610 Medizin und Gesundheit
Refine
Has Fulltext
- yes (6)
Is part of the Bibliography
- yes (6)
Document Type
- Journal article (3)
- Doctoral Thesis (3)
Keywords
- Transcription (6) (remove)
Institute
EU-Project number / Contract (GA) number
- 318987 (1)
The transcription factor MYC is a onco-protein, found to be deregulated in many human cancers. High MYC levels correlate with an aggressive tumor outcome and poor survival rates. Despite MYC being discovered as an oncogene already in the 1970s, how MYC regulates transcription of its target genes, which are involved in cellular growth and proliferation, is not fully understood yet.
In this study, the question how MYC influences factors interacting with the RNA polymerase II ensuring productive transcription of its target genes was addressed using quantitative mass spectrometry. By comparing the interactome of RNA polymerase II under varying MYC levels, several potential factors involved in transcriptional elongation were identified. Furthermore, the question which of those factors interact with MYC was answered by employing quantitative mass spectrometry of MYC itself. Thereby, the direct interaction of MYC with the transcription elongation factor SPT5, a subunit of the DRB-sensitivity inducing factor, was discovered and analyzed in greater detail. SPT5 was shown to be recruited to chromatin by MYC. In addition, the interaction site of MYC on SPT5 was narrowed down to its evolutionary conserved NGN-domain, which is the known binding site for SPT4, the earlier characterized second subunit of the DRB-sensitivity inducing factor. This finding suggests a model in which MYC and SPT4 compete for binding the NGN-domain of SPT5.
Investigations of the SPT5-interacting region on MYC showed binding of SPT5 to MYC’s N-terminus including MYC-boxes 0, I and II.
In order to analyze proteins interacting specifically with the N-terminal region of MYC, a truncated MYC-mutant was used for quantitative mass spectrometric analysis uncovering reduced binding for several proteins including the well-known interactor TRRAP and TRRAP-associated complexes.
Summarized, ...
Gene expression requires tight coordination of the molecular machineries that mediate transcription and splicing. While the interplay between transcription kinetics and spliceosome fidelity has been investigated before, less is known about mechanisms regulating the assembly of the spliceosomal machinery in response to transcription changes. Here, we report an association of the Smn complex, which mediates spliceosomal snRNP biogenesis, with the 7SK complex involved in transcriptional regulation. We found that Smn interacts with the 7SK core components Larp7 and Mepce and specifically associates with 7SK subcomplexes containing hnRNP R. The association between Smn and 7SK complexes is enhanced upon transcriptional inhibition leading to reduced production of snRNPs. Taken together, our findings reveal a functional association of Smn and 7SK complexes that is governed by global changes in transcription. Thus, in addition to its canonical nuclear role in transcriptional regulation, 7SK has cytosolic functions in fine-tuning spliceosome production according to transcriptional demand.
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.
Normal human brain development is dependent on highly dynamic epigenetic processes for spatial and temporal gene regulation. Recent work identified wide-spread changes in DNA methylation during fetal brain development. We profiled CpG methylation in frontal cortex of 27 fetuses from gestational weeks 12-42, using Illumina 450K methylation arrays. Sites showing genome-wide significant correlation with gestational age were compared to a publicly available data set from gestational weeks 3-26. Altogether, we identified 2016 matching developmentally regulated differentially methylated positions (m-dDMPs): 1767 m-dDMPs were hypermethylated and 1149 hypomethylated during fetal development. M-dDMPs are underrepresented in CpG islands and gene promoters, and enriched in gene bodies. They appear to cluster in certain chromosome regions. M-dDMPs are significantly enriched in autism-associated genes and CpGs. Our results promote the idea that reduced methylation dynamics during fetal brain development may predispose to autism. In addition, m-dDMPs are enriched in genes with human-specific brain expression patterns and/or histone modifications. Collectively, we defined a subset of dDMPs exhibiting constant methylation changes from early to late pregnancy. The same epigenetic mechanisms involving methylation changes in cis-regulatory regions may have been adopted for human brain evolution and ontogeny.
MYC is a transcription factor, whose expression is elevated or deregulated in many human cancers (up to 70%) and is often associated with aggressive and poorly differentiated tumors. Although MYC is extensively studied, discrepancies have emerged about how this transcription factor works. In primary lymphocytes, MYC promotes transcriptional amplification of virtually all genes with an open promoter, whereas in tumor cells MYC regulates specific sets of genes that have significant prognostic value. Furthermore, the set of target genes that distinguish MYC’s physiological function from the pathological/oncogenic one, whether it exists or not, has not been fully understood yet.
In this study, it could be shown that MYC protein levels within a cell and promoter affinity (determined by E-box presence or interaction with other proteins) of target genes toward MYC are important factors that influence MYC activity. At low levels, MYC can amplify a certain transcriptional program, which includes high affinity binding sites, whereas at high levels MYC leads to the specific up- and down regulation of genes with low affinity. Moreover, the promoter affinity characterizes different sets of target genes which can be distinguished in the physiological or oncogenic MYC signatures.
MYC-mediated repression requires higher MYC levels than activation and formation of a complex with MIZ1 is necessary for inhibiting expression of a subset of MYC target genes.
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.