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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.
For the differentiation of a embryonic stem cells (ESCs) to neuronal cells (NCs) a complex and coordinated gene regulation program is needed. One important control element for neuronal differentiation is the repressor element 1 silencing transcription factor (REST) complex, which represses neuronal gene expression in non-neuronal cells. Crucial effector proteins of the REST complex are small phosphatases such as the CTDSPs (C-terminal domain small phosphatases) that regulate polymerase II activity by dephosphorylating the C-terminal domain of the polymerase, thereby repressing target genes. The stepwise inactivation of REST, including the CTDSPs, leads to the induction of a neuron-specific gene program, which ultimately induces the formation of neurons. The spatio-temporal control of REST and its effector components is therefore a crucial step for neurogenesis.
In zebrafish it was shown that the REST-associated CTDSP2 is negatively regulated by the micro RNA (miR) -26b. Interestingly, the miR-26b is encoded in an intron of the primary transcript of CTDSP2. This gives the fundament of an intrinsic regulatory negative feedback loop, which is essential for the proceeding of neurogenesis. This feedback loop is active during neurogenesis, but inactive in non-neuronal cells. The reason for this is that the maturation of the precursor miR (pre-miR) to the mature miR-26 is arrested in non neuronal cells, but not in neurons. As only mature miRs are actively repressing genes, the regulation of miR-26 processing is an essential step in neurogenesis.
In this study, the molecular basis of miR-26 processing regulation in the context of neurogenesis was addressed. The mature miR is processed from two larger precursors: First the primary transcript is cleaved by the enzyme DROSHA in the nucleus to form the pre-miR. The pre-miR is exported from the nucleus and processed further through the enzyme DICER to yield the mature miR. The mature miR can regulate gene expression in association with the RNA-induced silencing complex (RISC).
Multiple different scenarios in which miR processing was regulated were proposed and experimentally tested. Microinjection studies using Xenopus leavis oocytes showed that slowdown or blockage of the nucleo-cytoplasmic transport are not the reason for delayed pre-miR-26 processing. Moreover, in vitro and in vivo miR-processing assays showed that maturation is most likely regulated through a in trans acting factor, which blocks processing in non neuronal cells.
Through RNA affinity chromatographic assays using zebrafish and murine lysates I was able to isolate and identify proteins that interact specifically with pre-miR-26 and could by this influence its biogenesis. Potential candidates are FMRP/FXR1/2, ZNF346 and Eral1, whose functional characterisation in the context of miR-biogenesis could now be addressed.
The second part of my thesis was executed in close colaboration with the laboratory of Prof. Albrecht Müller. The principal question was addressed how miR-26 influences neuronal gene expression and which genes are primarily affected. This research question could be addressed by using a cell culture model system, which mimics ex vivo the differentiation of ESCs to NCs via neuronal progenitor.
For the functional analysis of miR-26 knock out cell lines were generated by the CRISPR/Cas9 technology. miR-26 deficient ESC keep their pluripotent state and are able to develop NPC, but show major impairment in differentiating to NCs. Through RNA deep sequencing the miR-26 induced transcriptome differences could be analysed.
On the level of mRNAs it could be shown, that the expression of neuronal gene is downregulated in miR-26 deficient NCs. Interestingly, the deletion of miR-26 leads to selectively decreased levels of miRs, which on one hand regulate the REST complex and on the other hand are under transcriptional control by REST themself. This data and the discovery that induction of miR-26 leads to enrichment of other REST regulating miRs indicates that miR-26 initiates neurogenesis through stepwise inactivation of the REST complex.
The obligate intracellular pathogen Chlamydia trachomatis is the causative agent of
trachoma related blindness and the sexually transmitted pelvic inflammatory disease.
Being an obligate intracellular pathogen, C. trachomatis has an intricate dependency
on the survival of the host cell. This relationship is indispensible owing to the fact that
the pathogen spends a considerable fraction of its biphasic lifecycle within a
cytoplasmic vacuole inside the host cell, the so-called chlamydial inclusion. The
cellular apoptotic-signalling network is governed by several finely tuned regulatory
cascades composed of pro- and anti-apoptotic proteins that respond to changes in
the cellular homeostasis. In order to facilitate its intracellular survival, Chlamydia has
been known to inhibit the premature apoptosis of the host cell via the stabilization of
several host anti-apoptotic proteins such as cIAP2 and Mcl-1. While the pro- and
anti-apoptotic proteins are the major regulators of the host apoptotic signalling
network, a class of the small non-coding RNAs called microRNAs (miRNAs) has
increasingly gained focus as a new level of regulatory control over apoptosis.
This work investigates the changes in the host miRNA expression profile post
Chlamydia infection using a high throughput miRNA deep sequencing approach.
Several miRNAs previously associated with the modulation for apoptotic signalling
were differentially expressed upon Chlamydia infection in human endothelial cells. Of
the differentially regulated miRNAs, miR-30c-5p was of particular interest since it had
been previously shown to target the tumor suppressor protein p53. Our lab and
others have previously demonstrated that Chlamydia can downregulate the levels of
p53 by promoting its proteasomal degradation. This work demonstrates that
Chlamydia infection promotes p53 downregulation by increasing the abundance of
miR-30c-5p and a successful infection cycle is hindered by a loss of miR-30c-5p.
Over the last decade, dedicated research aimed towards a better understanding of
apoptotic stimuli has greatly improved our grasp on the subject. While extrinsic
stress, deprivation of survival signals and DNA damage are regarded as major
proponents of apoptotic induction, a significant responsibility lies with the
mitochondrial network of the cell. Mitochondrial function and dynamics are crucial to
cell fate determination and dysregulation of either is decisive for cell survival and
pathogenesis of several diseases. The ability of the mitochondrial network to perform
its essential tasks that include ATP synthesis, anti-oxidant defense, and calcium
homeostasis amongst numerous other processes critical to cellular equilibrium is tied
closely to the fission and fusion of individual mitochondrial fragments. It is, thus,
8
unsurprising that mitochondrial dynamics is closely linked to apoptosis. In fact, many
of the proteins involved regulation of mitochondrial dynamics are also involved in
apoptotic signalling. The mitochondrial fission regulator, Drp1 has previously been
shown to be transcriptionally regulated by p53 and is negatively affected by a miR-
30c mediated inhibition of p53. Our investigation reveals a significant alteration in the
mitochondrial dynamics of Chlamydia infected cells affected by the loss of Drp1. We
show that loss of Drp1 upon chlamydial infection is mediated by the miR-30c-5p
induced depletion of p53 and results in a hyper-fused architecture of the
mitochondrial network.
While it is widely accepted that Chlamydia depends on the host cell metabolism for
its intracellular growth and development, the role of mitochondria in an infected cell,
particularly with respect to its dynamic nature, has not been thoroughly investigated.
This work attempts to illustrate the dependence of Chlamydia on miR-30c-5p induced
changes in the mitochondrial architecture and highlight the importance of these
modulations for chlamydial growth and development.
MicroRNAs are endogenous ≈22 nt long non coding RNA molecules that modulate gene expression
at the post transcriptional level by targeting mRNAs for cleavage or translational repression.
MicroRNA-mRNA interaction involves a contiguous and perfect pairing within complementary
sites usually in the 3’ UTR of the target mRNA. Heart failure is associated with myocyte
hypertrophy and death, due to compensatory pathological remodeling and minimal functional repair
along with microRNA deregulation.
In this study, we identified candidate microRNAs based on their expression strength in
cardiomyocytes and by their ability to regulate hypertrophy. Expression profiling from early and
late stages of heart failure showed several deregulated microRNAs. Of these microRNAs, miR-378
emerged as a potentially interesting microRNA that was highly expressed in the mouse heart and
downregulated in the failing heart. Antihypertrophic activity of miR-378 was first observed by
screening a synthetic miR library for morphologic effects on cardiomyocytes, and validated in vitro proving the tight control of hypertrophy by this miR. We combined bioinformatic target prediction analysis and microarray analysis to identify the targets of miR-378. These analyses suggested that factors of the MAP kinase pathway were enriched among miR-378 targets, namely MAPK1 itself (also termed ERK2), the insulin-like growth factor receptor 1 (IGF1R), growth factor receptor bound protein 2 (GRB2) and kinase suppressor of ras 1 (KSR1). Regulation of these targets by miR-378 was then confirmed by mRNA and protein expression analysis. The use of luciferase reporter constructs with natural or mutated miR-378 binding sites further validated these four proteins as direct targets of miR-378. RNA interference with MAPK1 and the other three targets prevented the prohypertrophic effect of antimiR-378, suggesting that they functionally relate to miR-378. In vivo restoration of disease induced loss of miR-378 in a pressure overload mouse model of hypertrophy using adeno associated virus resulted in partial attenuation cardiac hypertrophy and significant improvement in cardiac function along with reduced expression of the four targets in heart.
We conclude from these findings that miR-378 is an antihypertrophic microRNA in cardiomyocytes, and the main mechanism underlying this effect is the suppression of the MAP kinase-signaling pathway on four distinct levels. Restoration of disease-associated loss of miR-378 through cardiomyocyte-targeted AAV-miR-378 may prove as an effective therapeutic strategy in myocardial disease.
mRNA is co- or post-transcriptionally processed from a precursor mRNA to a mature mRNA. In addition to 5'capping and splicing, these modifications also include polyadenylation, the addition of a polyA tail to the 3'end of the mRNA. In recent years, alternative polyadenylation in particular has increasingly been taken into account as a mechanism for regulating gene expression. It is assumed that approximately 70-75 % of human protein coding genes contain alternative polyadenylation signals, which are often located within intronic sequences of protein-coding genes. The use of such polyadenylation signals leads to shortened mRNA transcripts and thus to the generation of C-terminal shortened protein isoforms.
Interestingly, the majority of microRNAs, small non-coding RNAs that play an essential role in post-transcriptional gene regulation, are also encoded in intronic sequences of protein-coding genes and are co-transcriptionally expressed with their host genes. The biogenesis of microRNA has been well studied and is well known, but mechanisms that may influence the expression regulation of mature microRNAs are just poorly understood.
In the presented work, I aimed to investigate the influence of alternative intronic polyadenylation on the biogenesis of microRNAs. The human ion channel TRPM1 could already be associated with melanoma pathogenesis and truncated isoforms of this protein have already been described in literature. In addition, TRPM1 harbors a microRNA, miR211, in its sixth intron, which is assumed to act as a tumor suppressor. Since both, TRPM1 and miR211 have already been associated with melanoma pathogenesis, the shift towards truncated transcripts during the development of various cancers is already known and it has been shown that certain microRNAs play a crucial role in the development and progression of melanoma, melanoma cell lines were used as an in vitro model for these investigations.
SLC6A2-regulierende microRNAs bei Angsterkrankungen: Genexpressions- und Assoziationsuntersuchungen
(2021)
Angsterkrankungen sind häufige Krankheitsbilder mit bislang nicht vollständig geklärter multifaktorieller Ätiologie. Neben Umwelt- und psychosozialen Faktoren zeigen Studien eine signifikante familiäre Häufung und lassen eine genetische Komponente mit einer Heritabilität in einem Bereich von 30-60 % vermuten. Da hierbei am ehesten von einem komplexen Zusammenspiel verschiedenster Gene mit unterschiedlicher Relevanz auszugehen ist, stellen miRNAs eine bedeutende Größe dar, da sie es vermögen auf transkriptioneller Ebene Einfluss auf die Regulierung einer Vielzahl von Genen zu nehmen.
Verschiedene Aspekte liefern Hinweise darauf, dass eine Neurotransmitterdysregulation eine wichtige Komponente in der Pathogenese von Angsterkrankungen einnimmt – insbesondere veränderte noradrenerge Signalwege sind hierbei entscheidend beteiligt. Dies macht den Noradrenalin-Transporter bzw. SLC6A2 zu einem interessanten Kandidatengen, und stellt die Bezugsgröße der angestellten Untersuchungen in dieser Arbeit dar. miRNAs, welche die SLC6A2-Expression modulieren, können somit Einfluss auf zentrale Verarbeitungswege von Angst nehmen.
Im ersten Teil der vorliegenden Arbeit wurden potentielle miRNA-Regulatoren von SLC6A2 in silico ermittelt und in einem weiteren Schritt in vitro überprüft. Zehn der miRNAs (hsa-miR-378g, hsa-miR-330-5p, hsa-miR-4781-5p, hsa-miR664b-3p, hsa-miR-4715-3p, hsa-miR-579-3p, hsa-miR-3921, hsa-miR-3622b-5p, hsa-miR-4773, hsa-miR-532-3p) zeigten hierbei eine relevante Abnahme der Luciferase-Aktivität als Hinweis auf ihre funktionelle Relevanz und stellen damit die Basis der nachfolgenden Untersuchungen dar.
Im zweiten Teil der Arbeit wurden Einzelbasenpolymorphismen im Bereich der zuvor ermittelten miRNA-Gene sowie eines SNP innerhalb der 3’-UTR von SLC6A2 mittels Fall-Kontroll-Studie in einer Population von Patienten mit Panikstörung und entsprechenden Kontrollen untersucht. Eine nominelle Assoziation ließ sich für das (minor) T-Allel von rs2910931 (stromaufwärts von MIR579) (p-allel = 0,004) sowie das (major) A-Allel von rs2582372 (p-allel = 0,023) feststellen. In Einklang hiermit ließ sich weiterhin für rs2910931 eine signifikante Assoziation zwischen der Anzahl der (minor) T-Allele und dem ASI-Wert (β = 0,371, p = 0,029, 95 %-CI 0,039-0,702) sowie dem ACQ-Wert (β = 0,012, p = 0,041, 95 %-CI 0,000-0,023) ermitteln. Somit zeigt sich eine Einflussnahme der genetischen Variante um MIR579 auf die Feinmodulation der Noradrenalin-Homöostase als möglichem ätiopathogenetischen Faktor von Angsterkrankungen.
Gene expression in eukaryotic cells is regulated by the combinatorial action of numerous gene-regulatory factors, among which microRNAs (miRNAs) play a fundamental role at the post-transcriptional level. miRNAs are single-stranded, small non-coding RNA molecules that emerge in a cascade-like fashion via the generation of primary and precursor miRNAs. Mature miRNAs become functional when incorporated into the RNA induced silencing complex (RISC). miRNAs guide RISCs to target mRNAs in a sequence-specific fashion. To this end, base-pairs are usually formed between the miRNA seed region, spanning nucleotide positions 2 to 8 (from the 5' end) and the 3'UTR of the target mRNA. Once miRNA-mRNA interaction is established, RISC represses translation and occasionally induces direct or indirect target mRNA degradation. Interestingly, miRNAs are expressed not only in every multicellular organism but are also encoded by several viruses, predominately by herpesviruses. By controlling both, cellular as well as viral mRNA transcripts, virus-encoded miRNAs confer many beneficial effects on viral growth and persistence. Murine cytomegalovirus (MCMV) is a ß-herpesvirus and so far, 29 mature MCMV-encoded miRNAs have been identified during lytic infection. Computational analysis of previously conducted photoactivated ribonucleotide-enhanced individual nucleotide resolution crosslinking immunoprecipitation (PAR-iCLIP) experiments identified a read cluster within the 3' untranslated region (3'UTR) of the immediate early 3 (IE3) transcript in MCMV. Based on miRNA target predictions, two highly abundant MCMV miRNAs, namely miR-m01-2-3p and miR-M23-2-3p were found to potentially bind to two closely positioned target sites within the IE3 PAR-iCLIP peak. To confirm this hypothesis, we performed luciferase assays and showed that activity values of a luciferase fused with the 3'UTR of IE3 were downregulated in the presence of miR-m01- 2 and miR-M23-2. In a second step, we investigated the effect of pre-expression of miR-m01-2 and miR-M23-2 on the induction of virus replication. After optimizing the transfection procedure by comparing different reagents and conditions, plaque formation was monitored. We could demonstrate that the replication cycle of the wild-type but not of our MCMV mutant that harbored point mutations in both miRNA binding sites within the IE3-3'UTR, was significantly delayed in the presence of miR-m01-2 and miR-M23-2. This confirmed that miR-m01-2 and miR-M23-2 functionally target the major transcription factor IE3 which acts as an indispensable regulator of viral gene expression during MCMV lytic infection. Repression of the major immediate early genes by viral miRNAs is a conserved feature of cytomegaloviruses. The functional role of this type of regulation can now be studied in the MCMV mouse model.
Im Rahmen der Progression des klarzelligen Nierenzellkarzinoms kann es zur Invasion der Vena cava durch einen Tumorthrombus (ccRCC/TT) kommen. Allerdings besteht auch in diesem fortgeschrittenen Stadium eine deutliche Heterogenität bezüglich des klinischen Verlaufs. Während sich mit bekannten Verfahren die Prognose bislang unzureichend vorhersagen ließ, gelang es in Vorarbeiten mittels im Tumorgewebe erfasster miRNA-Expressionen, ein Überlebensklassifikationsmodell auf Basis eines Kombinierten Risikoscores (miR-21, miR-126, miR-221) zu konzipieren. Hierdurch konnte das postoperative Überleben von ccRCC/TT Patienten des Würzburger Universitätsklinikums retrospektiv vorhergesagt werden.
In der vorliegenden Arbeit war es möglich, mit Hilfe molekularbiologischer und biostatistischer Methoden das vorbeschriebene Modell erfolgreich an einem unabhängigen, größeren Regensburger ccRCC/TT Patientenkollektiv zu validieren. Am Tumor verstorbene Patienten konnten erneut einer klinisch relevanten High-Risk-Gruppe bzw. einer prognostisch günstigeren Gruppe zugeordnet werden. MiR-21 und miR-126 waren erneut statistisch signifikant mit der Fernmetastasierung und dem tumorbedingten Versterben assoziiert. MiR-21 präsentierte sich sowohl in der am Tumor verstorbenen als auch in der fernmetastasierten Patientengruppe deutlich überexprimiert, während die Expression von miR-126 stark vermindert war. Die neu untersuchte miR-205 zeigte sich in der fernmetastasierten sowie nodal positiven Patientengruppe hochreguliert, ein geringer Zusammengang mit dem tumorbedingten Versterben konnte hergestellt werden.
Im zweiten Ansatz gelang es relevante miRNA-Expressionsunterschiede zwischen Seren Würzburger ccRCC-Patienten mit und ohne Invasion des Gefäßsystems sowie tumorfreien Kontrollen zu identifizieren.
Die langfristige Herausforderung besteht darin, das validierte Überlebensklassifikationsmodell derart weiterzuentwickeln, dass es supportive klinische Anwendung in der Therapieplanung finden kann.
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.
Wilms tumor (WT) or nephroblastoma is the most common kidney tumor in childhood. Several genetic alterations have been identified in WT over the past years. However, a clear-cut underlying genetic defect has remained elusive. Growing evidence suggests that miRNA processing genes play a major role in the formation of pediatric tumors, including WT.
We and others have identified the microprocessor genes DROSHA and DGCR8 as key players in Wilms tumorigenesis. Exome sequence analysis of a cohort of blastemal-type WTs revealed the recurrent hotspot mutations DROSHA E1147K and DGCR8 E518K mapping to regions important for catalyic activity and RNA-binding. These alterations were expected to affect processing of miRNA precursors, ultimately leading to altered miRNA expression. Indeed, mutated tumor samples were characterized by distinct miRNA patterns. Notably, these mutations have been observed almost exclusively in WT, suggesting that they play a specific role in WT formation.
The aim of the present work was to first examine the mutation frequency of DROSHA E1147K and DGCR8 E518K in a larger cohort of WTs, and to further characterize these microprocessor gene mutations as potential oncogenic drivers for WT formation.
Screening of additional 700 WT samples by allele-specific PCR revealed a high frequency of DROSHA E1147K and DGCR8 E518K mutations, with the highest incidence found in tumors of high-risk histology. DROSHA E1147K was heterozygously expressed in all cases, which strongly implies a dominant negative effect. In contrast, DGCR8 E518K exclusively exhibited homozygous expression, suggestive for the mutation to act recessive.
To functionally assess the mutations of the microprocessor complex in vitro, I generated stable HEK293T cell lines with inducible overexpression of DROSHA E1147K, and stable mouse embryonic stem cell (mESC) lines with inducible overexpression of DGCR8 E518K. To mimic the homozygous expression observed in WT, DGCR8 mESC lines were generated on a DGCR8 knockout background. Inducible overexpression of wild-type or mutant DROSHA in HEK293T cells showed that DROSHA E1147K leads to a global downregulation of miRNA expression. It has previously been shown that the knockout of DGCR8 in mESCs also results in a significant downregulation of canonical miRNAs. Inducible overexpression of wild type DGCR8 rescued this processing defect. DGCR8 E518K on the other hand, only led to a partial rescue. Differentially expressed miRNAs comprised members of the ESC cell cycle (ESCC) and let-7 miRNA families whose antagonism is known to play a pivotal role in the regulation of stem cell properties. Along with altered miRNA expression, DGCR8-E518K mESCs exhibited alterations in target gene expression potentially affecting various biological processes.
We could observe decreased proliferation rates, most likely due to reduced cell viability. DGCR8-E518K seemed to be able to overcome the block of G1-S transition and to rescue the cell cycle defect in DGCR8-KO mESCs, albeit not to the full extent like DGCR8-wild-type. Moreover, DGCR8-E518K appeared to be unable to completely block epithelial-to-mesenchymal transition (EMT). Embryoid bodies (EBs) with the E518K mutation, however, were still able to silence the self-renewal program rescuing the differentiation defect in DGCR8-KO mESCs.
Taken together, I could show that DROSHA E1147K and DGCR8 E518K are frequent events in WT with the highest incidence in high-risk tumor entities. Either mutation led to altered miRNA expression in vitro confirming our previous findings in tumor samples. While the DROSHA E1147K mutation resulted in a global downregulation of canonical miRNAs, DGCR8 E518K was able to retain significant activity of the microprocessor complex, suggesting that partial reduction of activity or altered specificity may be critical in Wilms tumorigenesis.
Despite the significant differences found in the miRNA and mRNA profiles of DGCR8 E518K and DGCR8-wild-type mESCs, functional analysis showed that DGCR8 E518K could mostly restore important cellular functions in the knockout and only slightly differed from the wild-type situation. Further studies in a rather physiological environment, such as in a WT blastemal model system, may additionally help to better assess the subtle differences between DGCR8 E518K and DGCR8 wild-type observed in our mESC lines. Together with our findings, these model systems may thus contribute to better understand the role of these microprocessor mutations in the formation of WT.