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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.
Das Prostatakarzinom (PCa) ist weltweit das häufigste Malignom des Mannes mit weiter steigenden Inzidenz. Leider ist es bisher mit den gebräuchlichen Prognosefaktoren nicht möglich, diesen klinisch sehr heterogenen Tumor vor einer chirurgischen Therapie hinsichtlich des postoperativen Rezidivrisikos zu charakterisieren. Die Einführung neuer, hochsensitiver Biomarker, die diese Aufgabe zuverlässig erfüllen können, stellt vor allem für die Entwicklung individualisierter Therapieregimes von Patienten mit einem high-risk-PCa eine aktuelle Herausforderung dar. MicroRNAs rückten in den letzten Jahren als potentielle Biomarker zunehmend in den wissenschaftlichen Fokus. Sie stellen kleine RNA-Moleküle dar, welche posttranskriptionell die Genexpression in Organismen steuern und auch in der Regulation von Tumorsuppressoren und Onkogenen eine Rolle spielen. Differentielle Expressionslevels verschiedener RNAs wurden in sehr vielen Tumorentitäten, wie auch dem PCa beobachtet. Vorarbeiten aus unserem Labor zeigten, dass zwei microRNAs, miR-205 und miR-221, im PCa sehr stark unterexprimiert werden. Im Falle von mir-221 konnte zudem bereits eine Korrelation mit dem klinischen Verlauf und der Prognose des high-risk-PCa dargestellt werden. Aufbauend auf diesen Vorarbeiten sollte in einem Teilprojekt der vorliegenden Arbeit die tumorsuppressive Funktion von miR-221 im PCa untersucht werden. Mittels transienter Überexpression von miR-221 in PCa-Zelllinien konnte die Bedeutung von miR-221 als Regulator der Proliferation in PCa-Zellen beschrieben werden. Um die molekulare Wirkweise von miR-221 weiter darzustellen, wurde die posttranskriptionelle Inhibierung von p27kip1 und c-kit, zwei bekannten miR-221-Zielgenen, untersucht. In sogenannten Luciferase-Assays konnte eine direkte Interaktion von miR-221 mit definierten Sequenzen im 3‘-untranslatierten Bereich (=3‘UTR) beider Gene nachgewiesen werden. Erwartungsgemäß wurde aber in primären PCa-Tumoren, die anders wie viele andere Tumorentitäten eine reduzierte miR-221-Expression aufwiesen, keine Überexpression des potentiellen Tumorsuppressors p27kip1 beobachtet. Somit ist nachgewiesen, dass miR-221 zwar prinzipiell den Tumorsuppressor p27kip1 regulieren kann, dass allerdings dieser Mechanismus in primären PCa für die Regulation des Tumorsuppressors p27kip1 keine übergeordnete Rolle spielt. Anders verhält es sich bei dem potentiellen Onkogen c-kit. Die von mir druchgeführten Untersuchungen können erstmals eine direkte Interaktion von c-kit und miR-221 in PCa-Zellen nachweisen. Somit kann die beschriebene Proliferations-inhibierung und Apoptoseinduktion nach ektopischer miR-221-Überexpression im Zellmodell mit einer miR-221-vermittelten c-kit-Inhibierung in Zusammenhang gebracht werden. Dieses Ergebnis wird durch den Nachweise einer inversen Assoziation der mir-221- und ckit-Expression in primären PCa-Fällen untermauert (nicht gezeigte Ergebnisse). Betrachtet man diese Ergebnisse in Zusammenhang mit der bekannten tumor-progressiven Funktionen von c-kit, könnte durch die fehlende/reduzierte miR-221-Inhibierung der c-kit-Translation die Entstehung und Progression vieler PCas erklärt werden. In einem zweiten Projektansatz wurde die Bedeutung und Funktion von miR-205 als möglicher Tumorsuppressor im PCa untersucht. Dabei kann gezeigt werden, dass mir-205 ebenfalls in der Lage ist, nach transienter Überexpression die Proliferation von PCa-Zellen zu inhibieren. Um molekulare Mechanismen und Wirkweisen von mir-205 zu untersuchen, wurden im Zellmodell die Expression der Onkogene HER2/neu und HER3, beides vorausgesagte miR-205-Zielgene, analysiert. Es konnte gezeigt werden, dass in PCa-Zellen die Unterexpression von HER3 und HER/neu mit der ektopischen Überexpression von miR-205 assoziiert ist. Die HER2/neu-Expression konnte zusätzlich auch im primären Tumor mit der miR-205-Expression invers assoziiert werden, wodurch die Regulation dieses Zielgens auf nativer Ebene verifiziert wurde. Ein weiterer Fokus dieser Arbeit konzentrierte sich auf die Fragestellung, ob sich miR-205 als Prognosemarker im high-risk-PCa eignen könnte. Hierzu wurden in einem etablierten high-risk-PCa-Studienkollektiv die Expression von mir-205 analysiert und anschließend Korrelations- und Überlebensanalysen durchgeführt. Es konnte statistisch keine Assoziation zwischen der miR-205-Expression und verschiedenen Prognoseparametern, die in der Klinik präoperativ prognostische Vorraussagekraft besitzen, hergestellt werden. Allerdings fiel auf, dass Karzinome, die miR-205 relativ schwach herabregulierten, ein signifikant schlechteres prognostisches Outcome und Überlebensnachteile zeigten, im Vergleich zu Tumoren, die eine starke miR-205-Regulation aufweisen. Somit konnten im Hochrisikokollektiv mit Hilfe der miR-205-Expressionsanalyse Karzinome identifiziert werden, die ein erhöhtes Rezidivrisiko aufweisen. Die hier vorgelegten Untersuchungen stellen also erste Hinweise dar, dass miR-205 als unabhängiger prognostischer Marker im PCa Verwendung finden könnte. Zusammenfassend kann in der vorgelegten Arbeit gezeigt werden, dass die microRNAs miR-205 und miR-221 zwei tumorsuppressive RNAs im PCa darstellen. Eine mögliche zukünftige Implementation der Expressionsanalysen von miR-221 und/oder miR-205 als Progressionsmarker stellt eine vielversprechende Möglichkeit dar, in Zukunft die Prognose und vielleicht auch die Therapie des PCa zu verbessern.
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.
The field of microRNA research has gained enormous significance during recent years. Current studies have shown that microRNAs play an important role in many biological processes via posttranscriptional gene regulation. This also applies for the TLR-mediated recognition of pathogens by immune cells. Among others, the microRNAs miR-132, miR-146a and miR-155 have been characterized by various authors. However, the specific role of microRNAs in the defense against fungal infections by Aspergillus fumigatus has not been investigated so far, although this ubiquitous mold causes severe infections in immuno-compromised patients. As dendritic cells play a pivotal part in the in vivo recognition of A. fumigatus, the present study investigates the reaction of these cells to A. fumigatus and other pathogens on the microRNA level. For this purpose, dendritic cells were incubated with different forms of A. fumigatus and other pathogens for up to twelve hours. Subsequently, the expression of miR-132, miR-146a and miR-155 was quantified by real-time PCR.
Levels of miR-132 in dendritic cells were significantly increased after stimulation with living germ tubes of A. fum, but showed no change after treatment with LPS. Relative expression level of miR-146a was moderately elevated upon stimulation with LPS, but did not respond to co-cultivation with living germ tubes. MiR-155 was highly induced by both stimuli. These results show, that dependent on the stimulus, microRNAs are differentially regulated in dendritic cells. Among the tested microRNAs, miR-155 showed the strongest and most stable expression values. Therefore, further experiments focused on this mircoRNA. It was shown, that the up-regulation of miR-155 is dependent on the germination stage of the fungus. Induction of miR-155 was low with conidia, moderate with hyphae and high with germ tubes. The extent of miR-155 induction also corresponded with the multiplicity of infection (MOI), with higher MOIs triggering a stronger miR-155 response.
These results suggest that miR-132 and miR-155 play an important role in the immunologic reaction of DCs against A. fumigatus and that a further characterization of these microRNA, especially with respect to their specific function in DCs, could contribute to the understanding of the biological mechanisms of Aspergillosis.
The gene encoding the LIM and SH3 domain protein (LASP1) was cloned two decades ago from a cDNA library of breast cancer metastases. As the first protein of a class comprising one N-terminal LIM and one C-terminal SH3 domain, LASP1 founded a new LIM-protein subfamily of the nebulin group. Since its discovery LASP1 proved to be an extremely versatile protein because of its exceptional structure allowing interaction with various binding partners, its ubiquitous expression in normal tissues, albeit with distinct expression patterns, and its ability to transmit signals from the cytoplasm into the nucleus. As a result, LASP1 plays key roles in cell structure, physiological processes, and cell signaling. Furthermore, LASP1 overexpression contributes to cancer aggressiveness hinting to a potential value of LASP1 as a cancer biomarker. In this review we summarize published data on structure, regulation, function, and expression pattern of LASP1, with a focus on its role in human cancer and as a biomarker protein. In addition, we provide a comprehensive transcriptome analysis of published microarrays (n=2,780) that illustrates the expression profile of LASP1 in normal tissues and its overexpression in a broad range of human cancer entities.
Age‐dependent transcriptional and epigenomic responses to light exposure in the honey bee brain
(2016)
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.
Neuropathic pain, caused by neuronal damage, is a severely impairing mostly chronic condition. Its underlying molecular mechanisms have not yet been thoroughly understood in their variety. In this doctoral thesis, I investigated the role of microRNAs (miRNAs) in a murine model of peripheral neuropathic pain. MiRNAs are small, non-coding RNAs known to play a crucial role in post-transcriptional gene regulation, mainly in cell proliferation and differentiation. Initially, expression patterns in affected dorsal root ganglia (DRG) at different time points after setting a peripheral nerve lesion were studied. DRG showed an increasingly differential expression pattern over the course of one week. Interestingly, a similar effect, albeit to a smaller extent, was observed in corresponding contralateral ganglia. Five miRNA (miR-124, miR-137, miR-183, miR-27b, and miR-505) were further analysed. qPCR, in situ hybridization, and bioinformatical analysis point towards a role for miR-137 and -183 in neuropathic pain as both were downregulated. Furthermore, miR-137 is shown to be specific for non-peptidergic non-myelinated nociceptors (C fibres) in DRG. As the ganglia consist of highly heterocellular tissue, I also developed a neuron-specific approach. Primarily damaged neurons were separated from intact adjacent neurons using fluorescence-activated cell-sorting and their gene expression pattern was analysed using a microarray. Thereby, not only were information obtained about mRNA expression in both groups but, by bioinformatical tools, also inferences on miRNA involvement. The general expression pattern was consistent with previous findings. Still, several genes were found differentially expressed that had not been described in this context before. Among these are corticoliberin or cation-regulating proteins like Otopetrin1. Bioinformatical data conformed, in part, to results from whole DRG, e.g. they implied a down-regulation of miR-124, -137, and -183. However, these results were not significant.
In summary, I found that a) miRNA expression in DRG is influenced by nerve lesions typical of neuropathic pain and that b) these changes develop simultaneously to over-expression of galanin, a marker for neuronal damage. Furthermore, several miRNAs (miR-183, -137) exhibit distinct expression patterns in whole-DRG as well as in neuron-specific approaches. Therefore, further investigation of their possible role in initiation and maintenance of neuropathic pain seems promising.
Finally, the differential expression of genes like Corticoliberin or Otopetrin 1, previously not described in neuropathic pain, has already resulted in follow-up projects.
microRNAs in chronic pain
(2016)
Chronic pain is a common problem in clinical practice, not well understood clinically, and frequently tough to satisfactorily diagnose. Because the pathophysiology is so complex, finding effective treatments for people with chronic pain has been overall less than successful and typically reduced to an unsatisfactory trial-and-error process, all of which translates into a significant burden to society. Knowledge of the mechanisms underlying the development of chronic pain, and moreover why some patients experience pain and others not, may aid in developing specific treatment regimens. Although nerve injuries are major contributors to pain chronification, they cannot explain the entire phenomenon. Considerable research has underscored the importance of the immune system for the development and maintenance of chronic pain, albeit the exact factors regulating inflammatory reactions remain unclear. Understanding the putative molecular and cellular regulator switches of inflammatory reactions will open novel opportunities for immune modulatory analgesics with putatively higher specificity and less adverse effects. It has become clear that small, non- coding RNA molecules known as microRNAs are in fact potent regulators of many thousands of genes and possibly cross-communicate between cellular pathways in multiple systems acting as so-called “master-switches”. Aberrant expression of miRNAs is now implicated in numerous disorders, including nerve injuries as well as in inflammatory processes. Moreover, compelling evidence supports the idea that miRNAs also regulate pain, and in analogy to the oncology field aid in the differential diagnosis of disease subtypes. In fact, first reports describing characteristic miRNA expression profiles in blood or cerebrospinal fluid of patients with distinct pain conditions are starting to emerge, however evidence linking specific miRNA expression profiles to specific pain disorders is still insufficient. The present thesis aimed at first, identifying specific miRNA signatures in two distinct chronic pain conditions, namely peripheral neuropathies of different etiologies and fibromyalgia syndrome. Second, it aimed at identifying miRNA profiles to better understand potential factors that differentiate painful from painless neuropathies and third, study the mechanistic role of miRNAs in the pathophysiology of pain, to pave the way for new druggable targets.
Three studies were conducted in order to identify miRNA expression signatures that are characteristic for the given chronic pain disorder. The first study measured expression of miR-21, miR-146a and miR-155 in white blood cells, skin and nerve biopsies of patients with peripheral neuropathies. It shows that peripheral neuropathies of different etiologies are associated with increased peripheral miR-21 and miR-146a, but decreased miR-155 expression. More importantly, it was shown that painful neuropathies have increased sural nerve miR-21 and miR-155 expression, but reduced miR-146a and miR-155 expression in distal skin of painful neuropathies. These results point towards the potential use of miRNAs profiles to stratify painful neuropathies. The seconds study extends these findings and first analyzed the role of miR-132-3p in patients and subsequently in an animal model of neuropathic pain. Interestingly, miR-132-3p was upregulated in white blood cells and sural nerve biopsies of patients with painful neuropathies and in animals after spared nerve injury. Pharmacologically modulating the expression of miR-132-3p dose-dependently reversed pain behavior and pain aversion, indicating the pro-nociceptive effect of miR-132-3p in chronic pain. This study thus demonstrates the potential analgesic impact by modulating miRNA expression. Fibromyalgia is associated with chronic widespread pain and, at least in a subgroup, impairment in small nerve fiber morphology and function. Interestingly, the disease probably comprises subgroups with different underlying pathomechanisms. In accordance with this notion, the third study shows that fibromyalgia is associated with both aberrant white blood cell and cutaneous miRNA expression. Being the first of its kind, this study identified miR-let-7d and its downstream target IGF-1R as potential culprit for impaired small nerve fiber homeostasis in a subset of patients with decreased intra-epidermal nerve fiber density. The work presented in this thesis is a substantial contribution towards the goal of better characterizing chronic pain based on miRNA expression signatures and thus pave the way for new druggable targets.
In invertebrates, small interfering RNAs are at the vanguard of cell-autonomous antiviral immunity. In contrast, antiviral mechanisms initiated by interferon (IFN) signaling predominate in mammals. Whilst mammalian IFN-induced miRNA are known to inhibit specific viruses, it is not known whether host-directed microRNAs, downstream of IFN-signaling, have a role in mediating broad antiviral resistance. By performing an integrative, systematic, global analysis of RNA turnover utilizing 4-thiouridine labeling of newly transcribed RNA and pri/pre-miRNA in IFN-activated macrophages, we identify a new post-transcriptional viral defense mechanism mediated by miR-342-5p. On the basis of ChIP and site-directed promoter mutagenesis experiments, we find the synthesis of miR-342-5p is coupled to the antiviral IFN response via the IFN-induced transcription factor, IRF1. Strikingly, we find miR-342-5p targets mevalonate-sterol biosynthesis using a multihit mechanism suppressing the pathway at different functional levels: transcriptionally via SREBF2, post-transcriptionally via miR-33, and enzymatically via IDI1 and SC4MOL. Mass spectrometry-based lipidomics and enzymatic assays demonstrate the targeting mechanisms reduce intermediate sterol pathway metabolites and total cholesterol in macrophages. These results reveal a previously unrecognized mechanism by which IFN regulates the sterol pathway. The sterol pathway is known to be an integral part of the macrophage IFN antiviral response, and we show that miR-342-5p exerts broad antiviral effects against multiple, unrelated pathogenic viruses such Cytomegalovirus and Influenza A (H1N1). Metabolic rescue experiments confirm the specificity of these effects and demonstrate that unrelated viruses have differential mevalonate and sterol pathway requirements for their replication. This study, therefore, advances the general concept of broad antiviral defense through multihit targeting of a single host pathway.
Plattenepithelkarzinome des Kopf-Hals-Bereichs bilden die weltweit sechst-häufigste Gruppe maligner Erkrankungen. Trotz moderner interdisziplinärer und multimodaler Therapie sind die durchschnittlichen 5-Jahres-Überlebensraten mit ca. 50-60 Prozent seit vielen Jahren unverändert niedrig. Es besteht ein großer Bedarf an verlässlichen Biomarkern zur Abschätzung des individuellen Risikos von aggressiven Krankheitsverläufen sowie zur Prognosebestimmung und Therapie-Überwachung. miRNAs sind kleine nicht protein-codierende RNA-Moleküle, deren Funktion in der posttransskriptionalen Genregulation besteht. Diese RNAs können möglicherweise als Biomarker verwendet werden. In dieser Studie sollte daher die Extraktion von 30 microRNAs an 43 Proben formalin-fixierter, in Paraffin eingebetteter (FFPE) Proben von Mundhöhlenkarzinomen vorgenommen werden. Hierzu erfolgte eine Trennung von Tumor und gesundem Gewebe. Außerdem erfolgte eine Korrelationsanalyse der Expressionsdaten mit relevanten klinischen und pathologischen Daten wie Alter, Geschlecht, Tumor-Stadium und Größe. Das Extraktionsverfahren war erfolgreich und es konnten diverse unterschiedlichen Expressionsmuster zwischen Tumor und Vergleichsgewebe festgestellt werden. Außerdem zeigten sich signifikante Korrelationen zwischen den Expressionsdaten und den klinischen Parametern.