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Tumor-induced angiogenesis is of major interest for oncology research. Vascular endothelial growth factor (VEGF) is the most potent angiogenic factor characterized so far. VEGF blockade was shown to be sufficient for angiogenesis inhibition and subsequent tumor regression in several preclinical tumor models. Bevacizumab was the first treatment targeting specifically tumor-induced angiogenesis through VEGF blockade to be approved by the Food and Drugs Administration (FDA) for cancer treatment. However, after very promising results in preclinical evaluations, VEGF blockade did not show the expected success in patients. Some tumors became resistant to VEGF blockade. Several factors have been accounted responsible, the over-expression of other angiogenic factors, the noxious influence of VEFG blockade on normal tissues, the selection of hypoxia resistant neoplastic cells, the recruitment of hematopoietic progenitor cells and finally the transient nature of angiogenesis inhibition by VEGF blockade. The development of blocking agents against other angiogenic factors like placental growth factor (PlGF) and Angiopoietin-2 (Ang-2) allows the development of an anti-angiogenesis strategy adapted to the profile of the tumor.
Oncolytic virotherapy uses the natural propensity of viruses to colonize tumors to treat cancer. The recombinant vaccinia virus GLV-1h68 was shown to infect, colonize and lyse several tumor types. Its descendant GLV-1h108, expressing an anti-VEGF antibody, was proved in previous studies to inhibit efficiently tumor induced angiogenesis. Additional VACVs expressing single chain antibodies (scAb) antibodies against PlGF and Ang-2 alone or in combination with anti VEGF scAb were designed.
In this study, VACV-mediated anti-angiogenesis treatments have been evaluated in several preclinical tumor models. The efficiency of PlGF blockade, alone or in combination with VEGF, mediated by VACV has been established and confirmed. PlGF inhibition alone or with VEGF reduced tumor burden 5- and 2-folds more efficiently than the control virus, respectively.
Ang-2 blockade efficiency for cancer treatment gave controversial results when tested in different laboratories. Here we demonstrated that unlike VEGF, the success of Ang-2 blockade is not only correlated to the strength of the blockade. A particular balance between Ang-2, VEGF and Ang-1 needs to be induced by the treatment to see a regression of the tumor and an improved survival. We saw that Ang-2 inhibition delayed tumor growth up to 3-folds compared to the control virus. These same viruses induced statistically significant tumor growth delays. This study unveiled the need to establish an angiogenic profile of the tumor to be treated as well as the necessity to better understand the synergic effects of VEGF and Ang-2. In addition angiogenesis inhibition by VACV-mediated PlGF and Ang-2 blockade was able to reduce the number of metastases and migrating tumor cells (even more efficiently than VEGF blockade).
VACV colonization of tumor cells, in vitro, was limited by VEGF, when the use of the anti-VEGF VACV GLV-1h108 drastically improved the colonization efficiency up to 2-fold, 72 hours post-infection. These in vitro data were confirmed by in vivo analysis of tumors. Fourteen days post-treatment, the anti-VEGF virus GLV-1h108 was colonizing 78.8% of the tumors when GLV-1h68 colonization rate was 49.6%. These data confirmed the synergistic effect of VEGF blockade and VACV replication for tumor regression.
Three of the tumor cell lines used to assess VACV-mediated angiogenesis inhibition were found, in certain conditions, to mimic either endothelial cell or pericyte functions, and participate directly to the vascular structure. The expression by these tumor cells of e-selectin, p-selectin, ICAM-1 and VCAM-1, normally expressed on activated endothelial cells, corroborates our findings. These proteins play an important role in immune cell recruitment, and there amount vary in presence of VEGF, PlGF and Ang-2, confirming the involvement of angiogenic factors in the immuno-modulatory abilities of tumors.
In this study VACV-mediated angiogenesis blockade proved its potential as a therapeutic agent able to treat different tumor types and prevent resistance observed during bevacizumab treatment by acting on different factors. First, the expression of several antibodies by VACV would prevent another angiogenic factor to take over VEGF and stimulate angiogenesis. Then, the ability of VACV to infect tumor cells would prevent them to form blood vessel-like structures to sustain tumor growth, and the localized delivery of the antibody would decrease the risk of adverse effects. Next, the blockade of angiogenic factors would improve VACV replication and decrease the immune-modulatory effect of tumors. Finally the fact that angiogenesis blockade lasts until total regression of the tumor would prevent the recovery of the tumor-associated vasculature and the relapse of patients.
Background: Despite availability of efficient treatment regimens for early stage colorectal cancer, treatment regimens for late stage colorectal cancer are generally not effective and thus need improvement. Oncolytic virotherapy using replication-competent vaccinia virus (VACV) strains is a promising new strategy for therapy of a variety of human cancers.
Methods: Oncolytic efficacy of replication-competent vaccinia virus GLV-1h68 was analyzed in both, cell cultures and subcutaneous xenograft tumor models.
Results: In this study we demonstrated for the first time that the replication-competent recombinant VACV GLV-1h68 efficiently infected, replicated in, and subsequently lysed various human colorectal cancer lines (Colo 205, HCT-15, HCT-116, HT-29, and SW-620) derived from patients at all four stages of disease. Additionally, in tumor xenograft models in athymic nude mice, a single injection of intravenously administered GLV-1h68 significantly inhibited tumor growth of two different human colorectal cell line tumors (Duke’s type A-stage HCT-116 and Duke’s type C-stage SW-620), significantly improving survival compared to untreated mice. Expression of the viral marker gene ruc-gfp allowed for real-time analysis of the virus infection in cell cultures and in mice. GLV-1h68 treatment was well-tolerated in all animals and viral replication was confined to the tumor. GLV-1h68 treatment elicited a significant up-regulation of murine immune-related antigens like IFN-γ, IP-10, MCP-1, MCP-3, MCP-5, RANTES and TNF-γ and a greater infiltration of macrophages and NK cells in tumors as compared to untreated controls.
Conclusion: The anti-tumor activity observed against colorectal cancer cells in these studies was a result of direct viral oncolysis by GLV-1h68 and inflammation-mediated innate immune responses. The therapeutic effects occurred in tumors regardless of the stage of disease from which the cells were derived. Thus, the recombinant vaccinia virus GLV-1h68 has the potential to treat colorectal cancers independently of the stage of progression.
Protection of healthy tissues from infection with systemically administered vaccinia virus strains
(2012)
Oncolytic virotherapy using recombinant vaccinia virus strains is a promising approach for the treatment of cancer. To further improve the safety of oncolytic vaccinia viruses, the cellular microRNA machinery can be applied as the host’s own security mechanism to avoid unwanted viral replication in healthy tissues. MicroRNAs are a class of small single-stranded RNAs which due to their ability to mediate post-transcriptional gene-silencing, play a crucial role in almost every regulatory process in cellular metabolism. Different cancers display unique microRNA expression patterns, showing significant up- or downregulation of endogenously expressed microRNAs. Furthermore, the behavior of cancer cells can be altered by either adding microRNAs known to inhibit cancer cell spread and proliferation or suppressing cancer promoting microRNAs (oncomirs) making microRNAs promising targets for cancer gene therapy. The cell’s own RNAi machinery can also be utilized to control viral replication due to the virus dependence on the host cell replication machinery, a process controlled by microRNAs. GLV-1h68 is a replication-competent recombinant oncolytic vaccinia virus constructed and generated by Genelux Corp., San Diego, CA, USA which carries insertions of three reporter gene cassettes for detection and attenuation purposes and is currently being evaluated for cancer treatment in clinical trials. Though there are hardly any side effects found in GLV-1h68 mediated oncolytic therapy an increased tropism for replication exclusively in cancer cells is desirable. Therefore it was investigated whether or not further cancer cell specificity of a recombinant vaccinia virus strain could be obtained without compromising its oncolytic activity using microRNA interference. Let-7a is a well characterized microRNA known to be expressed in high levels in healthy tissues and strongly downregulated in most cancers. To control vaccinia virus replication rates, four copies of the mature human microRNA let-7a target sequence were cloned behind the stop codon in the 3’end of the vaccinia virus D4R gene, using a GLV-1h68 derivative, GLV-1h190, as parental strain yielding the new recombinant virus strain GLV-1h250. The D4R gene belongs to the group of early transcribed vaccinia genes and encodes an essential enzyme, uracil DNA glycosylase, which catalyzes the removal of uracil residues from double-stranded DNA. A defect in D4R prevents vaccinia virus from entering into the intermediate and late phase of replication, leading to an aborted virus replication. After expression of the microRNA target sequence from the vaccinia virus genome, the endogenously expressed microRNA-let-7a should recognize its target structure within the viral mRNA transcript, thereby binding and degrading the viral mRNA which should lead to a strong inhibition of the virus replication in healthy cells. GLV-1h250 replication rates in cancerous A549 lung adenocarcinoma cells, which show a strong down-regulation of microRNA let-7a, was comparable to the replication rates of its parental strain GLV-1h190 and the control strain GLV-1h68. In contrast, GLV-1h250 displayed a 10-fold decrease in viral replication in non-cancerous ERC cells when compared to GLV-1h190 and GLV-1h68. In A549 tumor bearing nude mice GLV-1h250 replicated exclusively in the tumorous tissue and resulted in efficient tumor regression without adverse effects leading to the conclusion that GLV-1h250 replicates preferentially in cancerous cells and tissues, which display low endogenous let-7a expression levels.
Die heute in der Krebstherapie vorherrschenden konventionellen Therapiemethoden weisen Defizite bezüglich ihrer Wirksamkeit auf und rufen oftmals gravierende Nebenwirkungen hervor. Eine Alternative für die Behandlung von Tumoren ist der Einsatz onkolytischer Viren. Um einen erfolgreichen klinischen Einsatz onkolytischer Viren zu ermöglichen, ist eine Verstärkung von deren Wirksamkeit durch die Insertion therapeutischer Gene wünschenswert. Im Rahmen der vorliegenden Arbeit sollte der Abbau von Proteinen der extrazellulären Matrix durch die Insertion des Relaxin- oder Matrixmetalloproteinase 9-Gens (MMP-9) in das Vaccinia-Virus Genom erreicht und dadurch die Virusausbreitung im Tumorgewebe erleichtert werden. Hierfür wurden die rekombinanten Vaccinia-Viren GLV-1h169, codierend für das Hormon Relaxin und GLV-1h255, codierend für das Enzym MMP-9, eingesetzt. Es wurde analysiert, ob die Expression dieser Proteine zu einem Abbau von Matrixproteinen führt, dies die Virusausbreitung erleichtert und die Lyse infizierter Tumorzellen gegenüber dem parentalen Virus GLV-1h68 verstärkt. GLV-1h169 wurde in DU145-, PC3- und C33A-Tumor-tragende Mäuse injiziert und die Wirkung des viral-codierten Relaxins auf die extrazelluläre Matrix und die virale Ausbreitung im Tumorgewebe analysiert. In Zellkultur-Experimenten wurde ermittelt, dass die Insertion des Relaxin-Gens in das GLV-1h169-Genom das Replikationsverhalten in DU145-Zellen gegenüber dem des parentalen Virus GLV-1h68 nicht negativ beeinflusst. In DU145-, PC3- und C33A-Tumorschnitten konnte eine Expression von Relaxin in GLV-1h169-infizierten Bereichen nachgewiesen werden. Die Expression von Relaxin soll durch die Aktivierung des Relaxin-Signalweges zur Translation von MMP-9 führen. Das Enzym wird von infizierten Zellen sezerniert und spaltet Proteine der extrazellulären Matrix. Der Gehalt der MMP-9 Substrate Collagen IV und Laminin in GLV-1h169 behandelten DU145- und C33A-Tumoren wurde analysiert und mit jenem in GLV-1h68- und PBS- behandelten Tumoren verglichen. In Virus-behandelten DU145-Tumoren zeigte sich im Vergleich mit PBS-behandelten Tumoren ein signifikant verringerter Collagen IV- und Laminingehalt. Weiterhin war der Collagen IV-Gehalt in GLV-1h169 infizierten Tumoren signifikant niedriger als in GLV-1h68 infizierten. Dies führte jedoch nicht zu einer Erhöhung des Virustiters und nicht zu einer verbesserten Virusausbreitung. GLV-1h68- und GLV-1h169-infizierte Tumore zeigten gegenüber PBS-behandelten Tumoren eine starke Regression. Die GLV-1h169-vermittelte Relaxin-Expression führte jedoch nicht zu einer weiteren Verstärkung der Tumorregression. In Virus-behandelten C33A-Tumoren wurde eine signifikante Erhöhung des Collagen IV- und Laminingehalts gegenüber PBS-behandelten Tumoren nachgewiesen. Dies könnte durch eine Virus-induzierte Inflammationsreaktion hervorgerufen werden, die eine Fibroblasten-vermittelte Collagenablagerung nach sich zieht. Das MMP-9 Expressionsle-vel war in Virus-behandelten Tumoren gegenüber PBS-behandelten signifikant erhöht, jedoch bewirkte die GLV-1h169-vermittelte Expression von Relaxin keine zusätzliche MMP-9 Expression. In Tumorrandbereichen erfolgte eine Expression von Relaxin und MMP-9, im Tumorinneren jedoch nur eine Expression von Relaxin. Hingegen wurde eine Korrelation zwischen der MMP-9-Expression und der Präsenz MHC II-positiver Zellen beobachtet. Diese Zellen migrieren von außen in das Tumorgewebe und exprimieren dort MMP-9. Bei der Analyse der Virustiter und –ausbreitung im Tumorgewebe zeigten sich keine signifikanten Unterschiede zwischen GLV-1h68- und GLV-1h169-injizierten Tieren. Die Injektion von beiden onkolytischen Viren in C33A-Tumor-tragende Mäuse führte zu einer starken Tumorregression. Diese wurde jedoch nicht durch die GLV-1h169-vermittelte Relaxin-Expression beeinflusst. Da die Aktivierung des Relaxin-Signalweges zu einer Expression des vascular endothelial growth factors (VEGF) führen kann, welcher die Angiogenese stimuliert, wurde die Blutgefäßdichte in C33A-Tumoren ermittelt. Die Expression von Relaxin führte nicht zu einer erhöhten Blutgefäßdichte. Die Basalmembran von Blutgefäßen enthält Collagen IV, deshalb wurde untersucht, ob die Relaxin-Expression eine erhöhte Permeabilität der Gefäße bewirkt. In den Virus-behandelten Tumoren zeigte sich eine gegenüber PBS-behandelten Tumoren signifikant erhöhte Gefäß-Permeabilität, jedoch bewirkte die Expression von Relaxin keine weitere Erhöhung der Gefäß-Permeabilität...
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.
Glioblastoma multiforme (GBM) represents the most aggressive form of malignant brain tumors and remains a therapeutically challenge. Intense research in the field has lead to the testing of oncolytic viruses to improve tumor control. Currently, a variety of different oncolytic viruses are being evaluated for their ability to be used in anti-cancer therapy and a few have entered clinical trials. Vaccinia virus, is one of the viruses being studied. GLV-1h68, an oncolytic vaccinia virus engineered by Genelux Corporation, was constructed by insertion of three gene cassettes, RUC-GFP fusion, β-galactosidase and β- glucuronidase into the genome of the LIVP strain. Since focal tumor radiotherapy is a mainstay for cancer treatment, including glioma therapy, it is of clinical relevance to assess how systemically administered oncolytic vaccinia virus could be combined with targeted ionizing radiation for therapeutic gain. In this work we show how focal ionizing radiation (IR) can be combined with multiple systemically delivered oncolytic vaccinia virus strains in murine models of human U-87 glioma. After initial experiments which confirmed that ionizing radiation does not damage viral DNA or alter viral tropism, animal studies were carried out to analyze the interaction of vaccinia virus and ionizing radiation in the in vivo setting. We found that irradiation of the tumor target, prior to systemic administration of oncolytic vaccinia virus GLV-1h68, increased viral replication within the U-87 xenografts as measured by viral reporter gene expression and viral titers. Importantly, while GLV-1h68 alone had minimal effect on U-87 tumor growth delay, IR enhanced GLV-1h68 replication, which translated to increased tumor growth delay and mouse survival in subcutaneous and orthotopic U-87 glioma murine models compared to monotherapy with IR or GLV-1h68. The ability of IR to enhance vaccinia replication was not restricted to the multi-mutated GLV-1h68, but was also seen with the less attenuated oncolytic vaccinia, LIVP 1.1.1. We have demonstrated that in animals treated with combination of ionizing radiation and LIVP 1.1.1 a strong pro-inflammatory tissue response was induced. When IR was given in a more clinically relevant fractionated scheme, we found oncolytic vaccinia virus replication also increased. This indicates that vaccinia virus could be incorporated into either larger hypo-fraction or more conventionally fractionated radiotherapy schemes. The ability of focal IR to mediate selective replication of systemically injected oncolytic vaccinia was demonstrated in a bilateral glioma model. In mice with bilateral U-87 tumors in both hindlimbs, systemically administered oncolytic vaccinia replicated preferentially in the focally irradiated tumor compared to the shielded non- irradiated tumor in the same mouse We demonstrated that tumor control could be further improved when fractionated focal ionizing radiation was combined with a vaccinia virus caring an anti-angiogenic payload targeting vascular endothelial growth factor (VEGF). Our studies showed that following ionizing radiation expression of VEGF is upregulated in U-87 glioma cells in culture. We further showed a concentration dependent increase in radioresistance of human endothelial cells in presence of VEGF. Interestingly, we found effects of vascular endothelial growth factor on endothelial cells were reversible by adding purified GLAF-1 to the cells. GLAF-1 is a single- chain antibody targeting human and murine VEGF and is expressed by oncolytic vaccinia virus GLV-109. In U-87 glioma xenograft murine models the combination of fractionated ionizing radiation with GLV-1h164, a vaccinia virus also targeting VEGF, resulted in the best volumetric tumor response and a drastic decrease in vascular endothelial growth factor. Histological analysis of embedded tumor sections 14 days after viral administration confirmed that blocking VEGF translated into a decrease in vessel number to 30% of vessel number found in control tumors in animals treated with GLV-164 and fractionated IR which was lower than for all other treatment groups. Our experiments with GLV-1h164 and fractionated radiotherapy have shown that in addition to ionizing radiation and viral induced tumor cell destruction we were able to effectively target the tumor vasculature. This was achieved by enhanced viral replication translating in increased levels of GLAF-2 disrupting tumor vessels as well as the radiosensitization of tumor vasculature to IR by blocking VEGF. Our preclinical results have important clinical implications of how focal radiotherapy can be combined with systemic oncolytic viral administration for highly aggressive, locally advanced tumors with the potential, by using a vaccinia virus targeting human vascular endothelial growth factor, to further increase tumor radiation sensitivity by engaging the vascular component in addition to cancer cells.
Effects of stem cell transcription factor-expressing vaccinia viruses in oncolytic virotherapy
(2012)
Cancer remains the second leading cause of death in the industrialized. The data from many different studies investigating the nature of cancer-initiating cells coined the description ‘cancer stem cells’ and has major implications on conventional cancer therapy. Thus, to improve the outcome of cancer treatment and to lower negative side effects, the development of novel therapeutic regimens is indispensable. It has been demonstrated in many preclinical studies that oncolytic virotherapy using vaccinia virus may provide a powerful and well-tolerable new tool in cancer therapy which is currently investigated in several clinical trials (Phase I & II) as stand-alone treatment or in combination with conventional cancer therapy. Cancer-initiating cells and stem cells share a variety of characteristics like the ability to self-renew, differentiation potential, quiescence, drug and radiation resistance, activation and inhibition of similar signaling pathways as well as expression of cell surface markers and stem cell-related genes. In this work, two new recombinant vaccinia viruses expressing the transcription factors Nanog (GLV-1h205) and Oct4 (GLV-1h208) were engineered to provide deeper insight of these stem cell master regulators in their significance of cancer-initiation and their impact on oncolytic virotherapy. Both viruses were analyzed for their replication potential in A549 and PC-3 human cancer cells. Marker gene expression was assessed by RT-PCR, SDS-PAGE and Western blotting, ELISA or immunocytochemistry.Furthermore, the effect of GLV-1h205 infection on the cell cycle in A549 cells was analyzed. Next, the effects of virus-mediated expression of stem cell transcription factors on therapeutic efficacy and survival rates in A549 xenograft mouse models was analyzed. A non-functional Nanog mutant-expressing virus strain (GLV-1h321) was engineered to analyze whether the observed therapeutic benefits were promoter- or payload-driven. Furthermore, this study analyzed the potential of GLV-1h68 to infect, replicate in, and lyse colorectal cancer cell lines to study whether oncolytic vaccinia viruses can be potential new and less invasive treatment regimens for late stage colorectal cancer. Marker gene expression was assessed by fluorescence microscopy and FACS. The transcription factor Klf4 is highly expressed in quiescent, terminally differentiated cells in the colonic epithelium whereas it is dramatically downregulated in colon cancers. Klf4 expression leads to cell growth arrest and inhibits Wnt signaling by binding to beta-catenin. To further improve the treatment of colorectal cancers, new recombinant vaccinia viruses (GLV-1h290-292) mediating the expression of differing amounts of the tumor suppressor Klf4 by using different promoter strengths were engineered. Initial characterization of recombinant vaccinia viruses expressing Klf4 by replication assay, cell viability assay, SDS-PAGE and Western blotting, immuncytochemistry and analysis of protein functionality by qPCR and ELISA analysis for cellular beta-catenin expression, demonstrated promoter strength-dependent expression of and impact of Klf4. To further boost the effects of tumor suppressor Klf4, a vaccinia virus strain expressing Klf4 with a C-terminal fusion of the TAT transduction domain (GLV-1h391) was engineered. Treatment of HT-29 non-responder tumors in vivo with GLV-1h291 and GLV-1h391 led to significant tumor growth inhibition and improved overall survival compared to GLV-1h68. This makes the Klf4-TAT expressing GLV-1h391 a promising candidate for the treatment of colorectal cancer in man.
Background:
We have shown that insertion of the three vaccinia virus (VACV) promoter-driven foreign gene expression cassettes encoding Renilla luciferase-Aequorea GFP fusion protein, beta-galactosidase, and beta-glucuronidase into the F14.5L, J2R, and A56R loci of the VACV LIVP genome, respectively, results in a highly attenuated mutant strain GLV 1h68. This strain shows tumor specific replication and is capable of eradicating tumors with little or no virulence in mice. This study aimed to distinguish the contribution of added VACV promoter-driven transcriptional units as inserts from the effects of insertional inactivation of three viral genes, and to determine the correlation between replication efficiency of oncolytic vaccinia virus in cell cultures and the virulence and antitumor efficacy in mice
Methods:
A series of recombinant VACV strains was generated by replacing one, two, or all three of the expression cassettes in GLV 1h68 with short non coding DNA sequences. The replication efficiency and tumor cell killing capacity of these newly generated VACV strains were compared with those of the parent virus GLV-1h68 in cell cultures. The virus replication efficiency in tumors and antitumor efficacy as well as the virulence were evaluated in nu/nu (nude) mice bearing human breast tumor xenografts.
Results:
we found that virus replication efficiency increased with removal of each of the expression cassettes. The increase in virus replication efficiency was proportionate to the strength of removed VACV promoters linked to foreign genes. The replication efficiency of the new VACV strains paralleled their cytotoxicity in cell cultures. The increased replication efficiency in tumor xenografts resulted in enhanced antitumor efficacy in nude mice. Similarly, the enhanced virus replication efficiency was indicative of increased virulence in nude mice.
Conclusions:
These data demonstrated that insertion of VACV promoter-driven transcriptional units into the viral genome for the purpose of insertional mutagenesis did modulate the efficiency of virus replication together with antitumor efficacy as well as virulence. Replication efficiency of oncolytic VACV in cell cultures can predict the virulence and therapeutic efficacy in nude mice. These findings may be essential for rational design of safe and potent VACV strains for vaccination and virotherapy of cancer in humans and animals.
In der vorliegenden Arbeit wurde ein onkolytisches Vaccinia-Virus unter Ausnutzung seiner Eigenschaft als Vektorsystem mit dem Designer-Zytokin Hyper-IL-6 ausgestattet (GLV 1h90). Bei Hyper IL 6 handelt es sich um ein Fusionsprotein bestehend aus humanem Interleukin-6 und der Liganden-Bindungsdomäne des löslichen Interleukin-6-Rezeptors, welche kovalent über einen flexiblen Linker miteinander verbunden sind. Dieses chimäre Designer-Zytokin erlaubt die Untersuchung von IL-6-Effekten, welche über das IL-6-Trans-Signaling vermittelt werden. Daraus ergibt sich einerseits eine beträchtliche Erweiterung des Wirkspektrums und darüber hinaus weist Hyper-IL-6 sowohl in vitro als auch in vivo eine 100-1000fach verstärkte biologische Aktivität auf. Aufgrund der Tatsache, dass Hyper-IL-6, neben seiner Tumor-inhibierenden Wirkung, eine Vielzahl weiterer Effekte zugeschrieben wird, wurde in dieser Arbeit durch die Kombination des Designer-Zytokins mit einem onkolytischen Vaccinia-Virus nicht nur additive Effekte auf die Tumorregression, sondern darüber hinaus auch mögliche systemisch-vermittelte Hyper-IL-6-Effekte untersucht. Nach intravenöser Injektion von GLV-1h90 in DU-145-Tumor-tragende Mäuse konnte neben der intratumoralen Replikation des Virus und der Expression des Markerproteins Ruc-GFP zusätzlich die Expression des integrierten Designer-Zytokins Hyper-IL-6 im Tumor nachgewiesen werden. Von entscheidender Bedeutung war der zusätzliche Nachweis des Designer-Zytokins in Serum-Proben von GLV-1h90-injizierten Mäusen. Nach einer aktiven Hyper-IL-6-Sekretion von infizierten Tumorzellen, bildet der Transport in die Blutbahn die Voraussetzung für systemisch-vermittelte Hyper-IL-6-Effekte. In dieser Arbeit wurde untersucht, ob sich durch die Überexpression von Hyper-IL-6 im Tumor, zusätzlich zu den onkolytischen Eigenschaften des Vaccinia-Virus, additive anti-Tumor-Effekte ergeben. Eine systemische Injektion von GLV 1h90 bzw. GLV 1h68 in DU-145-Tumor-tragende Mäuse führte zu einer signifikanten Reduktion des Tumorvolumens im Vergleich zu PBS-injizierten Mäusen. Neben Effekten, welche mit Entzündungsprozessen assoziiert sind, wie eine Rotfärbung der Haut, eine signifikanten Vergrößerung der Leber sowie eine massive Stimulation der Akute-Phase-Antwort in der Leber, konnte in GLV-1h90-injizierten Mäusen ein verbesserter Gesundheitszustand auf der Basis einer signifikanten Gewichtszunahme, verbunden mit einer beschleunigten Wundheilung Virus-induzierter Schwanzläsionen, beobachtet werden. Darüber hinaus konnte für Hyper-IL-6 eine Stimulierung der Megakaryopoese im Knochenmark nachgewiesen werden, welche zu einer signifikanten Erhöhung der Thrombozyten-Zahl im Blutkreislauf von GLV-1h90-injizierten Mäusen führte. Es ist von entscheidender Bedeutung anzumerken, dass alle beobachteten systemischen Hyper-IL-6-Effekte eine zeitliche Limitierung aufwiesen, welche sich höchstwahrscheinlich auf die Virus-bedingte Zerstörung Hyper IL 6-produzierender Tumorzellen zurückführen lässt. Dies impliziert zudem, dass eventuelle Komplikationen, welche durch die Überexpression des Designer-Zytokins hervorgerufen werden können, ebenfalls selbstlimitierend sind. Es konnte bereits mehrfach gezeigt werden, dass eine Kombinationstherapie aus onkolytischen Viren und Chemotherapie über synergistische Effekte zu einer signifikant verbesserten Tumorregression führt. Allerdings kommt es in Folge einer Chemotherapie oft zu einer Vielzahl von gefährlichen Nebenwirkungen, da alle schnell proliferierenden Zellen des Körpers betroffen sind. Thrombozytopenie ist eine der am häufigsten vorkommenden Nebenwirkung und beschreibt eine massive Reduktion der Thrombozyten-Zahl im Blut. Im Hinblick auf eine mögliche klinische Anwendung von GLV 1h90 wurde deshalb untersucht, ob in einer Kombinationstherapie mit Mitomycin C, neben einer Verstärkung der therapeutischen Effekte des Virus, basierend auf den beobachteten Hyper-IL-6-Effekten, zusätzlich der Gesundheitszustand der behandelten Mäuse verbessert werden kann. Die Experimente belegen, dass eine Kombination onkolytischer Vaccinia-Virus-Konstrukte mit Mitomycin C zu einer signifikant verbesserten Tumorregression im Vergleich zu den jeweiligen Monotherapien führt. Von bedeutender Relevanz war die Beobachtung, dass in einer Kombinationstherapie von Mitomycin C und GLV-1h90, im Gegensatz zu GLV-1h68, eine signifikante zeitliche Verkürzung der auftretenden Thrombozytopenie erreicht wird. Zusammenfassend konnte in dieser Arbeit gezeigt werden, dass eine systemische Injektion von GLV-1h90 zu einer funktionellen Expression des Designer-Zytokins Hyper-IL-6 führte, welches in der Lage ist eine erfolgreiche Kombinationstherapie aus einem onkolytischen Vaccinia-Virus und dem Chemotherapeutikum Mitomycin C durch eine Reduktion der Nebenwirkungen zusätzlich zu optimieren.
Zurzeit sterben jährlich ca. 11.000 Männer in Deutschland am Prostatakarzinom. Damit stellt dies die zweithäufigste Krebstodesursache von Männern dar. Da das Prostatakarzinom häufig asymptomatisch verläuft, wird die Erkrankung oftmals erst so spät erkannt, dass zum Zeitpunkt der Diagnose bereits eine Metastasierung stattgefunden hat. Durch metastasierende Prostatakarzinomzellen werden Lymphknoten, Knochen und Lungen befallen. Es sind zwei unterschiedliche Verbreitungsarten von metastasierenden Tumorzellen beschrieben. Zum einen kann eine Migration über Lymphgefäße erfolgen, ein Prozess der als lymphatische Metastasierung bezeichnet wird. Zum anderen können Tumorzellen über das Blutsystem im Körper zirkulieren: die hämatogene Metastasierung. In dieser Arbeit wurde die lymphatische Metastasierung der humanen Prostatakarzinomzellline PC-3 im Detail analysiert und Teilaspekte der hämatogenen Verteilung untersucht. Ausgangspunkt der Untersuchungen bildete die Vergrößerung lumbaler und renaler Lymphknoten in PC-3-Tumor-tragenden Mäusen 60 Tage nach der Implantation von PC-3-Zellen. Es wurde daraufhin der zeitliche Verlauf der Vergrößerung untersucht und festgestellt, dass sowohl das Volumen als auch die Anzahl vergrößerter Lymphknoten von Woche zu Woche nach Implantation der PC-3-Tumore zunehmen. Anschließend wurden alle vergrößerten Lymphknoten bezüglich des Vorhandenseins von metastasierenden humanen PC-3-Zellen in den Mäusen untersucht. Dies geschah mit Hilfe einer RT-PCR unter Verwendung von Primern für humanes β-Aktin. Sechs Wochen nach Implantation konnten in 90 % der vergrößerten Lymphknoten PC-3-Zellen nachgewiesen werden. Weiterhin wurde durch lentivirale Transduktion das Gen für das rot fluoreszierende Protein (RFP) in die PC-3-Zellen inseriert, wodurch eine Visualisierung dieser Zellen in der Maus ermöglicht wurde. Es konnten metastasierende PC-3-RFP-Zellen in lumbalen und renalen Lymphknoten PC-3-RFP-Tumor-tragender Mäuse nachgewiesen werden. Ebenso konnte mittels RFP gezeigt werden, dass die Lymphknotenmetastasierung in Abhängigkeit von der Lokalisation des PC-3-RFP-Tumors erfolgt. Es kam zur Metastasierung jener Lymphknoten, in deren Einzugsgebiet sich der PC-3-Tumor befand. Es wurde eine PC-3-RFP-Zellmigration zwischen lumbalen und renalen Lymphknotenmetastasen nachgewiesen und bei immunhistologischen Untersuchungen stellte sich heraus, dass PC-3-RFP-Zellen tatsächlich in lymphatischen Bahnen zwischen lumbalen und renalen Lymphknotenmetastasen migrieren. Außerdem wurde gezeigt, dass es von Woche zu Woche nach Implantation von PC-3-Zellen zu einer Zunahme der Anzahl von Lymphgefäßen in PC-3-Tumoren kommt. Die Zunahme der Lymphgefäßdichte korrelierte hierbei positiv mit der Bildung von Lymphknotenmetastasen. Es konnten weiterhin neben Lymphknotenmetastasen hämatogene Mikrometastasen in den Lungen PC-3-RFP-Tumor-tragender Mäuse beobachtet werden. Da die Haupttodesursache von Prostatakarzinompatienten in der Bildung von Metastasen liegt, ist es von herausragender Bedeutung eine effektive Therapie gegen lymphatische und hämatogene Metastasen zu entwickeln. Aus diesem Grund erlangt die onkolytische Virustherapie große Bedeutung. Deshalb wurde als zweiter Aspekt in dieser Arbeit der Einfluss des onkolytischen Vaccinia-Virus GLV-1h68 auf den Prozess der PC-3-Zellmetastasierung untersucht. Dabei konnte zunächst gezeigt werden, dass GLV-1h68 in der Lage ist, erfolgreich sowohl migrierende PC-3-Zellen als auch metastasierende PC-3-Zellen in Lymphknoten zu kolonisieren. In der Folge wurde deshalb ein möglicher Metastasen-inhibierender Effekt von GLV-1h68 untersucht. Hierbei stellte sich heraus, dass GLV-1h68 drei Wochen nach intravenöser Injektion eine signifikante Reduktion der Anzahl der für PC-3-Zellen positiven Lymphknoten bewirkt. Des Weiteren konnte ein inhibierender Effekt von GLV-1h68 auf die im Blut zirkulierenden PC-3-Zellen und auf hämatogene Metastasen in den Lungen beobachtet werden. Durch intravenöse Injektion von GLV-1h68 in PC-3-RFP-Tumor-tragenden Mäusen konnte gezeigt werden, dass es zu einer präferentiellen Virus-Kolonisierung der Lymphknotenmetastasen im Vergleich zu den Tumoren kommt. Auch nach intraperitonealer und intratumoraler Injektion von GLV-1h68 konnte eine präferentielle Virus-Kolonisierung der Lymphknotenmetastasen gezeigt werden. Darüber hinaus wurden die Lymph- und Blutgefäße von PC-3-Tumoren und Lymphknotenmetastasen analysiert. Hierbei wurde gezeigt, dass es sieben Tage nach intravenöser Injektion von GLV-1h68 zu einer signifikanten Abnahme von beiden Gefäßarten kam. Es wurde in dieser Arbeit somit gezeigt, dass GLV-1h68 in der Lage ist, sowohl lymphatische als auch hämatogene Metastasen der Prostatakarzinomzelllinie PC-3 erfolgreich zu eliminieren. Folglich dürften onkolytische Vaccinia-Viren ein vielversprechendes Therapeutikum für die Behandlung des fortgeschrittenen Prostatakarzinoms darstellen.