating LT synthesis by various factors dependent on the cell type and nature of stimulus. Factors such as the amount of free AA released by phospholipase A2 enzymes, levels of enzymes involved, catalytic activity per enzyme molecule and availability of different small molecules influence 5-LO activity (36).
The 5-LO derived LTs are lipid mediators which were shown to primarily mediate inflammatory and allergic reactions and their role in the pathogenesis of asthma is well defined. CysLTs are among the most potent bronchoconstrictors yet studied in man and play an important role in airway remodeling. LTB4 has no bronchoconstrictory effects in healthy and asthmatic humans but displays potent chemoattractant properties on neutrophils and increases leukocyte adhesion to the vessel wall endothelium (22). Therefore, LTB4 enhances the capacity of macrophages and neutrophils to ingest and kill microbes. In concert with LTB4, histamine and prostaglandin E2 (PGE2) CysLTs are thought to maintain the tone of the human airways (82).
Besides their well studied role in asthma, 5-LO derived LTs have also been implicated to play a role in cardiovascular diseases and cancer. In contrast to healthy tissues, LT pathway enzymes and receptors were found to be abundantly expressed in cancer tissues, atherosclerotic lesions in the aorta, heart and carotid artery (86). Pharmacological inhibition of 5-LO potently suppressed tumour cell growth by inducing cell cycle arrest and triggering cell death via the intrinsic apoptotic pathway (92, 93). In several studies LTs were found to exhibit cardiovascular actions by promotion of plasma leakage in postcapillary venules, coronary artery vasoconstriction and impaired ventricular contraction leading to reduced coronary blood flow and cardiac output (24). Unfortunately, the precise molecular mechanisms through which LTs influence carcinogenesis and cardiovascular diseases are still incompletely understood.
In contrast, an increasing number of studies questions the correlation between 5-LO and cancer (95-97) since extreme LT concentrations were applied to induce proliferative effects in the majority of the publications. A few studies exist which show susceptibility towards 5-LO products in physiological concentrations or achieve anti-proliferation by applying low concentrations of 5-LO inhibitors (98) ...
Juvenile Neuronal Ceroid Lipofuscinosis (JNCL) is a rare inherited childhood neurodegenerative disease that is caused by a mutation in the gene CLN3. The function of the protein produced by the gene has remained elusive, and therefore the disease mechanism of JNCL is as of yet unknown. The disease is fatal, and no cure is currently available. We believe that simvastatin shows promise as a possible treatment. Simvastatin is well tolerated in children, and as currently no other viable, less invasive treatment for JNCL exists, at least pilot-scale clinical trials for this new off-label use of simvastatin are warranted.
The protein CLN3 has been indicated to have several different subcellular localizations and functions, but conclusive evidence about its role in cellular metabolism is lacking. It is also unclear why the mutation causes the distinct phenotype of the JNCL disease. In order to bring lucidity to the issue, we set out to identify metabolic pathways related to the phenotype of JNCL by using Multi-Epitope Ligand Cartography (MELC) and the related field of toponomics. Toponomic methods are required to process the massive amount of data generated by the MELC runs in order to extract information from them.
Our disease model of choice was the CLN3Δex7/8 knock-in mouse. To separate cause from effect, we compared embryonal wild type and mutant mouse brains to their adult counterparts. The first analyses revealed progressively abnormal Combinatorial Molecular Patterns (CMPs, an unit of toponomic data) related to cholera toxin/ganglioside 1 (Ctx/GM1), which is a membrane microdomain marker.
Cholesterol is an essential part of microdomains, so we utilized filipin staining to see if there were actual changes in cholesterol concentration and localization between healthy and diseased animals. After the disturbance in cholesterol metabolism was verified, we investigated the metabolic pathway that synthesizes cholesterol, the mevalonate pathway. Simvastatin is a drug that specifically down-regulates the mevalonate pathway. Fish oil affects lipid homeostasis and has some effects similar to those of simvastatin, and both of these drugs have previously been studied for their effects on neurodegenerative diseases. After treatment of mice with these drugs, highperformance liquid chromatography (HPLC) measurements on the brain homogenate showed a decrease in levels of farnesyl pyrophosphate (FPP) and geranyl-geranyl pyrophosphate (GGPP), products of the mevalonate pathway, confirming the effect of these drugs on the brains of the animals. Analyses of motor function of the mice further supported the notion that simvastatin had a positive effect on the condition of the diseased animals.
CMP analyses from the simvastatin treated mice showed a rescue of the Ctx/GM1 CMPs, suggesting at least a partial restoration of membrane microdomain homeostasis. Filipin staining revealed reversion of the apparent cholesterol depletion in the adult mutant mouse hippocampus by simvastatin. Interestingly, an additional effect of the treatment was found: simvastatin also affected glutamate receptor homeostasis, especially as regarding to N-methyl-D-aspartate (NMDA) and alphaamino-3-hydroxyl-5-methyl-4-isoxazole-propionate (AMPA) receptors. This finding suggested that excitotoxicity could be a part of the disease process, and pointed towards glutamate receptors as possible therapy targets. This is in line with previous studies that have shown that attenuation of AMPA receptors and L voltage-dependent channels improve the phenotype of a JNCL mouse and cell model, respectively.
Simvastatin mediates many of its effects via downregulation of the mevalonate pathway products, such as isoprenoids and cholesterol. However, simvastatin also has multiple pleiotropic effects that include suppression of excitotoxicity and granting neuroprotection. It is apparent that simvastatin treatment has a positive effect on JNCL mice, but if its effects are mediated via cholesterol (and membrane microdomains), isoprenoids (and isoprenylated proteins) or via a fully cholesterol independent mechanism remains to be solved.
In this study we have shown that with the MELC method and toponomics it is possible to approach rare diseases with confounded disease mechanisms with a hypothesis-free approach, to identify possible drug targets, and to monitor the effects of the drugs on treated individuals. This should open up a new avenue in the research of the many diseases that so far have avoided all attempts at discerning their nature.
Die Etablierung eines HIV-1 Tiermodells ist ein großes Ziel auf dem Weg zur Entwicklung antiretroviraler Medikamente und Impfstoffe gegen HIV-1. Speziesspezifische Restriktionsfaktoren und fehlende Kofaktoren verhindern jedoch die Replikation von HIV-1 in Tieren. Restriktionsfaktoren sind Bestandteil der intrinsischen Immunität und entwickelten sich im Laufe der Evolution als Abwehrmechanismus gegen diverse Pathogene. Dazu gehören die Proteine der APOBEC3-Familie, TRIM5􀀁 und Tetherin, welche die Virusreplikation von HIV-1 an verschiedenen Punkten seines Lebenszyklus inhibieren. Koevolutionär entwickelten Retroviren Antagonisten, um die restriktive Funktion ihrer Wirtsproteine zu umgehen. Um ein replikationskompetentes, simiantropes HIV zu generieren, wurden im Rahmen dieser Arbeit die Sequenzen vifHIV-1 und vpuHIV-1 gegen vifagm.tan aus SIVagm.tan und vpugsn/den aus den Immundefizienzviren SIVgsn und SIVden substituiert, um die Restriktion gegen A3G und Tetherin in Zellen der Afrikanischen Grünen Meerkatze zu umgehen. Die TRIM5 vermittelte Restriktion wurde über eine Mutation in der Cyclophilin A Bindedomäne des Kapsids verhindert. Die Analyse der Vifagm.tan Funktion bestätigte den geänderten Tropismus des chimären HIV-1 bezüglich der APOBEC3G vermittelten Restriktion. Denn nach Austausch des vifHIV-1 Gens war das Virus nicht mehr in der Lage, die Aktivität des humanen APOBEC3G zu unterbinden und initiierte stattdessen die Degradation des Analogons aus der Afrikanischen Grünen Meerkatze. Weiterhin konnte die erfolgreiche Klonierung des vpugsn/den Gens in HIV-1 die Aktivität der SHIV-Konstrukte gegen Tetherin der Afrikanischen Grünen Meerkatze und der Rhesusaffen ändern, wohingegen humanes Tetherin nicht mehr abgebaut werden konnte. Trotz der erfolgreichen Aktivität der konstruierten SHIVs gegen die zellulären Restriktionsfaktoren der Afrikanischen Grünen Meerkatze, replizierten die generierten chimären Viren in einer AGM Zelllinie, nicht aber in periphären mononuklearen Blutzellen der Afrikanischen Grünen Meerkatze. Ein Indiz, das für weitere strukturelle Anpassungen der Viren gegenüber ihren Wirten spricht, die zur Bildung der Spezies-Barriere beitragen und Zoonosen erschweren. Im zweiten Teil der Dissertation wurden die Aktivitäten der Proteine der APOBEC3-Familie und VifHIV-1 auf ihre Regulation durch Phosphorylierung untersucht. Proteinphosphorylierungen gehören zu den wichtigsten posttranslationalen Proteinmodifikationen, um diverse Funktionen wie die Enzymaktivität, Proteininteraktionen und die zelluläre Lokalisation zu steuern. Dabei konnte die durch Yang et al. postulierte Phosphorylierung von VifHIV-1 nicht bestätigt werden. Analysen der mutmaßlichen VifHIV-1 Phosphomutanten enthüllten, dass die Funktion von VifHIV-1, die Infektiosität von HIV-1 zu gewährleisten, durch Substitution der mutmaßlichen Phosphoaminosäuren nicht beeinträchtigt wird und ebenso sämtliche Phosphomutanten die Degradation von A3G initiierten, wenn auch in unterschiedlichem Maße. Weiterhin wurde im Rahmen dieser Arbeit gezeigt, dass A3C entweder in einem phosphorylierten Protein-Komplex vorliegt oder ein phosphoryliertes Protein bindet. Zudem konnte ermittelt werden, dass APOBEC3A als einziges Protein der APOBEC3-Familie nach TPA- und cAMP-Stimulation phosphoryliert wird. In vitro Kinase Studien konnten zeigen, dass die Phosphorylierung unter anderem durch ERK2 erfolgt. Es konnte jedoch kein Zusammenhang zwischen der Phosphorylierung von A3A und dessen zellulärer Lokalisation, Aktivität gegen HIV-1 als auch gegen die Retrotranspositionselemente IAP und LINE-1 hergestellt werden. Dies lässt den Schluss zu, dass die Phosphorylierung die untersuchten Aktivitäten von APOBEC3A nicht beeinflusst oder APOBEC3A eine bisher unbekannte durch Phosphorylierung regulierte Funktion besitzt.