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Nach Einschätzung der Weltgesundheitsorganisation WHO wird Krebs im Jahr 2013 die weltweit häufigste Todesursache bei Menschen und Haustieren sein. Diese Situation erfordert die Entwicklung neuer therapeutischer Ansätze. Hauptziel einer Tumortherapie ist es, sowohl den Primärtumor als auch die Metastasen möglichst vollständig zu entfernen. Dabei wird nach Methoden gesucht, die im Gegensatz zu den meisten gegenwärtigen therapeutischen Einsätzen, wie der chirurgischen Entfernung bösartiger Neubildungen, Chemotherapie und Strahlentherapie, selektiv die bösartigen Zellen erkennen und zerstören können. Eine faszinierende Möglichkeit in dieser Hinsicht ist die Verwendung von onkolytischen Viren, die die Fähigkeit besitzen, sich selektiv sowohl in Primärtumoren als auch in Metastasen anzusiedeln und die Krebszellen dort zu zerstören. Das Konzept, dass Viren nützlich für die Bekämpfung von Krebs sein könnten, ist nicht neu. Allerdings konnte erst in den letzten Jahren durch zahlreiche Studien bestätigt werden, dass verschiedene Viren in der Lage sind, eine signifikante Antitumorwirkung in vivo auszuüben. Zu den erfolgversprechenden onkolytischen Viren zählen insbesondere Adenovirus, Herpes simplex Virus, Reovirus und Vaccinia-Virus, die sich bereits in Phase III der klinischen Studien befinden oder kurz davor sind. Die therapeutische Nutzung von tumorspezifischen onkolytischen Viren beim Menschen hat bereits begonnen. Im Rahmen der vorliegenden Doktorarbeit wurden verschiedene Aspekte der Wirkungsweise von Vaccinia-Virus-Stämmen bei der Therapie verschiedener Tumore aus Mensch und Hund im Xenotransplantat-Mausmodell bearbeitet: die Onkolyse der Krebszellen und Inhibition des Tumorwachstums sowie die Effekte der Virusinfektion auf das Tumormikromilieu und die Mitwirkung des angeborenen Immunsystems bei der Virotherapie. Das Tumormikromilieu (Stroma) setzt sich aus einer Vielzahl verschiedener Zellen und Komponenten der extrazellulären Matrix zusammen. Die Krebszellen bilden unter anderem mit Endothelzellen des Blut- und Lymphsystems und verschiedenen Immunzellen eine komplexe Organ-ähnliche Struktur. Weitere wichtige Bestandteile des Stromas sind Wachstumsfaktoren, Chemokine und Zytokine und die Tumorvaskulatur. Diese ist durch zahlreiche strukturelle und funktionelle Abnormalitäten charakterisiert, wodurch die Effektivität von Strahlen- und Chemotherapie herabgesetzt wird. Weiterhin ist das Tumormikromilieu durch seine Ähnlichkeit mit einer chronischen Entzündungsreaktion gekennzeichnet und wirkt immunsupprimierend auf rekrutierte Leukozyten, die wiederum die Inflammation verstärken und die Angiogenese und das Tumorwachstum weiter fördern. Aufgrund dieser vielen Komponenten ist die Zusammensetzung jedes Tumors einzigartig, weswegen Standardtherapien häufig nicht zu einer Heilung führen. Die Wirkung der Viren bei der Virotherapie beruht vermutlich auf 4 Mechanismen, die einzeln oder in Kombination auftreten können: die direkte Onkolyse der Krebszellen, die Zerstörung des Tumorblutgefäßsystems, die Aktivierung des Immunsystems des Wirts und die Suppression der microRNA-Expression des Wirtes. Zusätzlich kann die Expression therapeutischer Gene die onkolytische Wirkung verstärken. Zum Nachweis der Onkolyse der Krebszellen und Inhibition des Tumorwachstums wurde zuerst das Virus GLV-1h68 in einem autologen humanen Melanomzellpaar, 888-MEL und 1936-MEL, eingesetzt. Das GLV-1h68-Virus wurde auf Basis des Wildtyp Vaccinia-Virus LIVP durch die Insertion von 3 Expressionskassetten in den drei Genloci F14.5L, J2R und A56 genetisch konstruiert. 888-MEL, eine zu einem frühen Zeitpunkt der Krebserkrankung aus einer Metastase isolierte Zelllinie, zeigt nach Infektion mit GLV-1h68 im Mausmodell Tumornekrose („Responder“), während 1936-MEL aus einer späten Metastasierungsphase kaum mit Onkolyse auf eine Virusinfektion reagiert („Poor-Responder“). Die onkolytische Wirkung konnte mittels Durchflusszytometrie in Tumoren beider Zelllinien zu einem frühen Zeitpunkt nach Virusinfektion nachgewiesen werden. In 888-MEL-Tumoren wurde hierbei eine große Zahl infizierter und toter Zellen nach Virusinfektion gefunden. Gleichzeitig wurde eine hohe Zahl an Immunzellen detektiert, die nach Virusinfektion reduziert war. In den schwächer reagierenden 1936-MEL-Tumoren konnte eine Onkolyse bei Infektion mit höherer Virusmenge und zu einem früheren Zeitpunkt demonstriert werden, wodurch mehr Zellen infiziert wurden. Zusätzlich wurde eine Steigerung der nur in geringer Zahl vorhandenen Immunzellen nachgewiesen. Trotz des unterschiedlichen Tumormikromilieus konnte somit ein onkolytischer Effekt in beiden Tumormodellen erzielt werden. ...
Cancer-related anemia is prevalent in cancer patients. Anemia negatively affects normal mental and physical function capacity with common symptoms s like fatigue, headache, or depression. Human erythropoietin (hEPO), a glycoprotein hormone regulating red blood cell formation, is approved for the treatment of cancer-related anemia. It has shown benefits in correcting anemia, and subsequently improving health-related quality of life and/or enhancing radio-, and chemotherapy. Several recent clinical trials have suggested that recombinant hEPO (rhEPO) may promote tumor growth that raises the questions concerning the safety of using rhEPO for cancer treatment. However in others, such effects were not indicated. As of today, the direct functional effect of rhEPO in tumor models remains controversial and needs to be further analyzed. Based on the GLV-1h68 backbone, the hEPO-expressing recombinant VACV strains (EPO-VACVs) GLV-1h210, GLV-1h211, GLV-1h212 and GLV-1h213 were generated by replacing the lacZ expression cassette at the J2R locus with hEPO under the control of different vaccinia promoters p7.5, pSE, pSEL, pSL, respectively. Also, GLV-1h209 was generated, which is similar to GLV-1h210 but expresses a mutated non-functinal EPO (R103A). The EPO-VACV strains were characterized for their oncolytic efficacy in lung (A549) cancer cells in culture and tumor xenografts. Concomitantly, the effects of locally expressed hEPO in tumors on virus replication, host immune infiltration, tumor vascularization and tumor growth were also evaluated. As expected, EPO-VACVs enhanced red blood cell (RBC) formation in xenograft model. The number of RBCs and hemoglobin (Hb) levels were significantly increased in EPO-VACVs-treated mice compared to GLV-1h68-treated or untreated control mice. However, the mean size of RBC or Hb content per RBC remained normal. Furthermore, over-expression of hEPO did not significantly affect numbers of lymphocytes, monocytes, leucocytes or platelets in the peripheral blood stream. The expression of hEPO in colonized tumors of mice treated with EPO-VACVs was demonstrated by immunohistological staining. Interestingly, there were 9 - 10 hEPO isoforms detected either in tumors, cells, or supernatant, while 3-4 basic isoforms were missing in blood serum, where only six hEPO isoforms were found. Tumor-bearing mice after treatment with EPO-VACVs showed enhanced tumor regression compared to GLV-1h68. The virus titers in tumors in EPO-VACVs-treated mice were 3-4 fold higher compared to GLV-1h68-treated mice. Nevertheless, no significant difference in virus titers among EPO-VACVs was found. The blood vessels in tumors were significantly enlarged while the blood vessel density remained unchanged compared to the GLV-1h68 treated mice, indicating that hEPO did not affect endothelial cell proliferation in this model. Meanwhile, rhEPO (Epoetin alfa) alone or in combination with GLV-1h68 did not show any signs of enhanced tumor growth when compared to untreated controls and GLV-1h68 groups, while doses used were clinical relevant (500 U/kg). These findings suggested that hEPO did not promote angiogenesis or tumor growth in the A549 tumor xenograft model. Human EPO has been reported to function as an immune modulator. In this study, however, we did not find any involvement of hEPO in immune cytokine and chemokine expression or innate immune cell infiltration (leucocytes, B cells, macrophages and dendritic cells) into infected tumors. The degree of immune infiltration and cytokine expression was directly correlated to the number of virus particles. Increased virus replication, led to more recruited immune cells and secreted cytokines/chemokines. It was proposed that tumor regression was at least partially mediated through activation of innate immune mechanisms. In conclusion, the novel EPO-VACVs were shown to significantly increase the number of RBCs, Hb levels, and virus replication in tumors as well as to enhance tumor regression in the A549 tumor xenograft model. Moreover, locally expressed hEPO did not promote tumor angiogenesis, tumor growth, and immune infiltration but was shown to causing enlarged tumoral microvessels which facilitated virus spreading. It is conceivable that in a possible clinical application, anemic cancer patients could benefit from the EPO-VACVs, where they could serve as “wellness pills” to decrease anemic symptoms, while simultaneously destroying tumors.
In initial experiments, the well characterized VACV strain GLV-1h68 and three wild-type LIVP isolates were utilized to analyze gene expression in a pair of autologous human melanoma cell lines (888-MEL and 1936 MEL) after infection. Microarray analyses, followed by sequential statistical approaches, characterized human genes whose transcription is affected specifically by VACV infection. In accordance with the literature, those genes were involved in broad cellular functions, such as cell death, protein synthesis and folding, as well as DNA replication, recombination, and repair. In parallel to host gene expression, viral gene expression was evaluated with help of customized VACV array platforms to get better insight over the interplay between VACV and its host. Our main focus was to compare host and viral early events, since virus genome replication occurs early after infection. We observed that viral transcripts segregated in a characteristic time-specific pattern, consistent with the three temporal expression classes of VACV genes, including a group of genes which could be classified as early-stage genes. In this work, comparison of VACV early replication and respective early gene transcription led to the identification of seven viral genes whose expression correlated strictly with replication. We considered the early expression of those seven genes to be representative for VACV replication and we therefore referred to them as viral replication indicators (VRIs). To explore the relationship between host cell transcription and viral replication, we correlated viral (VRI) and human early gene expression. Correlation analysis revealed a subset of 114 human transcripts whose early expression tightly correlated with early VRI expression and thus early viral replication. These 114 human molecules represented an involvement in broad cellular functions. We found at least six out of 114 correlates to be involved in protein ubiquitination or proteasomal function. Another molecule of interest was the serine-threonine protein kinase WNK lysine-deficient protein kinase 1 (WNK1). We discovered that WNK1 features differences on several molecular biological levels associated with permissiveness to VACV infection. In addition to that, a set of human genes was identified with possible predictive value for viral replication in an independent dataset. A further objective of this work was to explore baseline molecular biological variances associated with permissiveness which could help identifying cellular components that contribute to the formation of a permissive phenotype. Therefore, in a subsequent approach, we screened a set of 15 melanoma cell lines (15-MEL) regarding their permissiveness to GLV-1h68, evaluated by GFP expression levels, and classified the top four and lowest four cell lines into high and low permissive group, respectively. Baseline gene transcriptional data, comparing low and highly permissive group, suggest that differences between the two groups are at least in part due to variances in global cellular functions, such as cell cycle, cell growth and proliferation, as well as cell death and survival. We also observed differences in the ubiquitination pathway, which is consistent with our previous results and underlines the importance of this pathway in VACV replication and permissiveness. Moreover, baseline microRNA (miRNA) expression between low and highly permissive group was considered to provide valuable information regarding virus-host co-existence. In our data set, we identified six miRNAs that featured varying baseline expression between low and highly permissive group. Finally, copy number variations (CNVs) between low and highly permissive group were evaluated. In this study, when investigating differences in the chromosomal aberration patterns between low and highly permissive group, we observed frequent segmental amplifications within the low permissive group, whereas the same regions were mostly unchanged in the high group. Taken together, our results highlight a probable correlation between viral replication, early gene expression, and the respective host response and thus a possible involvement of human host factors in viral early replication. Furthermore, we revealed the importance of cellular baseline composition for permissiveness to VACV infection on different molecular biological levels, including mRNA expression, miRNA expression, as well as copy number variations. The characterization of human target genes that influence viral replication could help answering the question of host cell response to oncolytic virotherapy and provide important information for the development of novel recombinant vaccinia viruses with improved features to enhance replication rate and hence trigger therapeutic outcome.