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Institute
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.
Biochemische und strukturelle Charakterisierung der Genexpressionsmaschinerie des Vaccinia Virus
(2018)
Die Familie der Pockenviren zeichnet sich durch ein komplexes DNA Genom aus und hat großes medizinisches Potential. Am eindrucksvollsten ist dies für das Vaccinia-Virus (VACV) belegt, welches nicht nur als Pocken-Impfstoff eingesetzt wird, sondern auch als onkolytisches Virus in der Tumorbiologie. VACV hat einen außergewöhnlichen Replikationszyklus, welcher ausschließlich im Zytoplasma der Wirtszelle stattfindet. Somit ist die gesamte virale Genexpressionsmaschinerie völlig unabhängig von kernvermittelten Reaktionen des Wirts und somit auch aus Sicht der Grundlagenforschung von größtem Interesse. Die Schlüsselkomponente der viralen Genexpression ist die makromolekulare DNA-abhängige RNA Polymerase (vvRPO), deren Untereinheiten allesamt Virus-kodiert sind. Zwar wurden in den letzten Jahren Protokolle zur biochemischen und funktionellen Charakterisierung der vvRPO etabliert, ein detailliertes Wissen über deren Zusammenlagerung in vivo und die räumlichen und zeitlichen Interaktionen mit den Transkriptions- bzw. Prozessierungsfaktoren sind aber weitgehend unbekannt.
Diese Arbeit umfasst Untersuchungen zur strukturellen und funktionellen Charakterisierung der vvRPO und seiner assoziierten Faktoren. Grundlage hierfür war die Etablierung eines Reinigungsprotokolls mithilfe eines neu konstruierten rekombinanten VACV (GLV-1h439). Diese Strategie erlaubte es hoch-molekulare native vvRPO Komplexe zu isolieren. Ein transkriptions-inaktiver Komplex (Komplex I) mit einer kalkulierten Masse von 575 kDa bestand aus den acht Untereinheiten des vvRPO Holoenzyms und den Polymerase-assoziierten Faktoren RAP94 und D6. Ein zweiter, transkriptionell aktiver Komplex (Komplex II) mit einer Masse von 803 kDa enthielt, neben dem Holoenzym der vvRPO, noch weitere Faktoren, die primär die Erkennung der DNA-Matrize und die Prozessierung der naszierenden RNA vermitteln. Hierbei handelt es sich um RAP94, das virale Capping Enzym bestehend aus den zwei Untereinheiten D1 und D12, A7 und dem Terminationsfaktor NPH I. Interessanterweise enthielt dieser Komplex zusätzlich mit E11 eine bislang unbekannte weitere Protein-Komponente, sowie tRNAGln und tRNAArg. Der isolierte Kompelx II ist daher ein Ribonukleoprotein (RNP).
Die Verfügbarkeit von hoch-reinen vvRPO Komplexen erlaubte es erstmals deren strukturelle Architektur zu untersuchen. Hierfür wurden drei experimentelle Ansätze, die klassische Röntgenstrukturanalyse, die Kryo-Elektronenmikroskopie (Kryo-EM) und Quervernetzungssstudien miteinander kombiniert. Die Strukturen der Komplexe I und II haben eine Auflösung von 11-12 Å, wobei auffällig war, dass beide eine markante strukturelle Ähnlichkeit zur eukaryotischen RNA Polymerase II aufwiesen. Darüber hinaus gelang es zusätzliche Bereiche im Komplex II zu definieren, welche die Polymerase-assoziierten Prozessierungsfaktoren beherbergen. Zudem konnte die atomare Struktur von E11, mittels Röntgenstrukturanalyse bei einer Auflösung von 1,9 Å, gelöst werden. Das E11 Protein besitzt ein neuartiges Faltungsmuster und weist einen intensiven Dimerisierungskontakt auf, welcher sich über vier ß-Faltblätter ausbildet.
Die im Rahmen dieser Arbeit erhaltenen Daten legen die Grundlage für ein detailliertes Verständnis der räumlichen Organisation der viralen Transkriptonsmaschinerie. Darüber hinaus werden sie funktionelle Studien ermöglichen, welche die Rolle der einzelnen Proteine, sowie der tRNAs bei der mRNA Synthese klären helfen.
The human-bacterial pathogen interaction is a complex process that results from
a prolonged evolutionary arms race in the struggle for survival. The pathogen employs
virulence strategies to achieve host colonization, and the latter counteracts using defense
programs. The encounter of both organisms results in drastic physiological changes
leading to stress, which is an ancient response accompanying infection. Recent evidence
suggests that the stress response in the host converges with the innate immune pathways
and influences the outcome of infection. However, the contribution of stress and the exact
mechanism(s) of its involvement in host defense remain to be elucidated. Using the model
bacterial pathogen Shigella flexneri, and comparing it with the closely related pathogen
Salmonella Typhimurium, this study investigated the role of host stress in the outcome of
infection.
Shigella infection is characterized by a pronounced pro-inflammatory response
that causes intense stress in host tissues, particularly the intestinal epithelium, which
constitutes the first barrier against Shigella colonization. In this study, inflammatory
stress was simulated in epithelial cells by inducing oxidative stress, hypoxia, and cytokine
stimulation. Shigella infection of epithelial cells exposed to such stresses was strongly
inhibited at the adhesion/binding stage. This resulted from the depletion of sphingolipidrafts
in the plasma membrane by the stress-activated sphingomyelinases. Interestingly,
Salmonella adhesion was not affected, by virtue of its flagellar motility, which allowed the
gathering of bacteria at remaining membrane rafts. Moreover, the intracellular replication
of Shigella lead to a similar sphingolipid-raft depletion in the membrane across adjacent
cells inhibiting extracellular bacterial invasion.
Additionally, this study shows that Shigella infection interferes with the host stress
granule-formation in response to stress. Interestingly, infected cells exhibited a nuclear
depletion of the global RNA-binding stress-granule associated proteins TIAR and TIA-1
and their accumulation in the cytoplasm.
Overall, this work investigated different aspects of the host stress-response in the
defense against bacterial infection. The findings shed light on the importance of the host
stress-pathways during infection, and improve the understanding of different strategies
in host-pathogen interaction.