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HMG-Proteine sind Architekturelemente des Chromatins und regulieren durch ihre Bindung an das Chromatin auf verschiedene Weise DNA-abhängige Prozesse wie Replikation, Transkription und DNA-Reparatur. Um zu verstehen, wie HMG-Proteine ihre vielfältigen Funktionen erfüllen können, wurde mit Hilfe von EGFP- und DsRed2-Fusionsproteinen ihre Funktion in vivo untersucht. Im Wesentlichen wurde dabei mit Hilfe von Bleichtechniken ihr dynamisches Verhalten charakterisiert. Daneben wurde für die HMGN-Proteine ihr bislang unbekanntes Expressionsverhalten in Tumorzellen bestimmt. So konnte für die HMGN-Proteine gezeigt werden, dass bestimmte Tumorzelllinien (HT-29, FTC-133, MCF-7, RPMI 8226, 697, Ishikawa, LNCap) eine relativ erhöhte Expression von HMGN2 aufweisen, die mit der Tumordifferenzierung korreliert. Eine relativ verringerte Expression von HMGN1 steht dagegen in Mammakarzinomen und Non-Hodgkin-Lymphomen in direktem Zusammenhang mit der Aggressivität der Tumore. Somit kann die HMGN-Expression bei diesen Tumoren als diagnostischer Marker verwendet werden. FRAP-Analysen mit EGFP-Fusionsproteinen führten zu der Erkenntnis, dass HMGN1, HMGN2, HMGA1a, HMGA1b und HMGB1 sich sehr schnell durch den Zellkern bewegen und nur transient an das Chromatin gebunden sind. Es konnte gezeigt werden, dass die spezifischen DNA/Chromatin-Bindungsmotive im Wesentlichen entscheiden, wo die Bindung der HMG-Proteine in vivo erfolgt, ihre Verweildauer im Euchromatin, Heterochromatin und zellzyklusabhängig dann aber durch Modifikationen (Phosphorylierungen, Acetylierungen) reguliert wird. Dies wurde beispielhaft durch punktmutierte und deletierte Fusionsproteine, sowie durch Inkubation der Zellen mit spezifischen Drogen für die HMGA1a-Proteine gezeigt. FRAP-Analysen haben außerdem gezeigt, dass die Spleißvarianten hHMGA1a und hHMGA1b unterschiedliche kinetische Parameter besitzen. Dies zeigt, dass beiden Varianten unterschiedliche Funktionen zugesprochen werden können. Die gefundenen spezifischen, transienten Verweildauern der einzelnen HMG-Proteine führen zu einem Modell eines dynamischen Chromatin-Netzwerkes, wobei alle HMG-Proteine in Wechselwirkungen innerhalb eines dynamischen Chromatinprotein-Cocktails DNA-abhängige Prozesse regulieren können. Die jeweiligen, wie hier gezeigt, durch Modifikationen regulierten Verweildauern der HMG-Proteine bestimmen darüber, welche anderen Chromatinproteine wie lange am Chromatin verbleiben und bestimmte Funktionen, wie beispielsweise die Modifikation der Core-Histone, übernehmen können. Die dynamischen Parameter einzelner HMG-Proteine erklären so, wie diese Proteine ihre vielfältigen Funktionen als Architekturelemente und bei der Regulation DNA-abhängiger Prozesse erfüllen können. Einige Vertreter, wie die HMGB1-Proteine, bewegen sich so schnell durch den Zellkern, dass ihre kinetischen Parameter durch das beschränkte zeitliche Auflösungsvermögen konfokaler Mikroskope der älteren Generation nicht erfassbar sind. Die Bestimmung von Dosis-Wirkungs-Beziehungen von Drogen, welche die kinetischen Parameter von HMGB1-Proteinen beeinflussen können, ist inzwischen mit Mikroskopen der neuen Generation möglich. Im Verlaufe der Arbeit zeigte sich, dass andere verwendete Fluorophore wie DsRed2 die kinetischen Eigenschaften von HMG-Fusionsproteinen beeinflussen können. Durch eine erhöhte Verweildauer können auch sehr transiente Interaktionen sichtbar gemacht werden. Wie gezeigt wurde, kann eine erhöhte Verweildauer aber auch zur Verdrängung anderer Proteine führen, die die gleichen Bindungsstellen benutzen und so eine Modulation des Chromatins bewirken. Die Nutzung von DsRed-Fluorophoren ermöglicht interessante neue Erkenntnisse. Diese müssen aber stets vor dem Hintergrund eines veränderten dynamischen Verhaltens der Fusionsproteine interpretiert werden. Zusammengenommen liefern die hier vorgestellten Ergebnisse zur Dynamik der HMG-Proteine grundlegende Informationen, die zur Klärung ihrer Funktion bei Chromatinmodulationen, etwa bei Differenzierungsprozessen oder der Entstehung von Tumorzellen entscheidend beitragen. Die Erkenntnis, dass diese Proteine lediglich transiente Interaktionen mit ihren Bindungspartnern eingehen können, sind im Hinblick auf die Behandlung von Tumoren, bei denen HMG-Proteine im Vergleich zu Normalgewebe häufig überexprimiert sind, von großer Bedeutung.
In this thesis, the development of a phylogenetic DNA microarray, the analysis of several gene expression microarray datasets and new approaches for improved data analysis and interpretation are described. In the first publication, the development and analysis of a phylogenetic microarray is presented. I could show that species detection with phylogenetic DNA microarrays can be significantly improved when the microarray data is analyzed with a linear regression modeling approach. Standard methods have so far relied on pure signal intensities of the array spots and a simple cutoff criterion was applied to call a species present or absent. This procedure is not applicable to very closely related species with high sequence similarity because cross-hybridization of non-target DNA renders species detection impossible based on signal intensities alone. By modeling hybridization and cross-hybridization with linear regression, as I have presented in this thesis, even species with a sequence similarity of 97% in the marker gene can be detected and distinguished from related species. Another advantage of the modeling approach over existing methods is that the model also performs well on mixtures of different species. In principle, also quantitative predictions can be made. To make better use of the large amounts of microarray data stored in public databases, meta-analysis approaches need to be developed. In the second publication, an explorative meta-analysis exemplified on Arabidopsis thaliana gene expression datasets is presented. Integrating datasets studying effects such as the influence of plant hormones, pathogens and different mutations on gene expression levels, clusters of similarly treated datasets could be found. From the clusters of pathogen-treated and indole-3-acetic acid (IAA) treated datasets, representative genes were selected which pointed to functions which had been associated with pathogen attack or IAA effects previously. Additionally, hypotheses about the functions of so far uncharacterized genes could be set up. Thus, this kind of meta-analysis could be used to propose gene functions and their regulation under different conditions. In this work, also primary data analysis of Arabidopsis thaliana datasets is presented. In the third publication, an experiment which was conducted to find out if microwave irradiation has an effect on the gene expression of a plant cell culture is described. During the first steps, the data analysis was carried out blinded and exploratory analysis methods were applied to find out if the irradiation had an effect on gene expression of plant cells. Small but statistically significant changes in a few genes were found and could be experimentally confirmed. From the functions of the regulated genes and a meta-analysis with publicly available microarray data, it could be suspected that the plant cell culture somehow perceived the irradiation as energy, similar to perceiving light rays. The fourth publication describes the functional analysis of another Arabidopsis thaliana gene expression dataset. The gene expression data of the plant tumor dataset pointed to a switch from a mainly aerobic, auxotrophic to an anaerobic and heterotrophic metabolism in the plant tumor. Genes involved in photosynthesis were found to be repressed in tumors; genes of amino acid and lipid metabolism, cell wall and solute transporters were regulated in a way that sustains tumor growth and development. Furthermore, in the fifth publication, GEPAT (Genome Expression Pathway Analysis Tool), a tool for the analysis and integration of microarray data with other data types, is described. It consists of a web application and database which allows comfortable data upload and data analysis. In later chapters of this thesis (publication 6 and publication 7), GEPAT is used to analyze human microarray datasets and to integrate results from gene expression analysis with other datatypes. Gene expression and comparative genomic hybridization data from 71 Mantle Cell Lymphoma (MCL) patients was analyzed and allowed proposing a seven gene predictor which facilitates survival predictions for patients compared to existing predictors. In this study, it was shown that CGH data can be used for survival predictions. For the dataset of Diffuse Large B-cell lymphoma (DLBCL) patients, an improved survival predictor could be found based on the gene expression data. From the genes differentially expressed between long and short surviving MCL patients as well as for regulated genes of DLBCL patients, interaction networks could be set up. They point to differences in regulation for cell cycle and proliferation genes between patients with good and bad prognosis.
Vaccinia virus plays an important role in human medicine and molecular biology ever since the 18th century after E. Jenner discovered its value as a vaccination virus against smallpox. After the successful eradication of smallpox, vaccinia virus, apart from its use as a vaccine carrier, is today mainly used as a viral vector in molecular biology and increasingly in cancer therapy. The capability to specifically target and destroy cancer cells makes it a perfect agent for oncolytic virotherapy. Furthermore, the virus can easily be modified by inserting genes encoding therapeutic or diagnostic proteins to be expressed within the tumor. The emphasis in this study was the diagnosis of tumors using different vaccinia virus strains. Viruses with metal-accumulating capabilities for tumor detection via MRI technology were generated and tested for their usefulness in cell culture and in vivo. The virus strains GLV-1h131, GLV-1h132, and GLV-1h133 carry the gene encoding the two subunits of the iron storage protein ferritin under the control of three different promoters. GLV-1h110, GLV-1h111, and GLV-1h112 encode the bacterial iron storage protein bacterioferritin, whereas GLV-1h113 encodes the codon-optimized version of bacterioferritin for more efficient expression in human cells. GLV-1h22 contains the transferrin receptor gene, which plays an important role in iron uptake, and GLV-1h114 and GLV-1h115 contain the murine transferrin receptor gene. For possibly better iron uptake the virus strains GLV-1h154, GLV-1h155, GLV-1h156, and GLV-1h157 were generated, each with a version of a ferritin gene and a transferrin receptor gene. GLV-1h154 carries the genes that encode bacterioferritin and human transferrin receptor, GLV-1h155 the human ferritin H-chain gene and the human transferrin receptor gene. GLV-1h156 and GLV-1h157 infected cells both express the mouse transferrin receptor and bacterioferritin or human ferritin H-chain, respectively. The virus strains GLV-1h186 and GLV-1h187 were generated to contain a mutated form of the ferritin light chain, which was shown to result in iron overload and the wildtype light chain gene, respectively. The gene encoding the Divalent Metal Transporter 1, which is a major protein in the uptake of iron, was inserted in the virus strain GLV-1h102. The virus strain GLV-1h184 contains the magA gene of the magnetotactic bacterium Magnetospirillum magnetotacticum, which produces magnetic nanoparticles for orientation in the earth’s magnetic field. Initially the infection and replication capability of all the virus strains were analyzed and compared to that of the parental virus strain GLV-1h68, revealing that all the viruses were able to infect cells of the human cancer cell lines A549 and GI-101A. All constructs exhibited a course of infection comparable to that of GLV-1h68. Next, to investigate the expression of the foreign proteins in GI-101A and A549 cells with protein analytical methods, SDS-gelelectrophoresis, Western blots and ELISAs were performed. The proteins, which were expressed under the control of the strong promoters, could be detected using these methods. To be able to successfully detect the protein expression of MagA and DMT1, which were expressed under the control of the weak promoter, the more sensitive method RT-PCR was used to at least confirm the transcription of the inserted genes. The determination of the iron content in infected GI-101A and A549 cells showed that infection with all used virus strains led to iron accumulation in comparison to uninfected cells, even infection with the parental virus strain GLV-1h68. The synthetic phytochelatin EC20 was also shown to enhance the accumulation of different heavy metals in bacterial cultures. In vivo experiments with A549 tumor-bearing athymic nude mice revealed that 24 days post infection virus particles were found mainly in the tumor. The virus-mediated expression of recombinant proteins in the tumors was detected successfully by Western blot. Iron accumulation in tumor lysates was investigated by using the ferrozine assay and led to the result that GLV-1h68-infected tumors had the highest iron content. Histological stainings confirmed the finding that iron accumulation was not a direct result of the insertion of genes encoding iron-accumulating proteins in the virus genome. Furthermore virus-injected tumorous mice were analyzed using MRI technology. Two different measurements were performed, the first scan being done with a seven Tesla small animal scanner seven days post infection whereas the second scan was performed using a three Tesla human scanner 21 days after virus injection. Tumors of mice injected with the virus strains GLV-1h113 and GLV-1h184 were shown to exhibit shortened T2 and T2* relaxation times, which indicates enhanced iron accumulation. In conclusion, the experiments in this study suggest that the bacterioferritin-encoding virus strain GLV-1h113 and the magA-encoding virus strain GLV-1h184 are promising candidates to be used for cancer imaging after further analyzation and optimization.
Aim of this thesis was to study the contribution of the hosts immune system during tumor regression. A wild-type rejection model was studied in which tumor regression is mediated through an adaptive, T cell host response (Research article 1). Additionally, the relationship between VACV infection and cancer rejection was assessed by applying organism-specific microarray platforms to infected and non-infected xenografts. It could be shown that tumor rejection in this nude mouse model was orchestrated solely by the hosts innate immune system without help of the adaptive immunity. In a third study the inflammatory baseline status of 75 human cancer cell lines was tested in vitro which was correlated with the susceptibility to VACV and Adenovirus 5 (Ad5) replication of the respective cell line (Manuscript for Research article 3). Although xenografts by themselves lack the ability to signal danger and do not provide sufficient proinflammatory signals to induce acute inflammation, the presence of viral replication in the oncolytic xenograft model provides the "tissue-specific trigger" that activates the immune response and in concordance with the hypothesis, the ICR is activated when chronic inflammation is switched into an acute one. Thus, in conditions in which a switch from a chronic to an acute inflammatory process can be induced by other factors like the immune-stimulation induced by the presence of a virus in the target tissue, adaptive immune responses may not be necessary and immune-mediated rejection can occur without the assistance of T or B cells. However, in the regression study using neu expressing MMC in absence of a stimulus such as a virus and infected cancer cells thereafter, adaptive immunity is needed to provoke the switch into an acute inflammation and initiate tissue rejection. Taken together, this work is supportive of the hypothesis that the mechanisms prompting TSD differ among immune pathologies but the effect phase converges and central molecules can be detected over and over every time TSD occurs. It could be shown that in presence of a trigger such as infection with VACV and functional danger signaling pathways of the infected tumor cells, innate immunity is sufficient to orchestrate rejection of manifested tumors.
Mutationen im humanen DNA Mismatch-Reparatur (MMR) Gens Mlh1 sind mit dem erblichen, nicht-polypösen Kolonkarzinom (Lynch Syndrom, HNPCC) und einem signifikanten Anteil sporadischer kolorektaler Tumore assoziiert. Zudem konnten MMR Defekte in sporadischen und erblichen Lymphom Erkrankungen beschrieben werden. In Zellen resultiert die Inaktivierung des Mlh1 Gens in der Akkumulation von somatischen Mutationen im Genom und einer erhöhten Resistenz gegenüber den genotoxischen Effekten einer Vielzahl von DNA schädigenden Agenzien. Mäuse, die ein Null Allel für das MMR Gen Mlh1 tragen zeigen einen starken Tumorprädispositions Phänotyp. Sie entwickeln vorrangig B- und T-Zell Lymphome und mit geringerer Haufigkeit gastrointestinale Tumore. Zusätzlich sind Mlh1-/- Mäuse durch einen meiotischen Phänotyp charakterisiert, der zu Sterilitäten in beiden Geschlechtern führt. Um die Effekte von Mlh1 missense Mutationen auf die Tumoranfälligkeit zu untersuchen, erzeugten wir eine Mauslinie, die die häufig in HNPCC Patienten beschriebene MLH1G67R Mutation tragen, die in einer der ATP Bindungs-Domänen von MLH1 lokalisiert ist. Auch wenn die MLH1G67R Mutation in homozygot mutanten Mäusen in einer DNA Reparatur Defizienz resultierte hatte sie keinen Effekt auf die MMR vermittelte zelluläre Antwort auf DNA Schäden. Hierzu gehörte die apoptotische Antwort von Epithelzellen der intestinalen Mucosa auf Cisplatin, die in Mlh1-/- Mäusen defektiv jedoch in Mlh1G67R/G67R Mäusen normal ausfiel. Mlh1G67R/G67R mutante Mäuse zeigten wie Mlh1-/- Tiere einen starken Tumorprädispositions Phänotyp. Sie entwickelten jedoch im Vergleich zu Mlh1-/- Tieren signifikant weniger gastrointestinale Tumore, was darauf hinweist, dass Mlh1 missense Mutationen die Tumor supprimierende MMR Funktion in einer Gewebs-spezifischen Weise beeinflussen können. Darüber hinaus sind Mlh1G67R/G67R Mäuse, aufgrund der fehlenden Bindungsfähigkeit des MLH1G67R Proteins an die meiotischen Chromosomen im Pachytän Stadium, steril. Dies zeigt, dass die ATPase Aktivität von MLH1 für die Fertilität in Säugern essentiell ist. Diese Untersuchungen belegen, dass die Mlh1G67R Mutation die biologischen MLH1 Funktionen differentiell mit einem eindeutigen Phänotyp beeinflusst. Um die Rolle von MLH1 für die Lymphomagenese detaillierter untersuchen zu können, generierten wir ein neues Mausmodell mit einem konditionellen Mlh1 Allel (Mlh1flox/flox). Das Einkreuzen von transgenen EIIa-Cre Mausen in die Mlh1flox/flox Mauslinie führte zur konstitutiven Inaktivierung von MLH1. Die resultierende Mlh1Δex4/Δex4 Mauslinie zeichnete sich durch MMR Defizienz und einen zu Mlh1-/- Tieren vergleichbaren Tumorprädispositions Phänotyp aus. Zur T-Zell spezifischen MMR Inaktivierung kombinierten wir das Mlh1flox/flox Allel mit dem Lck-Cre Transgen. In den resultierenden Mlh1TΔex4/TΔex4 Mäusen ist die MLH1 Inaktivierung auf doppelt positive und einzel positive Thymozyten und naïve periphere TZellen beschränkt. Die Entwicklung von T-Zell Lymphomen in Mlh1TΔex4/TΔex4 Mäusen ist im Vergleich zu Mlh1-/- Mäusen signifikant reduziert, was eine wichtige, Lymphom supprimierende MMR Funktion in frühen Stadien der T-Zell Entwicklung oder in lymphoiden Vorläuferzellen impliziert.
Over the past 30 years, much effort and financial support have been invested in the fight against cancer, yet cancer still represents the leading cause of death in the world. Conventional therapies for treatment of cancer are predominantly directed against tumor cells. Recently however, new treatments options have paid more attention to exploiting the advantage of targeting the tumor stroma instead.
Vaccinia virus (VACV) has played an important role in human medicine since the 18th century as a vaccination against smallpox. In our laboratory, the recombinant, replication-competent vaccinia virus, GLV-1h68, was shown to enter, colonize and destroy cancer cells both in cell culture, and in vivo, in xenograft models (Zhang, Yu et al. 2007). In addition, combined therapy of GLV-1h68 and anti-VEGF immunotherapy significantly enhanced antitumor therapy in vivo (Frentzen, Yu et al. 2009).
In this study, we constructed several new recombinant VACVs carrying genes encoding different antibodies against fibroblast activation protein (FAP) in stroma (GLV-1h282), nanobody against the extracellular domain of epidermal growth factor receptor (EGFR, GLV-1h442) or antibodies targeting both vascular endothelial growth factor (VEGF) and EGFR (GLV-1h444) or targeting both VEGF and FAP (GLV-1h446).
The expression of the recombinant proteins was first verified using protein analytical methods, SDS-gel electrophoresis, Western blot analysis, immunoprecipitation (IP) assays and ELISA assays. The proteins were detected after infection of the cells with the different VACVs and the recombinant proteins purified by affinity adsorption. The purified antibodies were shown to specifically bind to their respective antigens.
Secondly, the infection and replication capability of all the virus strains was analyzed in cell culture using several human tumor cell lines (A549, FaDu or DU145), revealing that all the new recombinant VACVs were able to infect cancer cells with comparable efficiency to the parental viruses from which they were derived.
Thirdly, the antitumor efficacy of the new recombinant VACVs was evaluated in vivo using several human cancer xenograft models in mice. In A549 and DU145 xenografts, the new recombinant VACVs exhibited an enhanced therapeutic efficacy compared to GLV-1h68 with no change in toxicity in mice. In the FaDu xenograft, treatment with GLV-1h282 (anti-FAP) significantly slowed down the speed of tumor growth compared to GLV-1h68. Additionally, treatment with the recombinant VACVs expressed the various antibodies achieved comparable or superior therapeutic effects compared to treatment with a combination of GLV-1h68 and the commercial therapeutic antibodies, Avastin, Erbitux or both.
Next, the virus distribution in tumors and organs of treated mice was evaluated. For most of the viruses, the virus titer in tumors was not signficantly diffferent than GLV-1h68. However, for animals treated with GLV-1h282, the virus titer in tumors was significantly higher than with GLV-1h68. This may be the reason for enhanced antitumor efficacy of GLV-1h282 in vivo.
Lastly, the underlying mechanisms of therapeutic antibody-enhanced antitumor effects were investigated by immunohistochemistry. Blood vessels density and cell proliferation in tumors were suppressed after treatment with the antibody-encoded VACVs. The results indicated that the suppression of angiogenesis or cell proliferation in tumors may cause the observed therapeutic effect.
In conclusion, the results of the studies presented here support the hypothesis that the treatment of solid tumors with a combination of oncolytic virotherapy and immunotherapy has an additive effect over each treatment alone. Moreover, expression of the immunotherapeutic antibody by the oncolytic VACV locally in the tumor enhances the antitumor effect over systemic treatment with the same antibody. Combined, these results indicate that therapy with oncolytic VACVs expressing-therapeutic antibodies may be a promising approach for the treatment of cancer.
Inefficient vascularisation of solid tumours leads to the formation of oxygen and nutrient gradients. In order to mimic this specific feature of the tumour microenvironment, a multicellular tumour spheroid (SPH) culture system was used. These experiments were implemented in p53 isogenic colon cancer cell lines (HCT116 p53 +/+ and HCT116 p53-/-) since Tp53 has important regulatory functions in tumour metabolism. First, the characteristics of the cells cultured as monolayers and as spheroids were investigated by using RNA sequencing and metabolomics to compare gene expression and metabolic features of cells grown in different conditions. This analysis showed that certain features of gene expression found in tumours are also present in spheroids but not in monolayer cultures, including reduced proliferation and induction of hypoxia related genes. Moreover, comparison between the different genotypes revealed that the expression of genes involved in cholesterol homeostasis is induced in p53 deficient cells compared to p53 wild type cells and this difference was only detected in spheroids and tumour samples but not in monolayer cultures. In addition, it was established that loss of p53 leads to the induction of enzymes of the mevalonate pathway via activation of the transcription factor SREBP2, resulting in a metabolic rewiring that supports the generation of ubiquinone (coenzyme Q10). An adequate supply of ubiquinone was essential to support mitochondrial electron transport and pyrimidine biosynthesis in p53 deficient cancer cells under conditions of metabolic stress. Moreover, inhibition of the mevalonate pathway using statins selectively induced oxidative stress and apoptosis in p53 deficient colon cancer cells exposed to oxygen and nutrient deprivation. This was caused by ubiquinone being required for electron transfer by dihydroorotate dehydrogenase, an essential enzyme of the pyrimidine nucleotide biosynthesis pathway. Supplementation with exogenous nucleosides relieved the demand for electron transfer and restored viability of p53 deficient cancer cells under metabolic stress. Moreover, the mevalonate pathway was also essential for the synthesis of ubiquinone for nucleotide biosynthesis to support growth of intestinal tumour organoids. Together, these findings highlight the importance of the mevalonate pathway in cancer cells and provide molecular evidence for an enhanced sensitivity towards the inhibition of mitochondrial electron transfer in tumour-like metabolic environments.