TY - JOUR A1 - Ascierto, Maria Libera A1 - Worschech, Andrea A1 - Yu, Zhiya A1 - Adams, Sharon A1 - Reinboth, Jennifer A1 - Chen, Nanhai G A1 - Pos, Zoltan A1 - Roychoudhuri, Rahul A1 - Di Pasquale, Giovanni A1 - Bedognetti, Davide A1 - Uccellini, Lorenzo A1 - Rossano, Fabio A1 - Ascierto, Paolo A A1 - Stroncek, David F A1 - Restifo, Nicholas P A1 - Wang, Ena A1 - Szalay, Aladar A A1 - Marincola, Francesco M T1 - Permissivity of the NCI-60 cancer cell lines to oncolytic Vaccinia Virus GLV-1h68 JF - BMC Cancer N2 - Background: Oncolytic viral therapy represents an alternative therapeutic strategy for the treatment of cancer. We previously described GLV-1h68, a modified Vaccinia Virus with exclusive tropism for tumor cells, and we observed a cell line-specific relationship between the ability of GLV-1h68 to replicate in vitro and its ability to colonize and eliminate tumor in vivo. Methods: In the current study we surveyed the in vitro permissivity to GLV-1h68 replication of the NCI-60 panel of cell lines. Selected cell lines were also tested for permissivity to another Vaccinia Virus and a vesicular stomatitis virus (VSV) strain. In order to identify correlates of permissity to viral infection, we measured transcriptional profiles of the cell lines prior infection. Results: We observed highly heterogeneous permissivity to VACV infection amongst the cell lines. The heterogeneity of permissivity was independent of tissue with the exception of B cell derivation. Cell lines were also tested for permissivity to another Vaccinia Virus and a vesicular stomatitis virus (VSV) strain and a significant correlation was found suggesting a common permissive phenotype. While no clear transcriptional pattern could be identified as predictor of permissivity to infection, some associations were observed suggesting multifactorial basis permissivity to viral infection. Conclusions: Our findings have implications for the design of oncolytic therapies for cancer and offer insights into the nature of permissivity of tumor cells to viral infection. KW - gene-therapy KW - adenovirus KW - receptor KW - identification KW - infection KW - CD9 KW - panel Y1 - 2011 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-141503 VL - 11 IS - 451 ER - TY - JOUR A1 - Spivey, Tara L. A1 - De Giorgi, Valeria A1 - Zhao, Yingdong A1 - Bedognetti, Davide A1 - Pos, Zoltan A1 - Liu, Qiuzhen A1 - Tomei, Sara A1 - Ascierto, Maria Libera A1 - Uccellini, Lorenzo A1 - Reinboth, Jennifer A1 - Chouchane, Lotfi A1 - Stroncek, David F. A1 - Wang, Ena A1 - Marincola, Francesco M. T1 - The stable traits of melanoma genetics: an alternate approach to target discovery JF - BMC Genomics N2 - Background: The weight that gene copy number plays in transcription remains controversial; although in specific cases gene expression correlates with copy number, the relationship cannot be inferred at the global level. We hypothesized that genes steadily expressed by 15 melanoma cell lines (CMs) and their parental tissues (TMs) should be critical for oncogenesis and their expression most frequently influenced by their respective copy number. Results: Functional interpretation of 3,030 transcripts concordantly expressed (Pearson's correlation coefficient p-value < 0.05) by CMs and TMs confirmed an enrichment of functions crucial to oncogenesis. Among them, 968 were expressed according to the transcriptional efficiency predicted by copy number analysis (Pearson's correlation coefficient p-value < 0.05). We named these genes, "genomic delegates" as they represent at the transcriptional level the genetic footprint of individual cancers. We then tested whether the genes could categorize 112 melanoma metastases. Two divergent phenotypes were observed: one with prevalent expression of cancer testis antigens, enhanced cyclin activity, WNT signaling, and a Th17 immune phenotype (Class A). This phenotype expressed, therefore, transcripts previously associated to more aggressive cancer. The second class (B) prevalently expressed genes associated with melanoma signaling including MITF, melanoma differentiation antigens, and displayed a Th1 immune phenotype associated with better prognosis and likelihood to respond to immunotherapy. An intermediate third class (C) was further identified. The three phenotypes were confirmed by unsupervised principal component analysis. Conclusions: This study suggests that clinically relevant phenotypes of melanoma can be retraced to stable oncogenic properties of cancer cells linked to their genetic back bone, and offers a roadmap for uncovering novel targets for tailored anti-cancer therapy. KW - tumors KW - comparative genomic hybridization KW - coloteral cancer KW - prognostic relevance KW - aquired resistance KW - malignant melanoma KW - antigen expression KW - tissue microarray KW - cell carcinoma KW - T cells Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-131992 VL - 13 IS - 156 ER - TY - JOUR A1 - Tomei, Sara A1 - Adams, Sharon A1 - Uccellini, Lorenzo A1 - Bedognetti, Davide A1 - De Giorgi, Valeria A1 - Erdenebileg, Narnygerel A1 - Libera Ascierto, Maria A1 - Reinboth, Jennifer A1 - Liu, Qiuzhen A1 - Bevilacqua, Generoso A1 - Wang, Ena A1 - Mazzanti, Chiara A1 - Marincola, Francesco M. T1 - Association between HRAS rs12628 and rs112587690 polymorphisms with the risk of melanoma in the North American population JF - Medical Oncology N2 - HRAS belongs to the RAS genes superfamily. RAS genes are important players in several human tumors and the single-nucleotide polymorphism rs12628 has been shown to contribute to the risk of bladder, colon, gastrointestinal, oral, and thyroid carcinoma. We hypothesized that this SNP may affect the risk of cutaneous melanoma as well. HRAS gene contains a polymorphic region (rs112587690), a repeated hexanucleotide -GGGCCT- located in intron 1. Three alleles of this region, P1, P2, and P3, have been identified that contain two, three, and four repeats of the hexanucleotide, respectively. We investigated the clinical impact of these polymorphisms in a case–control study. A total of 141 melanoma patients and 118 healthy donors from the North America Caucasian population were screened for rs12628 and rs112587690 polymorphisms. Genotypes were assessed by capillary sequencing or fragment analysis, respectively, and rs12628 CC and rs112587690 P1P1 genotypes significantly associated with increased melanoma risk (OR = 3.83, p = 0.003; OR = 11.3, p = 0.033, respectively), while rs112587690 P1P3 frequency resulted significantly higher in the control group (OR = 0.5, p = 0.017). These results suggest that rs12628 C homozygosis may be considered a potential risk factor for melanoma development in the North American population possibly through the linkage to rs112587690. KW - HRAS KW - polymorphism KW - melanoma KW - rs12628 KW - rs112587690 Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-126834 VL - 29 IS - 5 ER - TY - THES A1 - Reinboth, Jennifer T1 - Cellular Factors Contributing to Host Cell Permissiveness in Support of Oncolytic Vaccinia Virus Replication T1 - Beteiligung zellulärer Faktoren an der Permissivität von Wirtszellen in Unterstützung der onkolytischen Vaccinia Virus Replikation N2 - 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. N2 - Die Replikationseffizienz von VACVs spielt eine maßgebliche Rolle für deren antitumorale Wirkung und onkolytische Effizienz. Ferner hängt die Permissivität einer Wirtszelle gegenüber der Behandlung mit onkolytischen VACVs maßgeblich von einer erfolgreichen viralen Replikation und Vermehrung ab. Darauf basierend, war der Fokus der vorliegenden Arbeit, zelluläre Eigenschaften zu erforschen, welche die VACV-Replikation beeinflussen und die Wirtszell-Permissivität gegenüber einer Behandlung mit VACV prognostizieren können. Für initiale Genexpressionsanalysen wurden zwei autologe, humane Melanom-Zelllinien (888-MEL und 1936 MEL), sowie der ausgiebig charakterisierte VACV-Stamm GLV-1h68 und drei wildtypische LIVP Isolate verwendet. Mit Hilfe von Microarray Analysen und einem sequenziellen statistischen Ansatz konnten humane Gene charakterisiert werden, deren Transkription eigens durch VACV-Infektion beeinflusst wird. Erwartungsgemäß zeigten diese Gene eine Anreicherung in globalen zellulären Signalwegen und Funktionen. Die frühe virale Gentranskription kann als repräsentative Bestimmungsgröße für virale Replikation betrachtet werden. Darauf basierend resultierte der Vergleich von früher VACV Replikation und entsprechender früher Gentranskription in der Identifikation von sieben viralen Genen, deren Expression und Replikation stark korrelierten. Aus diesem Grund wurde die frühe Expression der sieben VACV-Gene als kennzeichnend für virale Replikation angesehen und diese Gene als virale Replikations-Indikatoren (VRIs) definiert. Zur Aufklärung von Zusammenhängen zwischen Wirts-Transkription und viraler Replikation wurde die frühe virale VRI-Expression mit der frühen humanen Genexpression in Beziehung gesetzt. Mit Hilfe von Vergleichsanalysen wurden 114 humane Transkripte identifiziert, deren frühes Expressionsmuster eng mit demjenigen der VRIs korrelierte und dementsprechend ebenso mit der viralen Replikation. Von den 114 Korrelaten spielen mindestens sechs eine Rolle in der Protein-Ubiquitinierung oder in der proteasomalen Signalgebung. Ein weiteres Molekül, welches besonderes Interesse weckte, war die Serin-Threonin Proteinkinase WNK Lysin-defizientes Protein 1 (WNK1). Für WNK1 wurden Unterschiede, die mit der VACV-Infektions-Permissivität zusammenhängen, auf verschiedenen molekularbiologischen Ebenen nachgewiesen. Desweiten wurde in dieser Arbeit eine Anzahl humaner Gene identifiziert, welche virale Replikation in einem unabhängigen Datensatz prognostizieren konnten. Eine weitere Zielsetzung dieser Arbeit war es, molekularbiologische Unterschiede, welche mit Infektions-Permissivität von Zellen assoziiert sind, auf Basisebene zu ergründen. Diese könnten dabei helfen, zelluläre Komponenten zu identifizieren, welche einen so genannten permissiven Phänotyp kennzeichnen. Aus diesem Grund wurden in einem weiteren Versuchsansatz 15 Melanom-Zelllinien (15-MEL) bezüglich ihrer Permissivität gegenüber GLV-1h68 anhand von GFP Expression untersucht. Die vier Zelllinien mit der höchsten und diejenigen vier mit der niedrigsten Permissivität wurden je einer Gruppe zugeordnet (hochpermissive und niedrigpermissive Gruppe). Die Gruppen hoher und niedriger Permissivität wurden bezüglich ihrer Basislevel-Transkription verglichen. Unterschiedlich exprimierte Gene waren, zumindest zum Teil, in globale zelluläre Prozesse involviert. Darüber hinaus wurde microRNA (miRNA) Basislevel-Expression von hoch- und niedrigpermissiver Gruppe untersucht. In dieser Arbeit wurden sechs miRNAs identifiziert, deren Basislevel-Expression zwischen niedrig und hochpermissiver Gruppe differiert. Abschließend wurden Veränderungen der Kopienzahl von Genen (copy number variations, CNVs) im Vergleich zwischen niedrig- und hochpermissiver Gruppe untersucht. Betrachtung chromosomaler Veränderungen zeigte eine Anreicherung von Segment-Amplifikationen in der niedrigpermissiven Gruppe, während gleiche Abschnitte der hochpermissiven Gruppe größtenteils keine Veränderungen aufwiesen. Zusammenfassend konnte in dieser Arbeit eine mutmaßliche Korrelation zwischen viraler Replikation, früher Genexpression und der entsprechenden Wirtsantwort gezeigt werden und somit eine mögliche Beteiligung humaner Wirtsfaktoren an der viralen Replikation. Zusätzlich wurden wichtige Aspekte der Basiskomposition von Zellen für die Permissivität gegenüber VACV-Infektion auf verschiedenen molekularbiologischen Ebenen aufgedeckt, einschließlich mRNA-Expression, miRNA-Expression sowie Kopienzahl-Variationen. Die Charakterisierung humaner Zielgene, welche die virale Replikation beeinflussen, könnte dabei helfen, die Wirtszellantwort auf onkolytische Virotherapie aufzuklären und wichtige Informationen zu liefern für die Entwicklung neuartiger rekombinanter Vaccinia-Viren mit verbesserten Eigenschaften und verbesserter Replikationseffizienz und somit einem gesteigerten Therapieerfolg. KW - Vaccinia-Virus KW - Microarray KW - Melanom KW - onkolytische Virotherapie KW - Vaccinia Virus Replikation KW - vaccinia virus KW - microarray KW - malignant melanoma KW - oncolytic virotherapy KW - vaccinia virus replication KW - Onkolyse Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-85392 ER -