• Refine Query
  • Source
  • Publication year
  • to
  • Language
  • 42
  • 11
  • 9
  • 3
  • Tagged with
  • 65
  • 51
  • 32
  • 26
  • 16
  • 14
  • 13
  • 12
  • 12
  • 11
  • 11
  • 11
  • 10
  • 10
  • 10
  • About
  • The Global ETD Search service is a free service for researchers to find electronic theses and dissertations. This service is provided by the Networked Digital Library of Theses and Dissertations.
    Our metadata is collected from universities around the world. If you manage a university/consortium/country archive and want to be added, details can be found on the NDLTD website.
21

Altersassoziierte und strahleninduzierte Veränderungen des genomweiten DNA-Methylierungs-Profils / Age-associated and radiation-induced changes in genome-wide DNA methylation

Maierhofer, Anna January 2018 (has links) (PDF)
Der Prozess des Alterns ist ein komplexer multifaktorieller Vorgang, der durch eine sukzessive Verschlechterung der physiologischen Funktionen charakterisiert ist. Ein hohes Alter ist der Hauptrisikofaktor für die meisten Krankheiten, einschließlich Krebs und Herz-Kreislauf-Erkrankungen. Das Verständnis der epigenetischen Mechanismen, die in den Prozess des Alterns involviert sind, könnte zur Entwicklung pharmakologischer Interventionen beitragen, die nicht nur die Lebenserwartung erhöhen, sondern auch den Beginn des altersassoziierten funktionellen Abbaus verzögern könnten. Durch die Langzeit-Kultivierung primärer humaner Fibroblasten wurde ein in vitro Modell für das Altern etabliert, das die Identifizierung altersassoziierter DNA-Methylierungs-Veränderungen ermöglichte. Die in vitro Alterung konnte mit einer globalen Hypomethylierung und einer erhöhten DNA-Methylierung der ribosomalen DNA assoziiert werden. Darüber hinaus konnten DNA-Methylierungs-Veränderungen in Genen und Signalwegen, die für das Altern relevant sind, und ein erhöhtes epigenetisches Alter nachgewiesen werden. Das in vitro Modell für das Altern wurde verwendet, um neben den direkten Effekten ionisierender Strahlung auf die DNA-Methylierung auch deren Langzeit-Effekte zu untersuchen. Die Strahlentherapie ist ein entscheidendes Element der Krebstherapie, hat aber auch negative Auswirkungen und kann unter anderem das Risiko für die Entwicklung eines Zweittumors erhöhen. Bei externer Bestrahlung wird neben dem Tumor auch gesundes Gewebe ionisierender Strahlung ausgesetzt. Daher ist es wichtig zu untersuchen, wie Zellen mit intakten DNA-Reparatur-Mechanismen und funktionierenden Zellzyklus-Checkpoints durch diese beeinflusst werden. In der frühen Phase der DNA-Schadensantwort auf Bestrahlung wurden in normalen Zellen keine wesentlichen DNA-Methylierungs-Veränderungen beobachtet. Mehrere Populations-Verdoppelungen nach Strahlenexposition konnten dagegen eine globale Hypomethylierung, eine erhöhte DNA-Methylierung der ribosomalen DNA und ein erhöhtes epigenetisches Alter detektiert werden. Des Weiteren zeigten Gene und Signalwege, die mit Krebs in Verbindung gebracht wurden, Veränderungen in der DNA-Methylierung. Als Langzeit-Effekte ionisierender Strahlung traten somit die mit der in vitro Alterung assoziierten DNA-Methylierungs-Veränderungen verstärkt auf und ein epigenetisches Muster, das stark an das DNA-Methylierungs-Profil von Tumorzellen erinnert, entstand. Man geht davon aus, dass Veränderungen der DNA-Methylierung eine aktive Rolle in der Entwicklung eines Tumors spielen. Die durch ionisierende Strahlung induzierten DNA-Methylierungs-Veränderungen in normalen Zellen könnten demnach in die Krebsentstehung nach Strahlenexposition involviert sein und zu dem sekundären Krebsrisiko nach Strahlentherapie beitragen. Es ist bekannt, dass Patienten unterschiedlich auf therapeutische Bestrahlung reagieren. Die Ergebnisse dieser Arbeit weisen darauf hin, dass die individuelle Sensitivität gegenüber ionisierender Strahlung auch auf epigenetischer Ebene beobachtet werden kann. In einem zweiten Projekt wurden Gesamtblutproben von Patienten mit Werner-Syndrom, einer segmental progeroiden Erkrankung, und gesunden Kontrollen analysiert, um mit dem vorzeitigen Altern in Verbindung stehende DNA-Methylierungs-Veränderungen zu identifizieren. Werner-Syndrom konnte nicht mit einer globalen Hypomethylierung, jedoch mit einer erhöhten DNA-Methylierung der ribosomalen DNA und einem erhöhten epigenetischen Alter assoziiert werden. Das vorzeitige Altern geht demzufolge mit spezifischen epigenetischen Veränderungen einher, die eine Beschleunigung der mit dem normalen Altern auftretenden DNA-Methylierungs-Veränderungen darstellen. Im Rahmen dieser Arbeit konnte die Bedeutung epigenetischer Mechanismen im Prozess des Alterns hervorgehoben werden und gezeigt werden, dass sowohl exogene Faktoren, wie ionisierende Strahlung, als auch endogene Faktoren, wie das in Werner-Syndrom-Patienten mutiert vorliegende WRN-Gen, altersassoziierte DNA-Methylierungs-Veränderungen beeinflussen können. / Aging is a complex, multifactorial process that is characterized by the successive deterioration of normal physiological functions. Age is the main risk factor for most diseases, including cancer. Understanding the epigenetic mechanisms that are involved in the aging process could contribute to the development of pharmacological interventions not only increasing lifespan but also delaying the onset of age-dependent functional decline. An in vitro model for aging was established by long-term culturing of primary human fibroblasts and used to identify age-associated changes in DNA methylation. In vitro aging could be linked to global hypomethylation, elevated DNA methylation of ribosomal DNA, a higher epigenetic age and alterations in DNA methylation of genes and pathways being relevant for aging. The in vitro model for aging allowed to analyse the long-term effects of ionizing radiation on DNA methylation in addition to their direct effects. Radiotherapy is an important element of cancer treatment but can also have negative effects and increase the risk of second cancers. Although radiotherapy is targeted to the tumour, it also affects the surrounding healthy tissue. Therefore, it is important to analyse the impacts of ionizing radiation on normal cells with intact DNA repair and cell cycle checkpoints. The early phase of DNA damage response to radiation does not seem to include great changes in DNA methylation in normal cells. In contrast, several population doublings after radiation exposure, global hypomethylation and DNA methylation changes of genes and pathways being linked to tumorigenesis were detected. Furthermore, DNA methylation of ribosomal DNA and the epigenetic age were increased. Thus, as long-term effects of ionizing radiation the age-associated changes in DNA methylation were enhanced and an epigenetic pattern strongly resembling the DNA methylation profile of tumour cells was observed. It is assumed that alterations in DNA methylation are not only side effects of carcinogenesis but rather play an active role during this process. Radiation-induced changes in DNA methylation could thus be involved in tumour development and contribute to the secondary cancer risk after radiotherapy. It is well known that patients react differently to therapeutic radiation. The results of this study suggest that individual radiation sensitivity is also reflected on epigenetic level. In a second project whole blood samples from patients with Werner syndrome, a segmental progeroid syndrome, and healthy controls were analysed to identify changes in DNA methylation associated with premature aging. Werner syndrome could not be linked to global hypomethylation, but to an increased epigenetic age and elevated methylation levels of ribosomal DNA. Hence, premature aging seems to be accompanied by specific alterations in DNA methylation representing an acceleration of the DNA methylation changes associated with normal aging. This work outlines the importance of epigenetic mechanisms in the aging process and shows that not only exogenous factors like ionizing radiation but also endogenous factors like Werner syndrome causing mutations in the WRN gene can influence age-associated changes in DNA methylation.
22

The Dynamic Epigenome / Das Dynamische Epigenome - Analyse der Verteilung von Histonmodifikationen

Steiner, Lydia 05 August 2013 (has links) (PDF)
There is a genome in a cell, as everyone knows, but there is also an epigenome. The epigenome regulates the transcription of the underlying genome. In the last decade, it was discovered that the epigenome state and its regulation are important for differentiation and development. Correlation studies with aging samples had led to the hypothesis that misregulation of the epigenome causes aging and cancer. Furthermore, diseases were identified which are caused by errors in the epigenome state and its regulation. Identification of erroneous epigenome states and misregulation requires the prior knowledge of the common state. Several studies aim at measuring epigenome states in different organisms and cell types and thus, provide a huge amount of data. In this dissertation, a pipeline is developed to analyze and characterize histone modifications with respect to different cell types. Application of this pipeline is shown for a published data set of mouse consisting of data for H3K4me3, H3K27me3, and H3K9me3 measured in embryonic stem cells, embryonic fibroblasts and neuronal progenitors. Furthermore, methods for the detection of the epigenetic patterns are presented in this dissertation. Therefore, a segmentation method is developed to segment the genome guided by the data sets. Based on this segmentation, the epigenome states as well as epigenetic variation can be studied. Different visualization methods are developed to highlight the epigenetic patterns in the segmentation data. Application of the segmentation AND visualization methods to the mouse data set had resulted in not only colorful squares but also in biological conclusions! It demonstrate the power of the developed methods. Although the studied data set in this dissertation contains only ordinary tissue cells, the methods are not restricted to study the reference epigenome state. Comparison of normal and disease cells as well as comparison with aged cells are possible with all of the methods. Finally, the methods are compared based on the obtained results. It shows that all methods highlight different aspects of the data. Thus, applying all methods to the same data sets, deep insights into the epigenome in murine embryonic stem cells, embryonic fibroblasts and neuronal progenitor cells are gained. For example, it had been found that several mechanisms exist setting H3K4me3 marks. Furthermore, not all mechanisms are found in all cell types. Strong evidence had been found that catalysis of H3K4me3 and H3K27me3 is coupled.
23

The impact of DNA sequence and chromatin on transcription in \(Trypanosoma\) \(brucei\) / Der Einfluss der DNA-Sequenz und der Chromatinstruktur auf die Transkription in \(Trypanosoma\) \(brucei\)

Wedel, Carolin January 2018 (has links) (PDF)
For cellular viability, transcription is a fundamental process. Hereby, the DNA plays the most elemental and highly versatile role. It has long been known that promoters contain conserved and often well-defined motifs, which dictate the site of transcription initiation by providing binding sites for regulatory proteins. However, research within the last decade revealed that it is promoters lacking conserved promoter motifs and transcribing constitutively expressed genes that constitute the majority of promoters in eukaryotes. While the process of transcription initiation is well studied, whether defined DNA sequence motifs are required for the transcription of constitutively expressed genes in eukaryotes remains unknown. In the highly divergent protozoan parasite Trypanosoma brucei, most of the proteincoding genes are organized in large polycistronic transcription units. The genes within one polycistronic transcription unit are generally unrelated and transcribed by a common transcription start site for which no RNA polymerase II promoter motifs have been identified so far. Thus, it is assumed that transcription initiation is not regulated but how transcription is initiated in T. brucei is not known. This study aimed to investigate the requirement of DNA sequence motifs and chromatin structures for transcription initiation in an organism lacking transcriptional regulation. To this end, I performed a systematic analysis to investigate the dependence of transcription initiation on the DNA sequence. I was able to identify GT-rich promoter elements required for directional transcription initiation and targeted deposition of the histone variant H2A.Z, a conserved component during transcription initiation. Furthermore, nucleosome positioning data in this work provide evidence that sites of transcription initiation are rather characterized by broad regions of open and more accessible chromatin than narrow nucleosome depleted regions as it is the case in other eukaryotes. These findings highlight the importance of chromatin during transcription initiation. Polycistronic RNA in T. brucei is separated by adding an independently transcribed miniexon during trans-splicing. The data in this work suggest that nucleosome occupancy plays an important role during RNA maturation by slowing down the progressing polymerase and thereby facilitating the choice of the proper splice site during trans-splicing. Overall, this work investigated the role of the DNA sequence during transcription initiation and nucleosome positioning in a highly divergent eukaryote. Furthermore, the findings shed light on the conservation of the requirement of DNA motifs during transcription initiation and the regulatory potential of chromatin during RNA maturation. The findings improve the understanding of gene expression regulation in T. brucei, a eukaryotic parasite lacking transcriptional Regulation. / Die Transkription ist ein entscheidender Prozess in der Zelle und die DNA-Sequenz nimmt hierbei eine elementare Rolle ein. Promotoren beinhalten spezifische und konservierte DNASequenzen und vermitteln den Start der Transkription durch die Rekrutierung spezifischer Proteine. Jedoch haben Forschungen im vergangenen Jahrzehnt gezeigt, dass die Mehrzahl der Promotoren in eukaryotischen Genomen keine konservierten Promotormotive aufweisen und häufig konstitutiv exprimierte Gene transkribieren. Obgleich der Prozess der Transkriptionsinitiation im Allgemeinen gut erforscht ist, konnte bisher nicht nachgewiesen werden, ob ein definiertes DNA-Motiv während der Transkription von konstitutiv exprimierten Genes erforderlich ist. In dem eukaryotischen und einzelligen Parasiten Trypanosoma brucei ist die Mehrzahl der proteinkodierenden Gene in lange polycistronische Transkriptionseinheiten arrangiert. Diese werden von einem gemeinsamen Transkriptionsstart durch die RNA Polymerase II transkribiert, allerdings konnten hier bisher keine Promotormotive identifiziert werden. Aus diesem Grund besteht die Annahme, dass Transkription keiner Regulation unterliegt. Allgemein ist der Prozess der Transkriptionsinitiation in T. brucei bisher nur wenig verstanden. Um den Zusammenhang zwischen DNA-Motiven und konstitutiver Genexpression näher zu untersuchen und Schlussfolgerungen über die DNA-Sequenz-Abhängigkeit der Transkriptionsinitiation zu ziehen, habe ich eine systematische Analyse in T. brucei durchgeführt. Ich konnte GT-reiche Promotorelemente innerhalb dieser Regionen identifizieren, die sowohl eine gerichtete Transkriptionsinitiation, als auch den gezielten Einbau der Histonvariante H2A.Z in Nukleosomen nahe der Transkriptionsstartstelle vermittelt haben. Des Weiteren zeigten Nukleosomenpositionierungsdaten, dass in Trypanosomen die Transkripitonsstartstellen nicht die charakteristische, nukleosomendepletierte Region, wie für andere Organismen beschrieben, sondern eine offene Chromatinstruktur enthalten. Zusätzlich konnte ich zeigen, dass die Chromatinstruktur eine wichtige Rolle während der mRNAProzessierung spielt. In T. brucei wird die polycistronische pre-mRNA durch das Anfügen eines Miniexons während des sogenannten trans-Splicens in individuelle mRNAs aufgetrennt. Die Daten dieser Arbeit belegen, dass die Anreicherung von Nukleosomen eine Verlangsamung der transkribierenden Polymerase bewirken und sie somit die richtige Wahl der Splicestelle gewährleisten. Zusammenfassend wurde in dieser Arbeit die Rolle der DNA Sequenz während der Transkriptionsinitiation und Nukleosomenpositionierung in einem divergenten Eukaryoten untersucht. Die Erkenntnisse bringen mehr Licht in die Konservierung der Notwendigkeit eines DNA-Motivs während der Transkriptionsinitiation und das regulatorische Potential der Chromatinstruktur während der RNA-Reifung. Zudem verbessern sie das Verständnis der Genexpressionsregulation in T. brucei, einem eukaryotischen Parasiten, der ohne transkriptionelle Regulation überlebt.
24

Enhanced inhibition of clonogenic survival of human medulloblastoma cells by multimodal treatment with ionizing irradiation, epigenetic modifiers, and differentiation-inducing drugs

Patties, Ina, Kortmann, Rolf-Dieter, Menzel, Franziska, Glasow, Annegret 21 June 2016 (has links) (PDF)
Background: Medulloblastoma (MB) is the most common pediatric brain tumor. Current treatment regimes consisting of primary surgery followed by radio- and chemotherapy, achieve 5-year overall survival rates of only about 60 %. Therapy-induced endocrine and neurocognitive deficits are common late adverse effects. Thus, improved antitumor strategies are urgently needed. In this study, we combined irradiation (IR) together with epigenetic modifiers and differentiation inducers in a multimodal approach to enhance the efficiency of tumor therapy in MB and also assessed possible late adverse effects on neurogenesis. Methods: In three human MB cell lines (DAOY, MEB-Med8a, D283-Med) short-time survival (trypan blue exclusion assay), apoptosis, autophagy, cell cycle distribution, formation of gH2AX foci, and long-term reproductive survival (clonogenic assay) were analyzed after treatment with 5-aza-2′-deoxycytidine (5-azadC), valproic acid (VPA), suberanilohydroxamic acid (SAHA), abacavir (ABC), all-trans retinoic acid (ATRA) and resveratrol (RES) alone or combined with 5-aza-dC and/or IR. Effects of combinatorial treatments on neurogenesis were evaluated in cultured murine hippocampal slices from transgenic nestin-CFPnuc C57BL/J6 mice. Life imaging of nestin-positive neural stem cells was conducted at distinct time points for up to 28 days after treatment start. Results: All tested drugs showed a radiosynergistic action on overall clonogenic survival at least in two-outof-three MB cell lines. This effect was pronounced in multimodal treatments combining IR, 5-aza-dC and a second drug. Hereby, ABC and RES induced the strongest reduction of clongenic survival in all three MB cell lines and led to the induction of apoptosis (RES, ABC) and/or autophagy (ABC). Additionally, 5-aza-dC, RES, and ABC increased the S phase cell fraction and induced the formation of gH2AX foci at least in oneout-of-three cell lines. Thereby, the multimodal treatment with 5-aza-dC, IR, and RES or ABC did not change the number of normal neural progenitor cells in murine slice cultures. Conclusions: In conclusion, the radiosensitizing capacities of epigenetic and differentiation-inducing drugs presented here suggest that their adjuvant administration might improve MB therapy. Thereby, the combination of 5-aza-dC/IR with ABC and RES seemed to be the most promising to enhance tumor control without affecting the normal neural precursor cells.
25

Alterungsbedingte Effekte auf DNA-Methylierungsprofile entwicklungsrelevanter Gene in Eizellen und Embryonen am Modellorganismus Bos taurus / Aging-induced effects on DNA methylation profiles of developmental genes in oocytes and embryos on the model organism Bos taurus

Mattern, Felix January 2016 (has links) (PDF)
Die postovulatorische Alterung sowie die ovarielle Alterung konnten bei der Anwendung assistierter Reproduktionstechniken (ARTs) als entscheidende Faktoren identifiziert werden, die den Reproduktionserfolg nachhaltig beeinträchtigen. Die postovulatorische Alterung tritt ein, sobald die reife Eizelle nicht mehr innerhalb ihres physiologischen Zeitfensters befruchtet wird. Die ovarielle Alterung beschreibt hingegen die Abnahme des Follikel-Vorrats mit zunehmendem Alter des weiblichen Individuums bzw. des Ovars. Sowohl die postovulatorische Alterung als auch die ovarielle Alterung führen u.a. zu einer reduzierten Oozytenqualität und einer geringeren Blastozystenrate. Die Zielsetzung dieser Arbeit bestand darin, den Einfluss der postovulatorischen Alterung und der ovariellen Alterung im Holstein-Rind (Bos taurus) auf die DNA-Methylierung entwicklungsrelevanter Gene in Eizellen und Embryonen zu untersuchen. Aus Schlachthof-Ovarien wurden Antralfollikeln unterschiedlicher Größe (<2 mm, 3-5 mm und >6 mm) isoliert. Eizellen aus Follikeln der Größe 3-5 mm wurden für 24h (physiologisch) und 48h (gealtert) in vitro gereift (IVM). Die gereiften Oozyten wurden anschließend in vitro fertilisiert und Embryonen im 4-6 Zellstadium generiert. Sowohl in den unreifen Eizellen aus Antralfollikeln unterschiedlicher Größe als auch in den gereiften Oozyten und den Embryonen wurde die Promotormethylierung der Gene bH19, bSNRPN, bZAR1, bDNMT3A, bOCT4, bDNMT3Lo und bDNMT3Ls analysiert. Zur Untersuchung der ovariellen Alterung wurden mittelgroßen Antralfollikel aus Ovarien lebender Rinder (in vivo) unterschiedlichen Alters (9-12 Monate, 3-7 Jahre und 8-11 Jahre) gewonnen. In den daraus isolierten unreifen Eizellen wurde die DNA-Methylierung der Promotorregionen der Gene bTERF2, bREC8, bBCL-XL, bPISD, bBUB1, bDNMT3Lo, bH19 und bSNRPN bestimmt. Als Methode zur Analyse der Promotormethylierung wurde die Limiting Dilution Bisulfit-Sequenzierung angewendet. In unreifen Eizellen aus Antralfollikeln unterschiedlicher Größe (<2 mm, 3-5 mm und >6 mm) konnte ein erhöhtes Auftreten abnormal methylierter Allele in den geprägten Genen bH19 und bSNRPN von Eizellen kleiner Follikel (<2 mm) identifiziert werden. Dieses Ergebnis könnte eine mögliche Ursache einer bereits bekannten und mehrfach beschriebenen geringeren Entwicklungskompetenz von Eizellen kleiner Follikel (<2 mm) auf epigenetischer Ebene darstellen. Die verlängerte Reifungsdauer der IVM-Eizellen hatte eine signifikante Hypermethylierung in der Promotorregion des Gens DNMT3Lo von 48h-gereiften Eizellen zur Folge. Beim Übergang von 48h-gereiften Eizellen zum Embryo konnte eine signifikante Hypomethylierung von CpG7 des stammzellspezifischen Transkripts DNMT3Ls beobachtet werden. Diese CpG-Stelle wies ebenfalls einen signifikanten Anstieg von CpGs mit nicht-eindeutigem Methylierungszustand in unreifen Eizellen mit steigender Follikelgröße auf. Da sich die CpG-Position innerhalb eines Sequenz-Motivs einer Bindungsstelle des Transkriptionsfaktors CREB befindet, könnten die Methylierungsdaten auf eine Interaktion zwischen dem Transkriptionsfaktor CREB und der DNA-Methylierung während der Entwicklung und Reifung der Eizelle sowie der Transition von der Eizelle zum Embryo hindeuten. Die DNA-Methylierungsprofile der untersuchten Gene in unreifen Eizellen aus Kühen unterschiedlichen Alters (9-12 Monate, 3-7 Jahre und 8-11 Jahre) wiesen keine signifikanten Unterschiede zwischen den Altersgruppen auf. Die ovarielle Alterung bei Rindern zwischen 9 Monaten und 11 Jahren zeigte damit keinen Effekt auf die DNA-Methylierung der untersuchten Promotorregionen der Gene bTERF2, bREC8, bBCL-XL, bPISD, bBUB1, bDNMT3Lo, bH19 und bSNRPN. Nach einer simulierten postovulatorischen Alterung durch eine in vitro Reifung für 48h konnte eine Veränderung der DNA-Methylierung der Oozyten-spezifischen (DNMT3Lo) und Stammzell-spezifischen (DNMT3Ls) Promotoren des katalytisch inaktiven Cofaktors von DNMT3A, DNMT3L, beobachtet werden. Die veränderte DNA-Methylierung von DNMT3Ls tritt dabei erst im frühen Embryo in Erscheinung und interagiert vermutlich mit dem Transkriptionsfaktor CREB. Die Veränderungen von DNMT3Lo in Eizellen und DNMT3Ls in den daraus generierten Embryonen lässt vermuten, dass es sich hierbei um eine dynamische Anpassung des Embryos auf äußere Umweltbedingungen der Eizelle über die Methylierung der DNA handelt. / Postovulatory aging and ovarian aging have been identified as key factors in assisted reproductive techniques (ARTs) and have a lasting effect on reproductive success. Postovulatory aging occurs if the mature egg is not fertilized within its physiological time window. On the other hand, ovarian aging describes the decrease in the follicular reserve with increasing age of the female or the ovary, respectively. Both post-ovulatory aging and ovarian aging result in reduced oocyte quality and lower blastocyst rate. The aim of this thesis was to explore the effects of postovulatory aging and ovarian aging in Holstein cattle (Bos taurus) on the DNA methylation of developmentally important genes in oocytes and embryos. Antral follicles of different sizes (<2 mm, 3-5 mm and> 6 mm) were isolated from slaughterhouse ovaries. Female germ cells from middle-sized follicles (3-5 mm) were matured for 24h (physiological conditions) and 48h (aged conditions) in vitro (IVM). The IVM- oocytes were subsequently fertilized in vitro and embryos at the 4-6 cell stage were generated. Promoter methylation of the genes bH19, bSNRPN, bZAR1, bDNMT3A, bOCT4, bDNMT3Lo and bDNMT3Ls was analysed in immature oocytes from antral follicles of different sizes as well as in matured oocytes and the respective embryos. For studying ovarian aging, middle-sized antral follicles were obtained in vivo from animals of different age groups (9-12 months, 3-7 years and 8-11 years). In the extracted immature gametes, the DNA methylation of the promoter regions of bTERF2, bREC8, bBCL-XL, bPISD, bBUB1, bDNMT3Lo, bH19 and bSNRPN was examined. The limiting dilution bisulfite (pyro)sequencing method was applied to determine the promoter methylation of the candidate genes at the single allele level. In immature oocytes from antral follicles of different diameters (<2 mm, 3-5 mm and> 6 mm) an increased occurrence of abnormally methylated alleles of the imprinted genes bH19 and bSNRPN was identified in small follicles (<2 mm). This failure to establish imprinting could be a possible cause of a well-known reduced developmental potential of small follicles (<2 mm) at the epigenetic level. The extended maturation time of the IVM-oocytes resulted in a significant hypermethylation in the promoter region of DNMT3Lo in 48h matured oocytes. After transition from 48h matured oocytes to embryos, a significant hypomethylation of CpG7 of the stem cell specific transcript DNMT3Ls was detected. The same CpG site showed a significant increase of CpGs with unclear methylation state in immature female germ cells with increasing follicular size. This CpG position is located within a potential binding site of the transcription factor CREB. Thus, the methylation data indicates an interaction between the transcription factor CREB and the DNA methylation during development and maturation of oocytes as well as during transition from the oocyte to the embryo. The DNA methylation profiles of the analysed genes in immature oocytes from cows of different age (9-12 months, 3-7 years and 8-11 years) showed no significant differences between age groups. Hence, the ovarian aging in cattle between 9 months and 11 years caused no effect on the DNA methylation of bTERF2, bREC8, bBCL-XL, bPISD, bBUB1, bDNMT3Lo, bH19 and bSNRPN. After a simulated postovulatory aging by in vitro maturation for 48h, a change in the DNA methylation of the oocyte-specific (DNMT3Lo) and stem cell-specific (DNMT3Ls) promoters of the catalytically inactive DNA-methyltransferase DNMT3L was observed. The altered DNA methylation of DNMT3Ls occurs in the early embryo and probably interacts with the transcription factor CREB. The changes of DNMT3Lo in oocytes and DNMT3Ls in the resulting embryos might represent a dynamic adaptation to external environmental conditions.
26

Role of the histone methyltransferase, Mll2, in embryogenesis and adult mouse

Glaser, Stefan 10 July 2005 (has links) (PDF)
Histone methyltransferases are key players in eukaryotic gene regulation. The goal of this thesis was to study the role of the histone methyltransferase Mll2 in developing embryos and adult mice. Targeting of mouse ES cells with a multipurpose allele and blastocyst injection had previously generated a mouse line allowing analysis of Mll2 function by knock-out and conditional mutagenesis using Cre/loxP. The first part of the thesis comprised the analysis of the Mll2-/- phenotype, and included the cloning of a targeting construct to generate an ubiquitous, ligand-regulated Cre line. In the second part, we did conditional mutagenesis using the Rosa26-CreER(T2) line obtained from collaborators, and achieved complete knock-out of Mll2 in most tissues of embryos, neonates and adult mice. Mll2 is essential during embryonic development, as mutant embryos were severely growth retarded, had significant increases in apoptosis, and failed in gestation between E 9.5 and E11. Conditional removal of Mll2 protein at gastrulation (E 6.5) produced a similar phenotype at E 11. In contrast, the absence of Mll2 function after E 11 did not result in obvious defects at E16 and indicates an essential role for Mll2 between E6 and E11. Indeed, we identified a loss of expression of 3 important developmental regulators in mutants of this developmental stage: Hoxb1, Mox1 and Six3 are candidate targets for Mll2 regulation that encode homeobox type transcription factors involved in specifying cellular identity. We observed correct establishment of their developmental expression patterns, which than decay in Mll2-/- mutants at E9.5. These data concord with and extend current thoughts about the fly orthologue of Mll2, Trithorax, which suggest that it acts as an epigenetic lock in chromatin to maintain expression of certain transcription factors key to respective cellular identities, after their expression patterns have been established. After birth, Mll2 is dispensable in most tissues, as conditional knock out in neonates and adult mice did not produce any pathological findings except infertility of mutant males and females. Histological analysis of testis revealed progressive loss of spermatogonia, associated with increases in apoptosis but without overt proliferation, meiotic or differentiation defects or loss of the supporting Sertoli cells. Consequently, in addition to its regulation of homeotic genes during development, Mll2 is required for the maintenance of various mitotic cell populations including ES cells, embryonal cells and germ cells.
27

Epigenetik in der Schizophrenie und der Einfluss von Histon-Deacetylasen auf die Arbeitsgedächtnisfunktion / Epigenetics in schizophrenia and the influence of histone deacetylases on working memory

Löns, Sebastian 13 October 2015 (has links)
No description available.
28

Understanding H3K36 methyltransferases in mouse embryonic stem cells

Coe Torres, Davi 02 July 2014 (has links) (PDF)
Methylation of histone 3 (H3) at lysine 36 (K36) has been implicated in several biological processes, such as DNA replication, DNA repair, and transcription. To date, at least eight distinct mammalian enzymes have been described to methylate H3K36 in vitro and/or in vivo. In this work, Set2, Nsd1, and Nsd3 Venus tagged proteins were successfully expressed in mouse embryonic stem cells and, then, analyzed by confocal microscopy, mass spectrometry (MS), and chromatin immunoprecipitation sequencing (ChIP-seq). MS analysis revealed that Setd2, Nsd1, and Nsd3 do not associate in protein complexes with each other. Setd2 was associated with RNA polymerase II subunits and two transcription elongation factors (Supt5 and Supt6), whereas Nsd1 associated with the transcription factor Zfx. In contrast, Nsd3 interacted with multiple protein complexes including Kdm1b and Brd4 complexes. Interestingly, Nsd1 and Zfx seem to be bound to chromatin during cell division. ChIP-seq analysis of the H3K36 methyltransferases showed different binding profiles at transcribed genes: Nsd1 binds near the transcription start site (TSS), Setd2 loading starts near the TSS and spreads along the gene body, while, Nsd3 is preferentially enriched at the 5’ and 3’ gene regions. Sequential deletion of PWWP and zinger-finger like domains was achieved to study any possible changes in Nsd1 and Nsd3 function. Deletion of either PHD1-4 or PHD5/C5HCH domains decreased Nsd1 recruitment to chromatin. Particularly, the PHD5/C5HCH were identified as the protein-protein interface for Zfx interaction. In agreement, Zfx knockdown also decreased Nsd1 deposition at the Oct4 and Tcl1 promoter regions. Furthermore, Nsd1 depletion reduced bulk histone H3K36me2 and histone H3K36me3 loading at the coding regions of Oct4, Rif1, Brd2, and Ccnd1. In addition, Nsd1 knockdown led to an increased Zfx deposition at promoters. Our findings suggest Zfx recruits Nsd1 to its target loci, whereas Nsd1 regulates Zfx chromatin release and further contributes to transcription regulation through its H3K36 dimethylase activity. On the other hand, loss of Nsd3’s PHD5/C5HCH or PWWP domains decreased Nsd3 binding to DNA. In addition, we demonstrate that Nsd3 is recruited to target genes in a Brd4-dependent manner. Herein, we provided further insights on how H3K36 methyltransferases are regulated, and how they contribute to changes in the epigenetic landscape in mouse embryonic stem cells.fi
29

Role of the histone methyltransferase, Mll2, in embryogenesis and adult mouse

Glaser, Stefan 12 July 2005 (has links)
Histone methyltransferases are key players in eukaryotic gene regulation. The goal of this thesis was to study the role of the histone methyltransferase Mll2 in developing embryos and adult mice. Targeting of mouse ES cells with a multipurpose allele and blastocyst injection had previously generated a mouse line allowing analysis of Mll2 function by knock-out and conditional mutagenesis using Cre/loxP. The first part of the thesis comprised the analysis of the Mll2-/- phenotype, and included the cloning of a targeting construct to generate an ubiquitous, ligand-regulated Cre line. In the second part, we did conditional mutagenesis using the Rosa26-CreER(T2) line obtained from collaborators, and achieved complete knock-out of Mll2 in most tissues of embryos, neonates and adult mice. Mll2 is essential during embryonic development, as mutant embryos were severely growth retarded, had significant increases in apoptosis, and failed in gestation between E 9.5 and E11. Conditional removal of Mll2 protein at gastrulation (E 6.5) produced a similar phenotype at E 11. In contrast, the absence of Mll2 function after E 11 did not result in obvious defects at E16 and indicates an essential role for Mll2 between E6 and E11. Indeed, we identified a loss of expression of 3 important developmental regulators in mutants of this developmental stage: Hoxb1, Mox1 and Six3 are candidate targets for Mll2 regulation that encode homeobox type transcription factors involved in specifying cellular identity. We observed correct establishment of their developmental expression patterns, which than decay in Mll2-/- mutants at E9.5. These data concord with and extend current thoughts about the fly orthologue of Mll2, Trithorax, which suggest that it acts as an epigenetic lock in chromatin to maintain expression of certain transcription factors key to respective cellular identities, after their expression patterns have been established. After birth, Mll2 is dispensable in most tissues, as conditional knock out in neonates and adult mice did not produce any pathological findings except infertility of mutant males and females. Histological analysis of testis revealed progressive loss of spermatogonia, associated with increases in apoptosis but without overt proliferation, meiotic or differentiation defects or loss of the supporting Sertoli cells. Consequently, in addition to its regulation of homeotic genes during development, Mll2 is required for the maintenance of various mitotic cell populations including ES cells, embryonal cells and germ cells.
30

The Dynamic Epigenome: Analysis of the Distribution of Histone Modifications

Steiner, Lydia 27 June 2013 (has links)
There is a genome in a cell, as everyone knows, but there is also an epigenome. The epigenome regulates the transcription of the underlying genome. In the last decade, it was discovered that the epigenome state and its regulation are important for differentiation and development. Correlation studies with aging samples had led to the hypothesis that misregulation of the epigenome causes aging and cancer. Furthermore, diseases were identified which are caused by errors in the epigenome state and its regulation. Identification of erroneous epigenome states and misregulation requires the prior knowledge of the common state. Several studies aim at measuring epigenome states in different organisms and cell types and thus, provide a huge amount of data. In this dissertation, a pipeline is developed to analyze and characterize histone modifications with respect to different cell types. Application of this pipeline is shown for a published data set of mouse consisting of data for H3K4me3, H3K27me3, and H3K9me3 measured in embryonic stem cells, embryonic fibroblasts and neuronal progenitors. Furthermore, methods for the detection of the epigenetic patterns are presented in this dissertation. Therefore, a segmentation method is developed to segment the genome guided by the data sets. Based on this segmentation, the epigenome states as well as epigenetic variation can be studied. Different visualization methods are developed to highlight the epigenetic patterns in the segmentation data. Application of the segmentation AND visualization methods to the mouse data set had resulted in not only colorful squares but also in biological conclusions! It demonstrate the power of the developed methods. Although the studied data set in this dissertation contains only ordinary tissue cells, the methods are not restricted to study the reference epigenome state. Comparison of normal and disease cells as well as comparison with aged cells are possible with all of the methods. Finally, the methods are compared based on the obtained results. It shows that all methods highlight different aspects of the data. Thus, applying all methods to the same data sets, deep insights into the epigenome in murine embryonic stem cells, embryonic fibroblasts and neuronal progenitor cells are gained. For example, it had been found that several mechanisms exist setting H3K4me3 marks. Furthermore, not all mechanisms are found in all cell types. Strong evidence had been found that catalysis of H3K4me3 and H3K27me3 is coupled.

Page generated in 0.0604 seconds