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Institute
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Der menschliche Körper ist permanent mechanischen Reizen in Form von Dehnung oder Druck ausgesetzt. Diese Stimuli können vielfältige zelluläre Prozesse induzieren. Dehnungsreize erhöhen die Zellproliferation in allen bisher untersuchten Zellspezies, inklusive Endothel- und Epithelzellen. Im Gegensatz dazu scheinen mechanische Druckbelastungen zu zellulärer Differenzierung zu führen. Die Relevanz dieser mechanischen Reize für die Physiologie und Pathophysiologie ist für viele Organe nachgewiesen worden. Jedoch gibt es bislang keine hinreichenden Untersuchungen, die belegen, dass mechanische Reize ebenso eine Rolle bei der Tumorproliferation spielen könnten. Im Fokus dieser Promotionsarbeit steht die Fragestellung, inwieweit die mechanischen Verhältnisse in Tumoren in einem funktionellen Zusammenhang mit der Tumorgenese stehen. Zur Klärung dieser Fragestellung ist ein Xenograft-Tumormodell etabliert worden, das es erlaubt in vivo-Untersuchungen an humanen epithelialen Tumoren durchzuführen. Um Erfahrungen aus vorherigen in vitro-Versuchen nutzen zu können, wurden humane epitheliale A431-Vulvakarzinom- und humane epitheliale A549-Lungenkarzinomzellen für das Tumormodell verwendet. Mit diesem Modell konnte erstmals in vivo gezeigt werden, dass solide humane Tumore einer permanenten mechanischen Dehnung ausgesetzt sind, die direkten Einfluss auf die Proliferation der Tumorzellen hat. Als zentraler Auslöser für die mechanische Dehnung der Tumorzellen konnte der erhöhte tumorinterstitielle Flüssigkeitsdruck (TIFP) identifiziert werden. Der Einfluss der mechanischen Dehnung auf die Proliferation der Tumorzellen wurde anhand der Phosphorylierung der extracellular regulated kinase 1/2 (ERK1/2) bzw. der Ki-67 Expression gezeigt. Durch die Punktion bzw. Drainage von Tumoren konnte der TIFP experimentell abgesenkt werden und in Folge dessen kam es zu einer reduzierten mechanischen Dehnung der Tumorzellen. In allen Versuchen war die Abnahme der mechanischen Dehnung von einer verringerten Phosphorylierung der ERK1/2 bzw. reduzierten Expression des Proliferationsmarkers Ki-67 begleitet. Der TIFP induziert aber nicht nur mechanische Dehnungsreize, sondern er stellt darüber hinaus eine physikalische Barriere für den effizienten Transport von Therapeutika in den Tumor dar. Der gegenüber dem umliegenden Gewebe erhöhte TIFP behindert den interstitiellen Transport und die Aufnahme von Molekülen aus dem Gefäßsystem in die Tumorzellen. Die Etablierung einer neuen experimentellen Technik zur Senkung des TIFP, durch i.v. Injektion von konzentriertem humanem Serumalbumin, führte zu einer signifikanten Verbesserung der Aufnahme und einer Verlängerung der Verweildauer von Makromolekülen/Therapeutika innerhalb von Tumoren. Des Weiteren konnten immunhistochemische Färbungen gegen lymphspezifische Marker in Gewebeproben von A431 und A549 Tumoren keinen direkten Zusammenhang zwischen Lympharchitektur und TIFP zeigen. Dies bedeutet, dass in den untersuchten Tumoren die Ausbildung des hohen TIFP eher auf eine erhöhte Rigidität der extrazellulären Matrix bzw. die hohe Permeabilität des tumorversorgenden vaskulären Gefäßsystems zurückzuführen ist. Parallel zu den in vivo-Untersuchungen durchgeführte in vitro-Versuche konnten Proteine identifizieren, die an der druckinduzierten p38 Signaltransduktionskaskade beteiligt sind. Diese Ergebnisse untermauern die bisherigen in vitro-Daten bzgl. der differentiellen Reaktionen von Zellen auf mechanische Druckreize. Abschließend lässt sich sagen, dass die Ergebnisse der in vivo-Versuche die Bedeutung und die klinische Relevanz des biophysikalischen Parameters TIFP hervorgehoben haben. Die Zukunft der Krebstherapie liegt nicht alleine in der Entwicklung neuer hochspezifischer Wirkstoffe, sondern auch in der Lösung des Transports der Wirkstoffe an den Zielort. Die vorgestellten Ergebnisse dieser Promotionsarbeit weisen eine beträchtliche klinische Relevanz auf, denn sie zeigen, dass die experimentelle Absenkung des TIFP zu einer verbesserten Aufnahme von Therapeutika beiträgt. Gleichzeitig wird die Proliferationsrate von Tumorzellen durch die reduzierte mechanische Dehnung signifikant verringert. Dieser Doppeleffekt könnte zu einer effizienteren Krebstherapie führen in Folge derer es zu einer verlängerten Überlebensrate sowie einer Verbesserung der Lebensqualität von Krebspatienten kommen könnte.
Many environmental chemicals are suspected of disturbing the human and animal endocrine system. These so-called endocrine disruptors can operate in many ways. The interaction of endocrine disruptive effects that eventually endanger human health is still unclear. However, one of the basic mecha-nisms of endocrine disruption is the inhibition of key enzymes in the hormone metabolism. In this study, we focused on the inhibitory potency of suspected endocrine disrupting compounds on aromatase (P450arom) and 5alpha-reductase (5alpha-Re) activities in human tissue and human cancer cells. Both enzymes are essential for the human sex steroid hormone metabolism. We were able to demonstrate that the organotin compounds tributyltin (TBT) and triphenyltin (TPT) are potent unspecific inhibitors of P450arom and 5alpha-Re activity. Prochloraz and fenarimol inhibited P450arom activity at low concentrations (IC50<2 µM), while 5alpha-Re activity was only impaired at higher concentrations (IC50>10 µM). While the human tissue assay proved to be more practical and sensitive as a screening tool for putative endocrine disruptors, the cell assay reflected partly the situation in vivo. In another experimental series, we investigated the inhibitory effect of TPT on P450arom, 5alpha-Re, 3beta-HSD type 2, 17beta-HSD type 1 and type 3 alone and in combination with the strong antioxidant dithioerythrithol (DTE). TPT inhibited unspecifically all enzymes that were tested. The experiments also showed that DTE is able to compensate the adverse effects of TPT, and that the effectiveness of the compensatory activity of DTE differs among the enzymes investigated. The suppressed 5alpha-Re activity could not be reactivated with DTE. Conceivably, cysteine residues that are responsible for the tertiary and quarternary structure of the enzyme are critical targets for TPT. A human sampling study was undertaken with the COMPRENDO partner in Gdansk. 60 Polish and 15 German blood samples were investigated for chemical residues and sex hormone concentrations. In addition, 15 placenta samples from Poland and Germany, respectively, were tested for chemical residues, P450arom activities and CYP19 mRNA contents. The chemical analysis was performed by the COMPRENDO partners in Milan (p,p´DDE), Orleans (TBT and TPT) and Ioannina (diuron, fenarimol, linuron und vinclozolin). The results showed that individual sex hormone concentrations in blood were not correlated with chemical body burden. The detected differences in sex hormone concentrations, specific aromatase activity and relative CYP19 mRNA content of Polish and German donors were presumably the result of other factors than the ones determined in this study. Another task of the EU-project was the investigation of the effects of chemical exposure of the aquatic model organisms Pimephales promelas, Rutilus rutilus and Xenopus laevis. We investigated the specific P450arom and 5alpha-Re activities in brain and gonads of the animals. During the qualitative investigation of the androgen metabolism in Xenopus laevis brain, 5alpha-reductase activity was discovered for the first time. In contrast to the inhibitory potency of TPT discovered in our enzyme assays, TPT exposure of aquatic model organisms had no observed effect on enzyme activity in the organs investigated, except for P450arom activities in female gonads of Pimephales promelas at 320 ng TPT/L. In this group, mean P450arom activities were elevated, possibly as a result of an overshooting upregulation due to the inhibition of P450arom by TPT. The exposure of Rutilus rutilus and Xenopus laevis to the effector substances methyltestosterone and letrozole resulted in slightly different mean enzyme activities compared to the control group. In conclusion, many of the tested pesticides are able to inhibit P450arom and 5alpha-Re, and thus might be of clinical relevance. However, results are not always coherent, and possible risks for human and wildlife health are therefore difficult to predict. Risk assessment will require large studies with an additional number of short and long term in vitro and in vivo assays. Any extrapolation to humans should be very meticulously performed.
The following thesis is concerned with the elucidation of structural changes of RNA molecules during the time course of dynamic processes that are commonly denoted as folding reactions. In contrast to the field of protein folding, the concept of RNA folding comprises not only folding reactions itself but also refolding- or conformational switching- and assembly processes (see chapter III). The method in this thesis to monitor these diverse processes is high resolution liquid-state NMR spectroscopy. To understand the reactions is of considerable interest, because most biological active RNA molecules function by changing their conformation. This can be either an intrinsic property of their respective sequence or may happen in response to a cellular signal such as small molecular ligand binding (like in the aptamer and riboswitch case), protein or metal binding. The first part of the thesis (chapters II & III) provides a general overview over the field of RNA structure and RNA folding. The two chapters aim at introducing the reader into the current status of research in the field. Chapters II is structured such that primary structure is first described then secondary and tertiary structure elements of RNA structure. A special emphasis is given to bistable RNA systems that are functionally important and represent models to understand fundamental questions of RNA conformational switching. RNA folding in vitro as well as in vivo situations is discussed in Chapter III. The following chapters IV and V also belong to the introduction part and review critically the NMR methods that were used to understand the nature and the dynamics of the conformational/structural transitions in RNA. A general overview of NMR methods quantifying dynamics of biomolecules is provided in chapter IV. A detailed discussion of solvent exchange rates and time-resolved NMR, as the two major techniques used, follows. In the final chapter V of the first part the NMR parameters used in structure calculation and structure calculation itself are conferred. The second part of the thesis, which is the cumulative part, encompasses the conducted original work. Chapter VI reviews the general NMR techniques applied and explains their applicability in the field of RNA structural and biochemical studies in several model cases. Chapter VII describes the achievement of a complete resonance assignment of an RNA model molecule (14mer cUUCGg tetral-loop RNA) and introduces a new technique to assign quaternary carbon resonances of the nucleobases. Furthermore, it reports on a conformational analysis of the sugar backbone in this RNA hairpin molecule in conjunction with a parameterization of 1J scalar couplings. Achievements: • Establishment of two new NMR pulse-sequences facilitating the assignment of quaternary carbons in RNA nucleobases • First complete (99.5%) NMR resonance assignment of an RNA molecule (14mer) including 1H, 13C, 15N, 31P resonances • Description of RNA backbone conformation by a complete set of NMR parameters • Description of the backbone conformational dependence in RNA of new NMR parameters (1J scalar couplings) Chapters VII & VIII summarize the real-NMR studies that were conducted to elucidate the conformational switching events of several RNA systems. Chapter VIII gives an overview on the experiments that were accomplished on three different bistable RNAs. These molecules where chosen to be good model systems for RNA refolding reactions and so consequently served as reporters of conformational switching events of RNA secondary structure elements. Achievements: • First kinetic studies of RNA refolding reactions with atomic resolution by NMR • Application of [new] RT-NMR techniques either regarding the photolytic initiation of the reaction or regarding the readout of the reaction • Discovery of different RNA refolding mechanisms for different RNA molecules Deciphering of a general rule for RNA refolding methodology to conformational switching processes of RNA tertiary structure elements. The models for these processes were a) the guanine-dependent riboswitch RNA and b) the minimal hammerhead ribozyme. Achievements: • NMR spectroscopic assignment of imino-resonances of the hypoxanthine bound guanine-dependent riboswitch RNA • Application of RT-NMR techniques to monitor the ligand induced conformational switch of the aptamer domain of the guanine-dependent riboswitch RNA at atomic resolution • Translation of kinetic information into structural information • Deciphering a folding mechanism for the guanine riboswitch aptamer domain • Application of RT-NMR techniques to monitor the reaction of the catalytically active mHHR RNA at atomic resolution In the appendices the new NMR pulse-sequences and the experimental parameters are described, which are not explicitly treated in the respective manuscripts.
Maligne Gliome sind die häufigsten Neoplasien des Zentralen Nervensystems. Sie zählen zu den hypoxischsten Tumoren und entwickeln u.a. durch die Adaption an niedrige Sauerstoffbedingungen Apoptose-resistente Phänotypen. Darüber hinaus zeichnen sie sich durch schnelle Proliferation und ein diffuses, infiltratives Wachstum in das umliegende Neuropil aus, was eine vollständige Tumor-Resektion unmöglich macht. Entsprechend liegt die mediane Überlebenszeit nach der Diagnose trotz chirurgischen Eingriffs bei anaplastischen Astrozytomen (WHO Grad III) zwischen 18 und 20 Monaten und bei Glioblastomen (WHO Grad IV) zwischen 12 und 15 Monaten. Im ersten Abschnitt der vorliegenden Arbeit wurden 17 Gliomzelllinien in einem in vitro-Anoxiemodell auf ihre Hypoxie-Sensitivität hin untersucht. Dabei wurde eine hohe Variabilität hinsichtlich der Hypoxie-Toleranz festgestellt, sowie die Tendenz zu einer ausgeprägter Anpassung an niedrige Sauerstoffverhältnisse, begleitet von der Fähigkeit, das mitochondriale Membranpotential (delta psi m) aufrecht zu erhalten. Der durch Hypoxie induzierte Zelltod wurde als Caspase-unabhängig und Nekrose-ähnlich charakterisiert. Apoptose wurde hingegen auch in den Hypoxie-sensitiven Zelllinien nach 48 stündigem Sauerstoffentzug nur in sehr geringem Ausmaß beobachtet. Funktionelle Analysen mit den synthetischen BH3-Mimetika HA14-1 und BH3I 2’, die selektiv Bcl-2 bzw. Bcl xL/Bcl-2 inhibieren, lassen darauf schließen, dass die für Gliomzellen typische Bcl-2- und Bcl xL-Überexpression eine Blockade des mitochondrialen Signalwegs verursacht und so entscheidend zur Apoptose-Resistenz der Zellen beiträgt. Der Todesligand TRAIL, der selektiv in Tumorzellen Zelltod aktiviert, ist ein vielversprechender Kandidat für neue Apoptose-induzierende Krebstherapien. Da jedoch einige Krebszelltypen einschließlich maligner Gliome weitgehend gegen TRAIL resistent sind, richtet sich das Interesse verstärkt auf kombinatorische Therapieansätze, die Tumorzellen für TRAIL resensitivieren sollen. Nur zwei von sechs untersuchten Gliomzelllinien reagierten auf die Behandlung mit TRAIL, wobei eine Korrelation zwischen Hypoxie- und TRAIL-Resistenz deutlich wurde und die Hypothese einer ausgeprägten Kreuzresistenz stärkt. Ein Zusammenhang zwischen TRAIL-Sensitivität und TRAIL-Todes- bzw. –Decoy-Rezeptor-Expression konnte indes nicht hergestellt werden. Der Vergleich von konventionellen Therapienansätzen (Gamma-Bestrahlung) mit neuartigen Wirkstoffklassen (BH3-Mimetika und Proteasomeninhibitoren) zeigte, dass Gamma-Bestrahlung lediglich in TRAIL-sensitiven Zellen synergistisch mit TRAIL wirkte, während die BH3-Mimetika den TRAIL-induzierten Zelltod sowohl in TRAIL-sensitiven als auch –resistenten Zellen signifikant erhöhten. Diese Befunde legen nahe, dass die hohen Bcl-2- und Bcl xL-Proteinlevel verschiedene Signalwege hemmen, die an den Mitochondrien konvergieren und dadurch die Apoptose- bzw. Therapie-Resistenz maligner Gliome steigern. Der Einsatz der Proteasomeninhibitoren MG132 und Epoxomicin erwies sich vergleichsweise als am effizientesten: Beide Substanzen vervielfachten p53-unabhängig den TRAIL-induzierten Zelltod in TRAIL-sensitiven Gliomzellen und reaktivierten darüber hinaus potent die TRAIL-induzierte Apoptose in den TRAIL-resistenten Zelllinien. Microarray- und semi-quantitative RT-PCR-Analysen ergaben eine potente transkriptionelle Aktivierung des TRAIL-Rezeptors DR5 und der Stress-induzierten Transkriptionsfaktoren CHOP und c-Jun. Weitere Untersuchungen mit Hilfe von chemischen Inhibitoren und RNA-Interferenz zeigten, dass die CHOP-unabhängige, JNK/c-Jun-Signalwegs-vermittelte Aktivierung von DR5 eine maßgebliche Rolle bei der Proteasomeninhibitor-induzierten Sensitivierung von Gliomzellen für TRAIL spielt. Zusammengenommen legen die vorgelegten Befunde nahe, dass neue Ansätze basierend auf TRAIL oder agonistischen TRAIL-Rezeptor-Antikörpern in Kombination mit Proteasomeninhibitoren oder BH3-Mimetika vielversprechende Strategien zur Überwindung der Therapieresistenz maligner Gliome darstellen.
Das Non-LTR-Retrotransposon TRE5 A.1 aus Dictyostelium discoideum integriert positionsspezifisch 48 ± 2 bp oberhalb von tRNA Genen. Es konnte gezeigt werden, dass TRE5 A.1 Wechselwirkungen zwischen ORF1p und dem RNA Polymerase III spezifischen Transkriptionsfaktor DdTFIIIB nutzt, um seinen Integrationsort zu identifizieren. Damit wurden in dieser Arbeit erstmals direkte Proteininteraktionen zwischen einem Non-LTR-Retrotransposon und Komponenten des Chromatins zur Definition des Integrationsortes nachgewiesen. DdTFIIIB wurde durch Blastp Suchen in silico identifiziert. Wie auch in S. cerevisiae wird innerhalb des D. discoideum TFIIIB Komplexes eine stabile Interaktion zwischen der N terminal gelegenen Helix H2 von DdTBP und dem C Terminus von DdBrf1 gebildet. Es konnte sowohl mittels bakterieller Zweihybrid Versuche als auch durch biochemische Pulldown Experimente gezeigt werden, dass TRE5 A kodiertes ORF1 Protein (ORF1p) mit allen drei Untereinheiten von DdTFIIIB in Wechselwirkung tritt. Am ausgeprägtesten war diese mit DdTBP. Durch Mutations und Deletionsanalysen wurden die Kontaktflächen auf DdTBP und ORF1p näher charakterisiert. Demnach interagiert ORF1p über seinen N Terminus (AS 112 158) mit DdTBP, während die C terminalen 40 Aminosäuren sowohl von DdBrf1 als auch von ORF1p beansprucht werden und beide Proteine vermutlich um diese Bindestelle konkurrieren. DdTBP bindet hauptsächlich mit der C terminalen  Helix H2’ an ORF1p. Eine wichtige Position für diese Interaktion ist Ser195 auf DdTBP. Obwohl HsTBP selbst nicht mit ORF1p interagiert, kann die Einführung der Helix H2’ aus DdTBP in das humane Protein die Interaktion mit ORF1p wiederherstellen. Interaktionen zwischen DdTFIIIB und TRE5 A ORF2p wurden nicht detektiert, allerdings konnte ein vermutliches Dimerisationsmotiv in ENp entdeckt werden. Für weiterführende Versuche, die die Relevanz der hier gefundenen Proteininteraktionen für die Target Identifizierung in D. discoideum Zellen untersuchen soll, wurden in dieser Arbeit zwei monoklonale Antikörper gegen DdTBP und einen zufällig entdeckten „Epitop Tag“ isoliert und charakterisiert. Die genaue Rolle von ORF1p während der Retrotransposition von TRE5 A.1 ist noch ungeklärt. Erste grundlegende Einblicke weisen darauf hin, dass ORF1p Teil des Präintegrationskomplexes von TRE5 A sein muss.
Two types of proteins transport ions across the membrane – ion channels and ion pumps. Ion pumps transport ions against their electrochemical gradient by co-transporting another ion or a substrate molecule through a concentration gradient or by coupling this process to an energy source like ATP. Those that couple ATP hydrolysis to ion transport are called ion motive ATPases and can be classified as ‘V’, ‘F’ and ‘P’ types. In this thesis, two sub-classes of P-type ATPases, PIIIA and PIB were studied. Attempts were made to over-express and crystallize the plant proton pump AHA2 (a PIIIA-ATPase). Also, the two putative copper transporting ATPases, CtrA3 (CopB-like) and CtrA2 (CopA-like) from Aquifex aeolicus (both PIB pumps) were over-expressed in E. coli and characterized. PIIIA-type pumps transport protons across the membrane and are found exclusively in plants and fungi, and probably some archaea. One of the most characterized proton pump biochemically is the A. thaliana proton pump AHA2. An 8Å projection map of this enzyme is already available (Jahn 2001). PIBATPases, also called CPX type pumps transport heavy metal ions such as Cu+, Cu2+, Zn2+, Pb2+, Cd2+, Co2+ across biological membranes and play an important role in homeostasis and biotolerance of these metals. CopA and CopB are two such proteins that transport copper across cell membrane found in many prokaryotes. CopB-like proteins are found almost exclusively in bacteria, with CPH sequence motif, while CopA-like proteins have CPC sequence motif, also found in eukaryotic copper transporters including human ATP7A and ATP7B. CopB extrudes Cu2+ across the membrane. CopA is activated by and transports Cu+ but the direction of transport is debated. Attempts were made to over-express the plant proton pump AHA2 in yeast Pichia pastoris. However, the yeast expressed only a truncated protein, which could not be used for further studies. It can be concluded that P. pastoris strain SMD1163 is not a good host for expression of AHA2. Focus was then shifted to AHA2 that has been over-expressed and purified from S. cerevisiae strain RS72. Growth and purification protocols had to be changed from published methods because of laboratory constraints and this probably had an effect on the protein produced. The protein purified from S. cerevisiae could not be crystallized reproducibly for structural studies by electron microscopy. CtrA3 was expressed in E. coli and purified using Ni2+-NTA matrix. Like CopB of A. fulgidus (Mana Capelli 2003), it was active only in the presence of Cu2+ and to some extent in Ag+. The protein was maximally active at 75°C, at pH 7 and in presence of cysteine. Lipids were essential for the activity of CtrA3. However, when the protein was purified in Cymal-6, CtrA3 could not hydrolyze ATP, even when lipids were added to the reaction mixture. For reconstitution of CtrA3 into liposomes for 2D crystallization, several lipids were tested. To screen the lipids compatible for protein incorporation, CtrA3 was dialyzed with different lipids at a high lipid-to-protein ratio of 10:1 and centrifuged by sucrose density gradient. Protein incorporated in lipids localized with liposome fraction in the gradient. Most of the CtrA3 was incorporated into DPPC with no aggregation. This lipid was used for reconstitution of CtrA3 at low LPRs, and at an LPR of 0.3-0.5, the protein formed 2D crystals. A NaCl concentration of 50mM was necessary for the formation of crystals. However, salt removal by dialysis prior to harvesting was essential for obtaining wellordered lattices of CtrA3. Addition of preservatives like trehalose and tannin or direct plunging in liquid ethane for cryo-microscopy destroyed the crystal lattice. Similar to CtrA3, the gene responsible for expression of CtrA2 was amplified from genomic DNA of A. aeolicus and expressed in E. coli and purified by Ni2+-NTA. Functional characterization of CtrA2 was done by analyzing ATP hydrolysis activity of the enzyme. Similar to CopA of A. fulgidus (Mandal 2002), CtrA2 was activated in the presence of Ag+ and to some extent, Cu+. It is possible that both the copper ATPases of A. aeolicus have different ion selectivity- CtrA3, specific for Cu2+ and CtrA2, specific for Cu+. Maximal activity of CtrA2 was also at 75°C. Cysteine was essential for activity of CtrA2, but the protein was not dependent on addition of lipids for activation. Reconstitution of CtrA2 was done similar to CtrA3 for screening of lipids for 2D crystallization. Of the lipids tested, DOPC reconstituted the protein best. However, screening at low LPRs did not yield any crystals. Even though both CtrA3 and CtrA2 are similar heavy metal transporting Ptype ATPases from the same organism and have 36% identity, they behaved completely different in their expression levels in E. coli, purification profiles, activity and reconstitution in lipids.
Purification and characterization of heterologously produced cannabinoid receptor 1 and G proteins
(2007)
G protein coupled receptors form the largest group of transmembrane proteins, which are involved in signal transduction and are targeted directly or indirectly by 40-50% of the drugs in the market. Even though a lot of biochemical and pharmacological information was acquired for these receptors in the past decades, structural information is still insufficient. G protein coupled receptors are expressed in a very minute scale in the tissues. Purification of G protein coupled receptors, in amounts needed for structural studies, from native tissue is tedious and almost impossible. To overcome this first hurdle of insufficient protein, several heterologous protein expression systems are being used. Another difficulty in structural determination of a G protein coupled receptor is that it is a membrane protein. Membrane proteins are difficult targets for structural studies. One of the possible reasons is the little hydrophilic surface area on the membrane protein, reducing the chances of crystal contact between the molecules. The present work is an attempt to investigate possible ways to overcome these problems. Aim of the project was to use G proteins to increase the hydrophilic area of the G protein coupled receptor. G protein is a physiological partner to the G protein coupled receptor which makes the complex functionally relevant. In the present work five G alpha proteins were purified to homogeneity by a two step purification using metal affinity and ion-exchange chromatography. The G alpha subunits purified were tested for their detergent susceptibility. It was found that only some G proteins were active in the presence of detergent. Observation from contemporary reports also suggest that the G alpha proteins expressed in Escherichia coli, alone may not be sufficient to bind to the G protein coupled receptors in solution. So the project was extended towards expressing a G protein coupled receptor which was reported to exist in a complex with the G proteins, in the cells. Purifying such a functional complex could be more beneficial to use for crystallization. Cannabinoid receptors were chosen for heterologous expression and purification. Production of recombinant cannabinoid receptor 2 was investigated in Pichia pastoris. The protein obtained was highly heterogenous. There were several oligomeric forms as well as degradation products in the cell membranes. Most of the protein was lost in the purification steps leading to a poor yield. Several oligomeric forms and other impurities were still present in the protein sample after purification. Alternatively, a baculovirus mediated insect cell expression system was investigated, to produce the receptors. Cannabinoid receptor 1 was investigated in insect cell expression system because of its better biochemical understanding and pharmacological importance than cannabinoid receptor 2. Cannabinoid receptor 1 was produced in two forms, a full length and a distal carboxy terminal truncated version. All the several gene constructs made could be expressed in the Spodoptera frugiperda (Sf9) insect cells. Expression levels (Bmax) for the constructs with a decahistidine tag at the amino terminus and Strep-tagII at the carboxy terminus were 40 pmol/mg and 53 pmol/mg respectively, for full length and truncated versions. These expression levels are 2 fold higher than the levels reported till now in the literature. As was quite evident from previous experiences of other research groups, purification of this receptor was a challenge. Protein purified from immobilized metal affinity chromatography (Ni-nitrilo tri acetate)(Ni-NTA) was not even 50% pure. A second purification by immobilized monomeric avidin or Streptactin agarose, making use of Biotag and StreptagII respectively, drastically reduced the protein recovery. Later on, purification of receptor was investigated on different metal chelating resins. His-Select, a Ni-NTA based matrix from Sigma, with much lesser density than Ni-NTA from Qiagen, showed a better purification profile. Purification was optimized to get 80% homogeneity but with low yield (20%). Further efforts are needed to improve the yield and purity of the receptor, to use it for crystallization. Cannabinoid receptors are known to exist in a precoupled form to G proteins in the cells. The existence of such precoupled forms of the receptor was investigated using the fluorescence techniques. Guanosine-5-triphosphate binding assay on the cell membranes, in the absence of agonists confirmed the active precoupled form of the receptor. It was found that it is possible to co-immunoprecipitate the complex. These results show that the truncated cannabinoid receptor can be produced in functional form in insect cells in much higher yields than reported. This receptor exists as a complex with G proteins even in the absence of ligands. It was also shown that the receptor/G protein complex can be coimmunoprecipitated. Further work is required to investigate the possibility of purifying this complex to use it for co-crystallization.
The rate of species extinctions due to anthropogenic activities has dramatically increased within the past few centuries (Dirzo & Raven, 2003; Novacek & Cleland, 2001). Although the mechanisms and ultimate causes leading to the extinction of species remain largely unclear (Frankham et al., 2002), five threats to global biodiversity have frequently been referred to as the most important: habitat destruction and fragmentation, global climate change, hunting and overuse of food resources, biological invasions and environmental pollution (Dudgeon et al., 2006; Lewis, 2006; Novacek & Cleland, 2001). Different research fields, as conservation biology, ecology and ecotoxicology, investigate the effects of these factors on organisms and found strong evidence for their negative impact on regional and global biodiversity.
In most cases, natural populations will be impacted not only by one threat, but rather a combination of them (Buckley & Roughgarden, 2004; Kappelle et al., 1999). Multiple environmental stress factors can have cumulative negative effects on the survival of populations (Sih et al., 2004). To understand, how natural populations respond to combinations of different stress factors is thus of crucial importance in order to understand our present and future impact on all scales of biodiversity (Warren et al., 2001).
The effects of anthropogenically introduced chemicals on organisms and ecosystems are investigated in the field of ecotoxicology. Research in this area has led to a large body of information concerning the impact of chemical stress on the fitness of model species in the laboratory. In contrast to this, there is an obvious lack of knowledge on the effects of contaminants on natural populations and communities (Bickham et al., 2000; Bourdeau et al., 1990). For instance, ecotoxicologists have just started to investigate the impact of environmental pollution on the genetic variability of natural populations (Bickham et al., 2000; Whitehead et al., 2003). Genetic variation provides the raw material for populations in order to adapt to changing environmental conditions and is thus the substrate for evolution and long-term survival of populations and species (Frankham, 2005). The amount of genetic variation in populations is positively correlated with the effective population size (Frankham, 1996). Habitat destruction and fragmentation has divided the ranges of many species into small and isolated refuges. Without migration from adjacent habitats, isolated populations will decrease in their level of genetic diversity through random loss of alleles (Hedrick, 2000). Frankham (1995) for instance, showed that 32 of the 37 endangered species (which occur in small populations per definition) of different animals and plant taxa display reduced levels of heterozygosity compared to closely related and more frequent species.
In strongly human impacted landscapes, both factors, environmental pollution and habitat destruction, can be expected to occur frequently together. It is thus of crucial importance to investigate the impact of reduced genetic diversity and inbreeding on the response to chemical stress. In addition, chemical exposure has frequently been discussed to have an impact on the extent of genetic variability in exposed populations (Guttman, 1994; Staton et al., 2001; van Straalen & Timmermans, 2002). However, evidence for this 'genetic erosion hypothesis' remained scarce to date, most likely because of the difficulty to single out the impact of pollution stress from a background of multiple factors which influence patterns of genetic variability in natural populations (Belfiore, 2001; Staton et al., 2001; van Straalen & Timmermans, 2002).
Präklinische Untersuchungen zur Gentherapie der HIV-Infektion mit dem retroviralen Vektor M87o
(2007)
Mit der Einführung der hochaktiven antiretroviralen Therapie (HAART) 1995 wandelte sich die HIV-Infektion in den Industrieländern von einer akut lebensbedrohlichen zu einer chronisch verlaufenden und scheinbar gut kontrollierten Erkrankung. Das Virus wird allerdings nie vollständig aus dem Körper eliminiert, sodass die Betroffenen zeitlebens Medikamente einnehmen müssen. Die Langzeit-Medikation wird häufig von schweren Nebenwirkungen begleitet, führt zur Selektion resistenter Viren und muss häufig umgestellt werden. Gentherapeutische Verfahren, die die CD4+ Zielzellen durch die Expression antiviraler Gene vor der Infektion durch HIV schützen („intrazelluläre Immunisierung“), stellen viel versprechende Therapiealternativen dar. Der in der Arbeitsgruppe von Laer entwickelte retrovirale Vektor M87o (EGELHOFER et al. 2004, EGELHOFER 2004) exprimiert das 46 Aminosäuren lange membran-verankerte Peptid C46, das in der Lage ist, die gp41-vermittelte Fusion von Virus- und Zellmembran zu inhibieren. In Zelllinien und primären Lymphozyten konnte gezeigt werden, dass M87o die Infektion durch unterschiedliche HIV-Isolate sehr effektiv verhindert. Im Rahmen vorklinischer Untersuchungen konnte in vitro gezeigt werden, dass die retrovirale Transduktion mit M87o das Transformationsrisiko und damit das Risiko der Entstehung von Neoplasien nicht steigert. An primären peripheren T-Zellen konnte zeigt werden, dass M87o die Zielzellen weder phänotypische noch funktionelle verändert. Für die Untersuchung der retroviralen Gentherapie im Rhesusaffenmodell wurde zunächst ein Gentransferprotokoll für periphere Affenlymphozyten entwickelt, mit dem in Vorversuchen Gentransferraten von ca. 50% erreicht werden konnten. Das Transduktionsprotokoll wurde anschließend im Rahmen einer präklinischen Studie zur Toxizität und Immunogenität der M87o-Gentherapie, bei der Herstellung zweier Studientransplantate angewandt. Beide Zellpräparate wurden den Versuchstieren transplantiert. Während des Eingriffs traten keine akuttoxischen Reaktionen auf. M87o+-Zellen konnten bis 140 Tage nach der Transplantation mittels PCR nachgewiesen werden. Immunologische Untersuchungen (Cytokinfärbung, Proliferationsassay, ELISPOT) ergaben keine Hinweise auf zelluläre oder humorale Immunreaktionen. M87o-spezifische Antikörper waren im Serum nicht nachweisbar. Für die Durchführung einer klinischen Studie zur Toxizität und Wirksamkeit (Phase I/II) an HIV-infizierten Probanden wurde ein Protokoll zur Produktion M87o-modifizierter T-Zellen (mindestens 5 × 108 M87o+ CD4-T-Zellen pro Spender) entwickelt. In die klinische Prüfung wurden Patienten aufgenommen, die nach multiplem Therapieversagen durch das Auftreten multiresistenter HIV eine CD4-Zellzahl von 50 bis 200 µl-1 Blut, sowie eine Viruslast von >5.000 Kopien ml-1 Blut aufwiesen. Im Versuchsmaßstab konnte ein Transduktionsprotokoll erarbeitet werden, mit dem im Mittel 46% der CD4+ T-Zellen mit M87o transduziert werden konnten. Innerhalb von 10 Tagen expandierte die Zellzahl im Mittel um den Faktor 153, wobei die HIV-Replikation vollständig inhibiert wurde. Das Protokoll wurde erfolgreich vom Versuchsmaßstab in den klinisch relevanten Produktionsmaßstab übersetzt. In drei Versuchsläufen wurde im Mittel eine Transduktionsrate von 29% erreicht und die Zellzahl um den Faktor 44 vermehrt. Der Anteil an CD3+/CD4+ Zellen an der Gesamtpopulation lag im Mittel bei 91%. Insgesamt konnten mit dem etablierten Protokoll durchschnittlich 2,3 × 109 CD3+/CD4+/M87o+ Zellen, bei gleichzeitig vollständiger Inhibition der HIV-Replikation, generiert werden. Im Rahmen einer klinischen Studie zur Toxizität und Wirksamkeit der M87o-Gentherapie wurden 10 Studientransplantate gemäß dem im Rahmen dieser Arbeit entwickelten Protokoll hergestellt. Alle Transplantate wurden am Universitäts-Krankenhaus Eppendorf in Hamburg transfundiert und von den Patienten sehr gut vertragen.