TY - THES A1 - Cook, Vanessa Janine T1 - Protection of healthy tissues from infection with systemically administered vaccinia virus strains T1 - Schutz gesunder Gewebe vor Infektion systemisch verabreichter Vaccinia-Virus Stämme N2 - 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. N2 - Die onkolytische Virotherapie mit rekombinanten Vaccinia Virusstämmen stellt einen vielversprechenden Ansatz zur Behandlung von Krebs dar. Um die Sicherheit von onkolytischen Vaccinia Viren zu erhöhen wird die zelluläre MikroRNA Maschinerie als körpereigener Abwehrmechanismus genutzt um ungewollte virale Replikation in gesundem Gewebe zu verhindern MikroRNAs sind kurze, einzelsträngige RNA-Moleküle die aufgrund Ihrer Fähigkeit des Posttranscriptional Gene Silencing (RNA Interferenz) eine entscheidende Rolle in fast jedem regulativen Prozess im Zellmetabolismus spielen. Diverse Arten von Krebs zeigen spezifische MicroRNA-Expressionsmuster, welche sich als signifikante „Up“-oder „Down“-Regulation der Expression dieser microRNA(s) darstellt. Weiterhin kann das Verhalten von Krebszellen verändert werden, entweder durch Wiedereinbringen von in bestimmten Krebsarten „down“-regulierten MikroRNAs oder durch Unterdrückung der Expression von MikroRNAs, die als krebsfördernd gelten (Oncomirs). Die RNA-Interferenz Maschinerie der Zelle kann des Weiteren auch als Replikationskontrolle z.B. von Viren genutzt werden, da Viren für Ihre eigene Vermehrung auf die Replikationsmaschinerie der Zelle angewiesen sind, ein Prozess welcher von MikroRNAs kontrolliert wird. GLV-1h68 ist ein replikationskompetentes Vaccinia Virus, konstruiert und hergestellt von Genelux Corp., San Diego, CA, USA, welches drei verschiedene Reportergene enthält, welche zu Erkennungs- und Attenuierungszwecken genutzt werden. Obwohl eine Behandlung mit GLV-1h68 kaum Nebenwirkungen zeigt, wäre eine Replikation des Virus ausschliesslich in Krebszellen wünschenswert. Aufgrund dessen wurde versucht ein rekombinantes Vaccinia Virus zu generieren welches, unter Zuhilfenahme der RNA Interferenzmaschinerie der Zelle, ohne Einbusse seiner onkolytischen Fähigkeit ausschliesslich in Krebszellen repliziert. Let-7a ist eine gut charakterisierte MikroRNA die eine hohe Expression in gesunden Geweben und eine starke „Down“-Regulation in Krebszellen zeigt. Um die Replikation von Vaccinia zu kontrollieren wurden 4 Komplementärsequenzwiederholungen der humanen microRNAlet- 7a der 3‘-UTR des Vaccinia Virus D4R-Gens folgend kloniert, wobei GLV-1h190, ein GLV-1h68 Derivat, als parentaler Virusstamm verwendet wurde. D4R gehört zu der Gruppe der frühen Gene von Vaccinia und kodiert ein essentielles Enzym, Uracil- DNA-Glykosylase, welches das Entfernen von Uracilresten aus doppelsträngiger DNA katalysiert. Ein Defekt im D4R Gen verhindert den Eintritt von Vaccinia Viren in die intermediäre und späte Phase der Replikation, was zu einem Abbruch der viralen Replication führt. Nach der Expression der MikroRNA-komplementären Sequenzen durch das Virusgenom sollte die zellulär exprimierte let-7a MikroRNA Ihre Zielstruktur auf der viralen mRNA erkennen und diese degradieren. Dies sollte eine starke Hemmung der viralen Replikation in gesunden Zellen zur Folge haben.GLV-1h250 zeigte keine Beeinträchtigung in der Replikationsrate nach Infektion von A549 Lungenkarzinomzellen, welche eine starke „Down“-Regulation von MikroRNA let-7a aufweisen, im Vergleich zu dem parentalen Virus GLV-1h190 und dem Kontrollvirus GLV-1h68. Im Kontrast dazu zeigte GLV-1h250 eine 10-fache Verringerung in der Replikationsrate nach Infektion der Nicht-Krebszellline ERC im Vergleich zu Virus GLV-1h190 und GLV-1h68. In A549 Lungenkarzinom-tragende Nacktmäusen replizierte GLV-1h250 ausschliesslich im Tumorgewebe und zeigte effiziente Tumorregression ohne Nebenwirkungen im Vergleich zu den Virus Stämmen GLV-1h190 und GLV-1h68. Dies führt zur Vermutung, dass GLV-1h250 bevorzugt in Tumorzellen und –Geweben repliziert, welche geringe let-7a Konzentrationen aufweisen. KW - Vaccinia-Virus KW - Krebs KW - Therapie KW - vaccinia virus KW - microRNA KW - oncolytic virotherapy Y1 - 2012 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-69654 ER - TY - JOUR A1 - Kneitz, Burkhard A1 - Kalogirou, Charis A1 - Spahn, Martin A1 - Krebs, Markus A1 - Joniau, Steven A1 - Lerut, Evelyne A1 - Burger, Maximilian A1 - Scholz, Claus-Jürgen A1 - Kneitz, Susanne A1 - Riedmiller, Hubertus T1 - MiR-205 Is Progressively Down-Regulated in Lymph Node Metastasis but Fails as a Prognostic Biomarker in High-Risk Prostate Cancer JF - International Journal of Molecular Sciences N2 - The treatment of high-risk prostate cancer (HRPCa) is a tremendous challenge for uro-oncologists. The identification of predictive moleculobiological markers allowing risk assessment of lymph node metastasis and systemic progression is essential in establishing effective treatment. In the current study, we investigate the prognostic potential of miR-205 in HRPCa study and validation cohorts, setting defined clinical endpoints for both. We demonstrate miR-205 to be significantly down-regulated in over 70% of the HRPCa samples analysed and that reconstitution of miR-205 causes inhibition of proliferation and invasiveness in prostate cancer (PCa) cell lines. Additionally, miR-205 is increasingly down-regulated in lymph node metastases compared to the primary tumour indicating that miR-205 plays a role in migration of PCa cells from the original location into extraprostatic tissue. Nevertheless, down-regulation of miR-205 in primary PCa was not correlated to the synchronous presence of metastasis and failed to predict the outcome for HRPCa patients. Moreover, we found a tendency for miR-205 up-regulation to correlate with an adverse outcome of PCa patients suggesting a pivotal role of miR-205 in tumourigenesis. Overall, we showed that miR-205 is involved in the development and metastasis of PCa, but failed to work as a useful clinical biomarker in HRPCa. These findings might have implications for the use of miR-205 as a prognostic or therapeutic target in HRPCa. KW - high-risk prostate cancer KW - microRNA KW - miR-205 KW - prognosis KW - biomarker Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-97321 ER - TY - JOUR A1 - Becker, Nils A1 - Kucharski, Robert A1 - Rössler, Wolfgang A1 - Maleszka, Ryszard T1 - Age‐dependent transcriptional and epigenomic responses to light exposure in the honey bee brain JF - FEBS Open Bio N2 - Light is a powerful environmental stimulus of special importance in social honey bees that undergo a behavioral transition from in-hive to outdoor foraging duties. Our previous work has shown that light exposure induces structural neuronal plasticity in the mushroom bodies (MBs), a brain center implicated in processing inputs from sensory modalities. Here, we extended these analyses to the molecular level to unravel light-induced transcriptomic and epigenomic changes in the honey bee brain. We have compared gene expression in brain compartments of 1- and 7-day-old light-exposed honey bees with age-matched dark-kept individuals. We have found a number of differentially expressed genes (DEGs), both novel and conserved, including several genes with reported roles in neuronal plasticity. Most of the DEGs show age-related changes in the amplitude of light-induced expression and are likely to be both developmentally and environmentally regulated. Some of the DEGs are either known to be methylated or are implicated in epigenetic processes suggesting that responses to light exposure are at least partly regulated at the epigenome level. Consistent with this idea light alters the DNA methylation pattern of bgm, one of the DEGs affected by light exposure, and the expression of microRNA miR-932. This confirms the usefulness of our approach to identify candidate genes for neuronal plasticity and provides evidence for the role of epigenetic processes in driving the molecular responses to visual stimulation. KW - DNA methylation KW - insect brain KW - light-induced gene expression KW - microRNA KW - neuronal plasticity Y1 - 2016 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-147080 VL - 6 IS - 7 ER - TY - JOUR A1 - Anelli, Viviana A1 - Ordas, Anita A1 - Kneitz, Susanne A1 - Sagredo, Leonel Munoz A1 - Gourain, Victor A1 - Schartl, Manfred A1 - Meijer, Annemarie H. A1 - Mione, Marina T1 - Ras-Induced miR-146a and 193a Target Jmjd6 to Regulate Melanoma Progression JF - Frontiers in Genetics N2 - Ras genes are among the most commonly mutated genes in human cancer; yet our understanding of their oncogenic activity at the molecular mechanistic level is incomplete. To identify downstream events that mediate ras-induced cellular transformation in vivo, we analyzed global microRNA expression in three different models of Ras-induction and tumor formation in zebrafish. Six microRNAs were found increased in Ras-induced melanoma, glioma and in an inducible model of ubiquitous Ras expression. The upregulation of the microRNAs depended on the activation of the ERK and AKT pathways and to a lesser extent, on mTOR signaling. Two Ras-induced microRNAs (miR-146a and 193a) target Jmjd6, inducing downregulation of its mRNA and protein levels at the onset of Ras expression during melanoma development. However, at later stages of melanoma progression, jmjd6 levels were found elevated. The dynamic of Jmjd6 levels during progression of melanoma in the zebrafish model suggests that upregulation of the microRNAs targeting Jmjd6 may be part of an anti-cancer response. Indeed, triple transgenic fish engineered to express a microRNA-resistant Jmjd6 from the onset of melanoma have increased tumor burden, higher infiltration of leukocytes and shorter melanoma-free survival. Increased JMJD6 expression is found in several human cancers, including melanoma, suggesting that the up-regulation of Jmjd6 is a critical event in tumor progression. The following link has been created to allow review of record GSE37015: http://www.ncbi.nlm.nih.gov/geo/query/acc.cgi?token=jjcrbiuicyyqgpc&acc=GSE37015. KW - zebrafish KW - cancer models KW - microRNA KW - Jmjd6 KW - ras KW - melanoma KW - miR-146a KW - miR-193a Y1 - 2018 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-196963 SN - 1664-8021 VL - 9 IS - 675 ER - TY - JOUR A1 - Fofanov, Mikhail V. A1 - Prokopov, Dmitry Yu. A1 - Kuhl, Heiner A1 - Schartl, Manfred A1 - Trifonov, Vladimir A. T1 - Evolution of microRNA biogenesis genes in the sterlet (Acipenser ruthenus) and other polyploid vertebrates JF - International Journal of Molecular Sciences N2 - MicroRNAs play a crucial role in eukaryotic gene regulation. For a long time, only little was known about microRNA-based gene regulatory mechanisms in polyploid animal genomes due to difficulties of polyploid genome assembly. However, in recent years, several polyploid genomes of fish, amphibian, and even invertebrate species have been sequenced and assembled. Here we investigated several key microRNA-associated genes in the recently sequenced sterlet (Acipenser ruthenus) genome, whose lineage has undergone a whole genome duplication around 180 MYA. We show that two paralogs of drosha, dgcr8, xpo1, and xpo5 as well as most ago genes have been retained after the acipenserid-specific whole genome duplication, while ago1 and ago3 genes have lost one paralog. While most diploid vertebrates possess only a single copy of dicer1, we strikingly found four paralogs of this gene in the sterlet genome, derived from a tandem segmental duplication that occurred prior to the last whole genome duplication. ago1,3,4 and exportins1,5 look to be prone to additional segment duplications producing up to four-five paralog copies in ray-finned fishes. We demonstrate for the first time exon microsatellite amplification in the acipenserid drosha2 gene, resulting in a highly variable protein product, which may indicate sub- or neofunctionalization. Paralogous copies of most microRNA metabolism genes exhibit different expression profiles in various tissues and remain functional despite the rediploidization process. Subfunctionalization of microRNA processing gene paralogs may be beneficial for different pathways of microRNA metabolism. Genetic variability of microRNA processing genes may represent a substrate for natural selection, and, by increasing genetic plasticity, could facilitate adaptations to changing environments. KW - sturgeon KW - whole genome duplication KW - microRNA KW - gene duplications Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-285230 SN - 1422-0067 VL - 21 IS - 24 ER -