TY - JOUR A1 - Kirscher, Lorenz A1 - Deán-Ben, Xosé Luis A1 - Scadeng, Miriam A1 - Zaremba, Angelika A1 - Zhang, Qian A1 - Kober, Christina A1 - Fehm, Thomas Felix A1 - Razansky, Daniel A1 - Ntziachristos, Vasilis A1 - Stritzker, Jochen A1 - Szalay, Aladar A. T1 - Doxycycline Inducible Melanogenic Vaccinia Virus as Theranostic Anti-Cancer Agent JF - Theranostics N2 - We reported earlier the diagnostic potential of a melanogenic vaccinia virus based system in magnetic resonance (MRI) and optoacoustic deep tissue imaging (MSOT). Since melanin overproduction lead to attenuated virus replication, we constructed a novel recombinant vaccinia virus strain (rVACV), GLV-1h462, which expressed the key enzyme of melanogenesis (tyrosinase) under the control of an inducible promoter-system. In this study melanin production was detected after exogenous addition of doxycycline in two different tumor xenograft mouse models. Furthermore, it was confirmed that this novel vaccinia virus strain still facilitated signal enhancement as detected by MRI and optoacoustic tomography. At the same time we demonstrated an enhanced oncolytic potential compared to the constitutively melanin synthesizing rVACV system. KW - reporter gene KW - oncolysis KW - molecular imaging KW - virotherapy Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-124987 VL - 5 IS - 10 ER - TY - THES A1 - Gnamlin, Prisca T1 - Use of Tumor Vasculature for Successful Treatment of Carcinomas by Oncolytic Vaccinia Virus T1 - Die Tumorvasulatur in der erfolgreichen Therapie von Carcinomen durch onkolytische Vaccinia Viren N2 - 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. N2 - Ein Hauptinteresse der onkologischen Forschung liegt auf dem Verständnis der Tumor-induzierten Angiogenese. Es wurde bereits festgestellt, dass die meisten Tumortypen eine abnorme Expression angiogener Faktoren zeigen. Der vascular endothelial growth factor (VEGF) wurde als der effektivste angiogene Faktor beschrieben. Es wurde gezeigt, dass die Hemmung des VEGF zur Inhibition der Angiogenese führt, das wiederum zu Tumorregression in vorklinischen Tumormodellen führte. Bevacizumab ist das erste FDA zugelassene Krebs-Therapeutikum, welches spezifisch auf die Tumor-induzierte Angiogenese durch VEGF-Inhibition abzielt. Der erwartete Erfolg durch VEGF-Hemmung konnte im Patienten allerdings nicht erzielt werden. Die Entwicklung von neuen Angiogenese hemmenden Stoffen wie gegen den placental growth factor (PIGF) oder Angiopoietin-2 (Ang-2), ermöglichen eine an das Tumor-Profil angepasste anti-angiogene Strategie. Die onkolytische Virustherapie die natürliche Eigenschaft der Viren Tumore zu kolonisieren. Das Vaccinia-Virus (VACV) gehört zur Familie der Poxviridae und wurde bereits lange Zeit als Vakzin zur Immunisierung gegen Pocken eingesetzt. Es konnte gezeigt werden, dass das rekombinante VACV GLV-1h68 effizient verschiedene Tumortypen infiziert, kolonisiert und lysiert. Das VACV GLV-1h108, welches auf der Basis des GLV-1h68 generiert wurde, kodiert einen anti-VEGF Antikörper. Dieses Virus ist in der Lage ist die Tumor-induzierte Angiogenese effizient zu inhibieren. Zusätzlich zu diesem VACV wurden weitere Konstrukte kloniert, welche für Antikörper gegen PIGF und Ang-2 kodieren. Zusätzlich wurden Virusstämme konstruiert, die gleichzeitig zwei Angiogenesefaktoren anzielen. Es wurde verschiedene VACV-vermittelte anti-Angiogenese Therapien in vorklinischen Tumormodellen wie Lungenadenokarzinome, KolonKarzinom, Melanom und Lungenadenokarzinome evaluiert. Die Effizienz der VACV-vermittelten Hemmung von PIGF und Ang-2, singulär oder in Kombination mit VEGF, wurde mit Tumor-Xenotransplantaten ermittelt. Die Inhibition von PlGF alleine oder in Kombination mit VEGF reduzierten die Tumorbelastung bis zu fünf, beziehungsweise zwei mal effizienter als GLV-1h68. Weiterhin wurde gezeigt, dass anders als VEGF, der Erfolg der Ang-2 Hemmung nicht nur mit der Stärke der Hemmung korreliert. Um Tumorregression sowie eine verbesserte Überlebensrate zu verursachen muss eine Balance zwischen Ang-2, VEGF und Ang-1 induziert werden. GLV-1h68 behandelte Tumore waren drei mal gröβer als Tumore, die mit den anti-Ang2 exprimierenden Viren behandelt wurden. Dieselben Virusstämme verursachten eine erhebliche Verspätung des Wachstums der Tumoren. Ausserdem hat diese Arbeit die Notwendigkeit enthüllt, ein angiogenes Profil des zu behandelnden Tumors zu etablieren sowie den Bedarf die synergistischen Effekte von VEGF und Ang-2 besser zu verstehen. Durch die Inhibition der Angiogenese durch VACV-verursachte PIGF und Ang-2 Hemmung wurde die Anzahl der Metastasen und der migrierenden Tumorzellen reduziert. Es wurde gezeigt, dass VEGF die VACV-Kolonisierung von Tumorzellen limitiert, da der Einsatz eines anti-VEGF VACV zu einer Verbesserung der Kolonisierung führt. In vivo Analysen bestätigten diese in vitro Daten. Nach vierzehn Tagen kolonisierte das anti-VEGF Virus 78,85% der Tumoren während die Kolonizationsquote des Kontrollviruses 49,64 % war. Dies resultierte in Tumorregression. Drei der getesteten Tumorzelllinien, in welchen die VACV-vermittelte Angiogenese-Inhibition untersucht wurde, waren in der Lage als Teil der Vaskulatur zu fungieren. Die Expression von Adhäsionsproteinen in diesen Tumorzellen untermauert die Ergebnisse. Weiterhin konnte ein unterschiedliches Expressionsmuster in Anwesenheit von VEGF, PIGF und Ang-2 festgestellt werden, wodurch die Beteiligung angiogener Faktoren bei den immunmodulatorischen Eigenschaften von Tumoren gezeigt werden konnte. In dieser Arbeit konnte gezeigt werden, dass eine VACV-vermittelte anti-angiogene Behandlung für verschiedene Tumorvarianten erfolgsversprechend ist. Die Möglichkeit verschiedene Antikörper gegen unterschiedliche angiogene Faktoren zu exprimieren würde verhindern, dass diese die Angiogenese stimulierende Wirkung des VEGF übernehmen. Die Eigenschaft von VACV Tumorzellen zu infizieren verhindert, dass diese Blutgefäß-ähnliche Strukturen bilden, welche das Tumorwachstum gewährleisten würde. Weiterhin würde die lokal begrenzte Antikörper-Freisetzung das Risiko von Nebenwirkungen senken. Die Inhibition angiogener Faktoren würde die VACV Replikationsrate steigern und den immunmodulatorischen Effekt der Tumore abschwächen. Letztlich würde die Hemmung der Angiogenese bis zur völligen Regression des Tumors aufrechterhalten, die Neubildung Tumor-assoziierter Vaskulatur verhindern und somit den Rückfall des Patienten. KW - Vaccinia-Virus KW - cancer KW - vaccinia virus KW - virotherapy KW - tumor vascularization KW - oncolytic virotherapy KW - Onkolyse KW - Angiogenese Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-119019 ER - TY - JOUR A1 - Gentschev, Ivaylo A1 - Adelfinger, Marion A1 - Josupeit, Rafael A1 - Rudolph, Stephan A1 - Ehrig, Klaas A1 - Donat, Ulrike A1 - Weibel, Stephanie A1 - Chen, Nanhai G. A1 - Yu, Yong A. A1 - Zhang, Qian A1 - Heisig, Martin A1 - Thamm, Douglas A1 - Stritzker, Jochen A1 - MacNeill, Amy A1 - Szalay, Aladar A. T1 - Preclinical Evaluation of Oncolytic Vaccinia Virus for Therapy of Canine Soft Tissue Sarcoma JF - PLoS One N2 - Virotherapy using oncolytic vaccinia virus (VACV) strains is one promising new strategy for canine cancer therapy. In this study we describe the establishment of an in vivo model of canine soft tissue sarcoma (CSTS) using the new isolated cell line STSA-1 and the analysis of the virus-mediated oncolytic and immunological effects of two different Lister VACV LIVP1.1.1 and GLV-1h68 strains against CSTS. Cell culture data demonstrated that both tested VACV strains efficiently infected and destroyed cells of the canine soft tissue sarcoma line STSA-1. In addition, in our new canine sarcoma tumor xenograft mouse model, systemic administration of LIVP1.1.1 or GLV-1h68 viruses led to significant inhibition of tumor growth compared to control mice. Furthermore, LIVP1.1.1 mediated therapy resulted in almost complete tumor regression and resulted in long-term survival of sarcoma-bearing mice. The replication of the tested VACV strains in tumor tissues led to strong oncolytic effects accompanied by an intense intratumoral infiltration of host immune cells, mainly neutrophils. These findings suggest that the direct viral oncolysis of tumor cells and the virus-dependent activation of tumor-associated host immune cells could be crucial parts of anti-tumor mechanism in STSA-1 xenografts. In summary, the data showed that both tested vaccinia virus strains and especially LIVP1.1.1 have great potential for effective treatment of CSTS. KW - breast-tumors KW - animal-model KW - nude-mice KW - cell-line KW - in-vitro KW - glv-1h68 KW - cancer KW - virotherapy KW - dogs KW - neutrophils Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-129998 VL - 7 IS - 5 ER - TY - JOUR A1 - Draganov, Dobrin D. A1 - Santidrian, Antonio F. A1 - Minev, Ivelina A1 - Duong, Nguyen A1 - Kilinc, Mehmet Okyay A1 - Petrov, Ivan A1 - Vyalkova, Anna A1 - Lander, Elliot A1 - Berman, Mark A1 - Minev, Boris A1 - Szalay, Aladar A. T1 - Delivery of oncolytic vaccinia virus by matched allogeneic stem cells overcomes critical innate and adaptive immune barriers JF - Journal of Translational Medicine N2 - Background Previous studies have identified IFNγ as an important early barrier to oncolytic viruses including vaccinia. The existing innate and adaptive immune barriers restricting oncolytic virotherapy, however, can be overcome using autologous or allogeneic mesenchymal stem cells as carrier cells with unique immunosuppressive properties. Methods To test the ability of mesenchymal stem cells to overcome innate and adaptive immune barriers and to successfully deliver oncolytic vaccinia virus to tumor cells, we performed flow cytometry and virus plaque assay analysis of ex vivo co-cultures of stem cells infected with vaccinia virus in the presence of peripheral blood mononuclear cells from healthy donors. Comparative analysis was performed to establish statistically significant correlations and to evaluate the effect of stem cells on the activity of key immune cell populations. Results Here, we demonstrate that adipose-derived stem cells (ADSCs) have the potential to eradicate resistant tumor cells through a combination of potent virus amplification and sensitization of the tumor cells to virus infection. Moreover, the ADSCs demonstrate ability to function as a virus-amplifying Trojan horse in the presence of both autologous and allogeneic human PBMCs, which can be linked to the intrinsic immunosuppressive properties of stem cells and their unique potential to overcome innate and adaptive immune barriers. The clinical application of ready-to-use ex vivo expanded allogeneic stem cell lines, however, appears significantly restricted by patient-specific allogeneic differences associated with the induction of potent anti-stem cell cytotoxic and IFNγ responses. These allogeneic responses originate from both innate (NK)- and adaptive (T)- immune cells and might compromise therapeutic efficacy through direct elimination of the stem cells or the induction of an anti-viral state, which can block the potential of the Trojan horse to amplify and deliver vaccinia virus to the tumor. Conclusions Overall, our findings and data indicate the feasibility to establish simple and informative assays that capture critically important patient-specific differences in the immune responses to the virus and stem cells, which allows for proper patient-stem cell matching and enables the effective use of off-the-shelf allogeneic cell-based delivery platforms, thus providing a more practical and commercially viable alternative to the autologous stem cell approach. KW - vaccinia KW - cancer KW - stem Cells KW - oncolysis KW - oncolytic virus KW - virotherapy KW - immunity KW - immunotherapy Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-226312 SN - 100 VL - 17 ER -