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In mammals, a major fraction of the genome is transcribed as non-coding RNAs. An increasing amount of evidence has accumulated showing that non-coding RNAs play important roles both for normal cell function and in disease processes such as cancer or neurodegeneration. Interpreting the functions of non-coding RNAs and the molecular mechanisms through which they act is one of the most important challenges facing RNA biology today.
In my Ph.D. thesis, I have been investigating the role of 7SK, one of the most abundant non-coding RNAs, in the development and function of motoneurons. 7SK is a highly structured 331 nt RNA transcribed by RNA polymerase III. It forms four stem-loop (SL) structures that serve as binding sites for different proteins. Larp7 binds to SL4 and protects the 3' end from exonucleolytic degradation. SL1 serves as a binding site for HEXIM1, which recruits the pTEFb complex composed of CDK9 and cyclin T1. pTEFb has a stimulatory role for transcription and is regulated through sequestration by 7SK. More recently, a number of heterogeneous nuclear ribonucleoproteins (hnRNPs) have been identified as 7SK interactors. One of these is hnRNP R, which has been shown to have a role in motoneuron development by regulating axon growth. Taken together, 7SK’s function involves interactions with RNA binding proteins, and different RNA binding proteins interact with different regions of 7SK, such that 7SK can be considered as a hub for recruitment and release of different proteins. The questions I have addressed during my Ph.D. are as follows: 1) which region of 7SK interacts with hnRNP R, a main interactor of 7SK? 2) What effects occur in motoneurons after the protein binding sites of 7SK are abolished? 3) Are there additional 7SK binding proteins that regulate the functions of the 7SK RNP?
Using in vitro and in vivo experiments, I found that hnRNP R binds both the SL1 and SL3 region of 7SK, and also that pTEFb cannot be recruited after deleting the SL1 region but is able to bind to a 7SK mutant with deletion of SL3. In order to answer the question of how the 7SK mutations affect axon outgrowth and elongation in mouse primary motoneurons, we proceeded to conduct rescue experiments in motoneurons by using lentiviral vectors. The constructs were designed to express 7SK deletion mutants under the mouse U6 promoter and at the same time to drive expression of a 7SK shRNA from an H1 promoter for the depletion of endogenous 7SK. Using this system we found that 7SK mutants harboring deletions of either SL1 or SL3 could not rescue the axon growth defect of 7SK-depleted motoneurons suggesting that 7SK/hnRNP R complexes are integral for this process.
In order to identify novel 7SK binding proteins and investigate their functions, I proceeded to conduct pull-down experiments by using a biotinylated RNA antisense oligonucleotide that targets the U17-C33 region of 7SK thereby purifying endogenous 7SK complexes. Following mass spectrometry of purified 7SK complexes, we identified a number of novel 7SK interactors. Among these is the Smn complex. Deficiency of the Smn complex causes the motoneuron disease spinal muscular atrophy (SMA) characterized by loss of lower motoneurons in the spinal cord. Smn has previously been shown to interact with hnRNP R. Accordingly, we found Smn as part of 7SK/hnRNP R complexes. These proteomics data suggest that 7SK potentially plays important roles in different signaling pathways in addition to transcription.
TNFR1 and TNFR2 regulate the extrinsic apoptotic pathway in myeloma cells by multiple mechanisms
(2011)
The huge majority of myeloma cell lines express TNFR2 while a substantial subset of them failed to show TNFR1 expression. Stimulation of TNFR1 in the TNFR1-expressing subset of MM cell lines had no or only a very mild effect on cellular viability. Surprisingly, however, TNF stimulation enhanced cell death induction by CD95L and attenuated the apoptotic effect of TRAIL. The contrasting regulation of TRAIL- and CD95L-induced cell death by TNF could be traced back to the concomitant NFjBmediated upregulation of CD95 and the antiapoptotic FLIP protein. It appeared that CD95 induction, due to its strength, overcompensated a rather moderate upregulation of FLIP so that the net effect of TNF-induced NFjB activation in the context of CD95 signaling is pro-apoptotic. TRAIL-induced cell death, however, was antagonized in response to TNF because in this context only the induction of FLIP is relevant. Stimulation of TNFR2 in myeloma cells leads to TRAF2 depletion. In line with this, we observed cell death induction in TNFR1-TNFR2-costimulated JJN3 cells. Our studies revealed that the TNF-TNF receptor system adjusts the responsiveness of the extrinsic apoptotic pathway in myeloma cells by multiple mechanisms that generate a highly context-dependent net effect on myeloma cell survival
The sfa determinant codes for S fimbrial adhesins which constitute adherence factors of pathogenic Escherichia coli strains. Wehave recently shown that the sfa determinant is transcribed from three prömoters, pA, pB, and pC. In comparison with the promoters pB and pC, promoter pA, which is located in front of the structural gene sfaA, showed very weak activity. Herewe have determined the exact positions ofthe mRNA start points by primer extension studies. We have also shown that mRNAs of 500, 700 and 1400 bases can be detected using oligonucleotide probes specific for the genes sfaB, sfaC and sfaA. SfaB and SfaC arepositive regulators infiuencing fimbriation and the production of the S-specific adhesin which is encoded by the gene sfaS Iocated in the distal half of the determinant. In addition, it is demonstrated that SfaB and SfaC interfere with the regulatory effect of the histone-like protein H-NS, encoded by a locus termed drdX or osmZ. In a drdx+ strain the regulators are necessary for transcription of the sfa determinant. In contrast, sfa expression is activator-independent in a drdx- strain. In this latter genetic background, a substantial fraction of the sfa transcripts is initiated from promoter pA. On the basis of these data we discuss a model for the regulation of this adhesin-specific determinant.
Die Betazellmasse wird durch Apoptose, Proliferation und Neogenese aus Vorläuferzellen an den Bedarf des Organismus angepasst. Fehlregulationen und Verlust der Anpassungsfähigkeit sind Ursachen für Diabetes mellitus Typ-2. IDX-1 ist sowohl ein Hauptentwicklungsfaktor des embryonalen Pankreas als auch an der Regulation von Neogenese und Proliferation der adulten Betazellen beteiligt. Betazellproliferation und Differenzierung werden durch Faktoren wie GLP-1 oder milde Hyperglykämie stimuliert und gehen mit einer Aktivierung von IDX-1 einher. In der Arbeit sollte der Einfluss von GLP-1 und milder Hyperglykämie auf die Expression, besonders die Transkription, des Transkriptionsfaktors IDX-1 in insulinproduzierenden Betazellen des endokrinen Pankreas untersucht werden. Ferner wurde eine mögliche Autoregulation des IDX-1 Promotors durch IDX-1 untersucht. Als Modell für adulte Betazellen wurden klonale Betazellen INS-1 und MIN6 verwendet. Die IDX-1 Expression wurde auf mRNA Ebene im Northern Blot und auf Proteinebene mittels Western Blot untersucht. Der Promotor des IDX-1 Gens wurde Mithilfe von Luziferasereportergenassays und EMSA untersucht. Die Expression von IDX-1 Protein und mRNA wird durch milde Hyperglykämie stimuliert. Dieser Effekt ist auf eine Aktivierung des IDX-1 Promotors zurückzuführen. Die Aktivierung innerhalb des Promotors konnte auf zwei Regionen eingeschränkt werden. Diese befinden sich im IDX Promotor in den -900 bp bis -300 bp und den 230 bp vor Beginn der kodierenden Sequenz des IDX-1 Gens. Im EMSA konnte ein glukoseabhängiger Komplex (-49 bp bis -44 bp) nachgewiesen werden, an den USF-1 und USF-2 binden. USFs sind für glukoseabhängige Genregulation in Leber und Pankreas bekannt. Eine Mutation der Bindungsstelle führte zum Verlust des Bindungskomplexes. In Luziferasereportergenassays beobachtete man eine Verringerung der glukoseinduzierten Aktivierung. Für GLP-1 konnte kein eindeutiger Einfluss auf die Expression von IDX-1 gezeigt werden. Als Anzeichen für eine mögliche Autoregulation des IDX-1 Promotors durch IDX-1 wurde bei Überexpression von IDX-1 in Betazellen eine verringerte Promotoraktivität festgestellt. Der in dieser Arbeit untersuchte Transkriptionsfaktor IDX-1 spielt eine Schlüsselrolle in der Regulation der Betazellmasse des endokrinen Pankreas. Es ist wichtig die molekularen Mechanismen der Regulation der Betazellmasse zu verstehen; Erkenntnisse darüber eröffnen einerseits ein besseres Verständnis der Pathogenese des Diabetes mellitus, andererseits stellen sie hoffnungsvolle neue Therapieansätze da.
Background
Herpesviruses can infect a wide range of animal species. Herpes simplex virus 1 (HSV-1) is one of the eight herpesviruses that can infect humans and is prevalent worldwide. Herpesviruses have evolved multiple ways to adapt the infected cells to their needs, but knowledge about these transcriptional and post-transcriptional modifications is sparse.
Results
Here, we show that HSV-1 induces the expression of about 1000 antisense transcripts from the human host cell genome. A subset of these is also activated by the closely related varicella zoster virus. Antisense transcripts originate either at gene promoters or within the gene body, and they show different susceptibility to the inhibition of early and immediate early viral gene expression. Overexpression of the major viral transcription factor ICP4 is sufficient to turn on a subset of antisense transcripts. Histone marks around transcription start sites of HSV-1-induced and constitutively transcribed antisense transcripts are highly similar, indicating that the genetic loci are already poised to transcribe these novel RNAs. Furthermore, an antisense transcript overlapping with the BBC3 gene (also known as PUMA) transcriptionally silences this potent inducer of apoptosis in cis.
Conclusions
We show for the first time that a virus induces widespread antisense transcription of the host cell genome. We provide evidence that HSV-1 uses this to downregulate a strong inducer of apoptosis. Our findings open new perspectives on global and specific alterations of host cell transcription by viruses.