TY - THES A1 - Adelfinger, Marion T1 - Präklinische Verwendung verschiedener onkolytischer Vaccinia-Viren zur Therapie von Human- und Hundetumoren T1 - Preclinical application of different oncolytic vaccinia viruses in human and canine tumor therapy N2 - 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. ... N2 - The cancer mortality rate is increasing steadily in man and pet animals and it is estimated by the World Health Organisation (WHO) to be number one cause of deaths in 2013. This situation raises the need for developing new therapeutic approaches whereby the main goal of tumor therapy always is the complete elimination of primary tumor and metastases. In contrast to most current therapies, like surgical resection of malignant neoplasia, chemotherapy and radiation, the new cancer treatments should selectively recognize and destroy malignant cells. The application of oncolytic viruses offers fascinating opportunities, because of their ability to selectively colonize primary tumors and metastases and directly destroy cancer cells. The concept of fighting cancer with viruses is not new, but the significant anti-tumoral effect of different viruses in vivo was demonstrated by several studies in the last few years. Promising oncolytic viruses are adenovirus, Herpes simplex virus, reovirus and vaccinia virus. These viruses are currently in or entering phase III clinical trials but the therapeutic use of tumor specific oncolytic viruses for humans has already started. In this work, different aspects of the effects of vaccinia virus strains during therapy of canine and human tumors in mouse xenograft models were analyzed: oncolysis of cancer cells, inhibition of tumor growth, influence of virus infection on the tumor microenvironment and participation of the innate immunity in virotherapy. The tumor microenvironment (stroma) is composed of many different cells and components of the extracellular matrix. Cancer cells form structures similar to organs including endothelial cells of the blood and lymph system, different immune cells and many other cell types. Other important components of the stroma are growth factors, chemokines and cytokines as well as the tumor vasculature that is characterized by numerous structural and functional abnormalities which decrease the efficacy of radiation and chemotherapy. Another hallmark of the tumor microenvironment is its similarity to chronic inflammation and its immunosuppressive effect on recruited leukocytes which in turn increase the inflammation and angiogenesis and promote tumor growth. Due to the many different components the composition of each tumor is unique and that is why standard therapies often do not result in cure. The effects of the viruses in the virotherapy are propably based on four mechanisms working alone or in combination: direct oncolysis of cancer cells, destruction of tumor vasculature, activation of host immune system and suppression of host microRNA expression. Additionally the expression of therapeutic genes can increase the oncolytic effect of the viruses. To analyze the oncolysis of cancer cells and the inhibition of tumor growth first the GLV-1h68 virus was used in an autologous pair of human melanoma 888-MEL and 1936-MEL. GLV-1h68 was genetically constructed on the basis of wild-type vaccinia virus LIVP by insertion of 3 expression cassettes into F14.5L, J2R and A56 gene loci. 888-MEL was isolated from metastases early during cancer disease and exhibits tumor necrosis after infection with GLV-1h68 in mouse xenograft model (responder) whereas 1936-MEL which was isolated in the late phase of metastases formation hardly shows oncolysis following virus treatment (poor-responder). The oncolytic effect was demonstrated by flow cytometric analysis of tumors of both cell lines at an early time after virus infection. In 888-MEL tumors high numbers of infected and dead cells were found after virus infection. Simultaneously, a high number of immune cells were detected which was reduced after infection. In the lower responding 1936-MEL tumors oncolysis was only observed after infection with higher amount of virus at an earlier time whereby the number of infected cells increased. Additionally, the low number of immune cells increased after infection. Despite the different tumor microenvironment an oncolytic effect was achieved in both tumor models. ... KW - Vaccinia-Virus KW - Tumortherapie KW - Tumorimmunologie KW - Hundetumor KW - onkolytisches Virus KW - vaccinia virus KW - tumor therapy KW - tumor immunology KW - canine tumor KW - oncolytic virus KW - Tumor KW - Therapie KW - Onkolyse Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-70688 ER - TY - JOUR A1 - Adelfinger, Marion A1 - Bessler, Simon A1 - Cecil, Alexander A1 - Langbein-Laugwitz, Johanna A1 - Frentzen, Alexa A1 - Gentschev, Ivaylo A1 - Szalay, Aladar A. T1 - Preclinical Testing Oncolytic Vaccinia Virus Strain GLV-5b451 Expressing an Anti-VEGF Single-Chain Antibody for Canine Cancer Therapy JF - Viruses N2 - Virotherapy on the basis of oncolytic vaccinia virus (VACV) strains is a novel approach for canine cancer therapy. Here we describe, for the first time, the characterization and the use of VACV strain GLV-5b451 expressing the anti-vascular endothelial growth factor (VEGF) single-chain antibody (scAb) GLAF-2 as therapeutic agent against different canine cancers. Cell culture data demonstrated that GLV-5b451 efficiently infected and destroyed all four tested canine cancer cell lines including: mammary carcinoma (MTH52c), mammary adenoma (ZMTH3), prostate carcinoma (CT1258), and soft tissue sarcoma (STSA-1). The GLV-5b451 virus-mediated production of GLAF-2 antibody was observed in all four cancer cell lines. In addition, this antibody specifically recognized canine VEGF. Finally, in canine soft tissue sarcoma (CSTS) xenografted mice, a single systemic administration of GLV-5b451 was found to be safe and led to anti-tumor effects resulting in the significant reduction and substantial long-term inhibition of tumor growth. A CD31-based immuno-staining showed significantly decreased neo-angiogenesis in GLV-5b451-treated tumors compared to the controls. In summary, these findings indicate that GLV-5b451 has potential for use as a therapeutic agent in the treatment of CSTS. KW - canine cancer therapy KW - canine soft tissue sarcoma (CSTS) KW - oncolytic virus KW - cancer KW - canine cancer cell lines KW - antibody production KW - angiogenesis Y1 - 2015 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-125705 VL - 7 ER - TY - JOUR A1 - Adelfinger, Marion A1 - Gentschev, Ivaylo A1 - de Guibert, Julio Grimm A1 - Weibel, Stephanie A1 - Langbein-Laugwitz, Johanna A1 - Härtl, Barbara A1 - Escobar, Hugo Murua A1 - Nolte, Ingo A1 - Chen, Nanhai G. A1 - Aguilar, Richard J. A1 - Yu, Yong A. A1 - Zhang, Qian A1 - Frentzen, Alexa A1 - Szalay, Aladar A. T1 - Evaluation of a New Recombinant Oncolytic Vaccinia Virus Strain GLV-5b451 for Feline Mammary Carcinoma Therapy JF - PLoS ONE N2 - Virotherapy on the basis of oncolytic vaccinia virus (VACV) infection is a promising approach for cancer therapy. In this study we describe the establishment of a new preclinical model of feline mammary carcinoma (FMC) using a recently established cancer cell line, DT09/06. In addition, we evaluated a recombinant vaccinia virus strain, GLV-5b451, expressing the anti-vascular endothelial growth factor (VEGF) single-chain antibody (scAb) GLAF-2 as an oncolytic agent against FMC. Cell culture data demonstrate that GLV-5b451 virus efficiently infected, replicated in and destroyed DT09/06 cancer cells. In the selected xenografts of FMC, a single systemic administration of GLV-5b451 led to significant inhibition of tumor growth in comparison to untreated tumor-bearing mice. Furthermore, tumor-specific virus infection led to overproduction of functional scAb GLAF-2, which caused drastic reduction of intratumoral VEGF levels and inhibition of angiogenesis. In summary, here we have shown, for the first time, that the vaccinia virus strains and especially GLV-5b451 have great potential for effective treatment of FMC in animal model. KW - antibodies KW - cancer treatment KW - carcinomas KW - vaccinia virus KW - oncolytic viruses KW - viral replication KW - cell cultures KW - enzyme-linked immunoassays Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-119387 VL - 9 IS - 8 ER - TY - JOUR A1 - Cecil, Alexander A1 - Gentschev, Ivaylo A1 - Adelfinger, Marion A1 - Dandekar, Thomas A1 - Szalay, Aladar A. T1 - Vaccinia virus injected human tumors: oncolytic virus efficiency predicted by antigen profiling analysis fitted boolean models JF - Bioengineered N2 - Virotherapy on the basis of oncolytic vaccinia virus (VACV) strains is a promising approach for cancer therapy. Recently, we showed that the oncolytic vaccinia virus GLV-1h68 has a therapeutic potential in treating human prostate and hepatocellular carcinomas in xenografted mice. In this study, we describe the use of dynamic boolean modeling for tumor growth prediction of vaccinia virus-injected human tumors. Antigen profiling data of vaccinia virus GLV-1h68-injected human xenografted mice were obtained, analyzed and used to calculate differences in the tumor growth signaling network by tumor type and gender. Our model combines networks for apoptosis, MAPK, p53, WNT, Hedgehog, the T-killer cell mediated cell death, Interferon and Interleukin signaling networks. The in silico findings conform very well with in vivo findings of tumor growth. Similar to a previously published analysis of vaccinia virus-injected canine tumors, we were able to confirm the suitability of our boolean modeling for prediction of human tumor growth after virus infection in the current study as well. In summary, these findings indicate that our boolean models could be a useful tool for testing of the efficacy of VACV-mediated cancer therapy already before its use in human patients. KW - boolean modeling KW - oncolytic virus KW - human xenografted mouse models KW - cancer therapy Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-200507 VL - 10 IS - 1 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 - Gentschev, Ivaylo A1 - Müller, Meike A1 - Adelfinger, Marion A1 - Weibel, Stephanie A1 - Grummt, Friedrich A1 - Zimmermann, Martina A1 - Bitzer, Michael A1 - Heisig, Martin A1 - Zhang, Qian A1 - Yu, Yong A. A1 - Chen, Nanhai G. A1 - Stritzker, Jochen A1 - Lauer, Ulrich M. A1 - Szalay, Aladar A. T1 - Efficient Colonization and Therapy of Human Hepatocellular Carcinoma (HCC) Using the Oncolytic Vaccinia Virus Strain GLV-1h68 JF - PLOS ONE N2 - Virotherapy using oncolytic vaccinia virus strains is one of the most promising new strategies for cancer therapy. In this study, we analyzed for the first time the therapeutic efficacy of the oncolytic vaccinia virus GLV-1h68 in two human hepatocellular carcinoma cell lines HuH7 and PLC/PRF/5 (PLC) in cell culture and in tumor xenograft models. By viral proliferation assays and cell survival tests, we demonstrated that GLV-1h68 efficiently colonized, replicated in, and did lyse these cancer cells in culture. Experiments with HuH7 and PLC xenografts have revealed that a single intravenous injection (i.v.) of mice with GLV-1h68 resulted in a significant reduction of primary tumor sizes compared to uninjected controls. In addition, replication of GLV-1h68 in tumor cells led to strong inflammatory and oncolytic effects resulting in intense infiltration of MHC class II-positive cells like neutrophils, macrophages, B cells and dendritic cells and in up-regulation of 13 pro-inflammatory cytokines. Furthermore, GLV-1h68 infection of PLC tumors inhibited the formation of hemorrhagic structures which occur naturally in PLC tumors. Interestingly, we found a strongly reduced vascular density in infected PLC tumors only, but not in the non-hemorrhagic HuH7 tumor model. These data demonstrate that the GLV-1h68 vaccinia virus may have an enormous potential for treatment of human hepatocellular carcinoma in man. KW - Breast-tumors KW - Nude-mice KW - In-vivo KW - Cancer KW - Inhibitor KW - Tissue KW - Agent KW - COX-2 Y1 - 2011 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-135319 VL - 6 IS - 7 ER - TY - JOUR A1 - Gentschev, Ivaylo A1 - Patil, Sadeep S. A1 - Petrov, Ivan A1 - Cappello, Joseph A1 - Adelfinger, Marion A1 - Szalay, Aladar A. T1 - Oncolytic Virotherapy of Canine and Feline Cancer JF - Viruses N2 - Cancer is the leading cause of disease-related death in companion animals such as dogs and cats. Despite recent progress in the diagnosis and treatment of advanced canine and feline cancer, overall patient treatment outcome has not been substantially improved. Virotherapy using oncolytic viruses is one promising new strategy for cancer therapy. Oncolytic viruses (OVs) preferentially infect and lyse cancer cells, without causing excessive damage to surrounding healthy tissue, and initiate tumor-specific immunity. The current review describes the use of different oncolytic viruses for cancer therapy and their application to canine and feline cancer. KW - oncolytic virus KW - oncolysis KW - cancer KW - canine and feline cancer therapy Y1 - 2014 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-119753 VL - 6 IS - 5 ER - TY - JOUR A1 - Patil, Sandeep S. A1 - Gentschev, Ivaylo A1 - Adelfinger, Marion A1 - Donat, Ulrike A1 - Hess, Michael A1 - Weibel, Stephanie A1 - Nolte, Ingo A1 - Frentzen, Alexa A1 - Szalay, Aladar A. T1 - Virotherapy of Canine Tumors with Oncolytic Vaccinia Virus GLV-1h109 Expressing an Anti-VEGF Single-Chain Antibody JF - PLoS One N2 - Virotherapy using oncolytic vaccinia virus (VACV) strains is one promising new strategy for cancer therapy. We have previously reported that oncolytic vaccinia virus strains expressing an anti-VEGF (Vascular Endothelial Growth Factor) single-chain antibody (scAb) GLAF-1 exhibited significant therapeutic efficacy for treatment of human tumor xenografts. Here, we describe the use of oncolytic vaccinia virus GLV-1h109 encoding GLAF-1 for canine cancer therapy. In this study we analyzed the virus-mediated delivery and production of scAb GLAF-1 and the oncolytic and immunological effects of the GLV-1h109 vaccinia virus strain against canine soft tissue sarcoma and canine prostate carcinoma in xenograft models. Cell culture data demonstrated that the GLV-1h109 virus efficiently infect, replicate in and destroy both tested canine cancer cell lines. In addition, successful expression of GLAF-1 was demonstrated in virus-infected canine cancer cells and the antibody specifically recognized canine VEGF. In two different xenograft models, the systemic administration of the GLV-1h109 virus was found to be safe and led to anti-tumor and immunological effects resulting in the significant reduction of tumor growth in comparison to untreated control mice. Furthermore, tumor-specific virus infection led to a continued production of functional scAb GLAF-1, resulting in inhibition of angiogenesis. Overall, the GLV-1h109-mediated cancer therapy and production of immunotherapeutic anti-VEGF scAb may open the way for combination therapy concept i.e. vaccinia virus mediated oncolysis and intratumoral production of therapeutic drugs in canine cancer patients. KW - angiogenesis KW - microenvironment KW - model KW - cancer KW - therapy KW - pet dogs KW - nude-mice KW - breast-tumors KW - microvascular density KW - endothelial growth-factor Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-130039 VL - 7 IS - 10 ER - TY - JOUR A1 - Szalay, Aladar A A1 - Weibel, Stephanie A1 - Hofmann, Elisabeth A1 - Basse-Luesebrink, Thomas Christian A1 - Donat, Ulrike A1 - Seubert, Carolin A1 - Adelfinger, Marion A1 - Gnamlin, Prisca A1 - Kober, Christina A1 - Frentzen, Alexa A1 - Gentschev, Ivaylo A1 - Jakob, Peter Michael T1 - Treatment of malignant effusion by oncolytic virotherapy in an experimental subcutaneous xenograft model of lung cancer JF - Journal of Translational Medicine N2 - Background Malignant pleural effusion (MPE) is associated with advanced stages of lung cancer and is mainly dependent on invasion of the pleura and expression of vascular endothelial growth factor (VEGF) by cancer cells. As MPE indicates an incurable disease with limited palliative treatment options and poor outcome, there is an urgent need for new and efficient treatment options. Methods In this study, we used subcutaneously generated PC14PE6 lung adenocarcinoma xenografts in athymic mice that developed subcutaneous malignant effusions (ME) which mimic pleural effusions of the orthotopic model. Using this approach monitoring of therapeutic intervention was facilitated by direct observation of subcutaneous ME formation without the need of sacrificing mice or special imaging equipment as in case of MPE. Further, we tested oncolytic virotherapy using Vaccinia virus as a novel treatment modality against ME in this subcutaneous PC14PE6 xenograft model of advanced lung adenocarcinoma. Results We demonstrated significant therapeutic efficacy of Vaccinia virus treatment of both advanced lung adenocarcinoma and tumor-associated ME. We attribute the efficacy to the virus-mediated reduction of tumor cell-derived VEGF levels in tumors, decreased invasion of tumor cells into the peritumoral tissue, and to viral infection of the blood vessel-invading tumor cells. Moreover, we showed that the use of oncolytic Vaccinia virus encoding for a single-chain antibody (scAb) against VEGF (GLAF-1) significantly enhanced mono-therapy of oncolytic treatment. Conclusions Here, we demonstrate for the first time that oncolytic virotherapy using tumor-specific Vaccinia virus represents a novel and promising treatment modality for therapy of ME associated with advanced lung cancer. KW - Oncolytic virotherapy KW - Malignant effusion KW - Lung cancer KW - VEGF KW - Lungenkrebs KW - Vascular endothelial Growth Factor Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-96016 UR - http://www.translational-medicine.com/content/11/1/106 ER -