TY - JOUR A1 - Blömer, Nadja A1 - Pachel, Christina A1 - Hofmann, Urlich A1 - Nordbeck, Peter A1 - Bauer, Wolfgang A1 - Mathes, Denise A1 - Frey, Anna A1 - Bayer, Barbara A1 - Vogel, Benjamin A1 - Ertl, Georg T1 - 5-Lipoxygenase facilitates healing after myocardial infarction JF - Basic Research in Cardiology N2 - Early healing after myocardial infarction (MI) is characterized by a strong inflammatory reaction. Most leukotrienes are pro-inflammatory and are therefore potential mediators of healing and remodeling after myocardial ischemia. The enzyme 5-lipoxygenase (5-LOX) has a key role in the transformation of arachidonic acid in leukotrienes. Thus, we tested the effect of 5-LOX on healing after MI. After chronic coronary artery ligation, early mortality was significantly increased in 5-LOX\(^{−/−}\) when compared to matching wildtype (WT) mice due to left ventricular rupture. This effect could be reproduced in mice treated with the 5-LOX inhibitor Zileuton. A perfusion mismatch due to the vasoactive potential of leukotrienes is not responsible for left ventricular rupture since local blood flow assessed by magnetic resonance perfusion measurements was not different. However, after MI, there was an accentuation of the inflammatory reaction with an increase of pro-inflammatory macrophages. Yet, mortality was not changed in chimeric mice (WT vs. 5-LOX\(^{−/−}\) bone marrow in 5-LOX\(^{−/−}\) animals), indicating that an altered function of 5-LOX\(^{−/−}\) inflammatory cells is not responsible for the phenotype. Collagen production and accumulation of fibroblasts were significantly reduced in 5-LOX\(^{−/−}\) mice in vivo after MI. This might be due to an impaired migration of 5-LOX\(^{−/−}\) fibroblasts, as shown in vitro to serum. In conclusion, a lack or inhibition of 5-LOX increases mortality after MI because of healing defects. This is not mediated by a change in local blood flow, but through an altered inflammation and/or fibroblast function. KW - lipoxygenase KW - myocardial infarction KW - extracellular matrix remodeling KW - inflammation Y1 - 2013 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-132602 VL - 108 IS - 4 ER - TY - JOUR A1 - Vogel, Benjamin A1 - Löschberger, Anna A1 - Sauer, Markus A1 - Hock, Robert T1 - Cross-linking of DNA through HMGA1 suggests a DNA scaffold N2 - Binding of proteins to DNA is usually considered 1D with one protein bound to one DNA molecule. In principle, proteins with multiple DNA binding domains could also bind to and thereby cross-link different DNA molecules. We have investigated this possibility using high-mobility group A1 (HMGA1) proteins, which are architectural elements of chromatin and are involved in the regulation of multiple DNA-dependent processes. Using direct stochastic optical reconstruction microscopy (dSTORM), we could show that overexpression of HMGA1a-eGFP in Cos-7 cells leads to chromatin aggregation. To investigate if HMGA1a is directly responsible for this chromatin compaction we developed a DNA cross-linking assay. We were able to show for the first time that HMGA1a can cross-link DNA directly. Detailed analysis using point mutated proteins revealed a novel DNA cross-linking domain. Electron microscopy indicates that HMGA1 proteins are able to create DNA loops and supercoils in linearized DNA confirming the cross-linking ability of HMGA1a. This capacity has profound implications for the spatial organization of DNA in the cell nucleus and suggests cross-linking activities for additional nuclear proteins. KW - DNA Y1 - 2011 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-68865 ER - TY - THES A1 - Vogel, Benjamin T1 - Organisation von Chromatin durch HMGA1 Proteine T1 - Organisation of chromatin through HMGA1 proteins N2 - HMGA1 Proteine sind kleine, basische, Nicht-Histon Proteine, die in Lösung keine Struktur aufweisen, durch drei AT-Haken, als DNA-Bindungsmotive, gekennzeichnet sind und präferentiell an die kleine Furche der DNA binden. Als differenziell exprimierte Architekturelemente des Chromatins erfüllen sie wichtige Funktionen bei der Regulation DNA abhängiger Prozesse in Zellen und während Entwicklungsprozessen. Aberrante Expressionen führen zu Entwicklungsdefekten und Krebs. In dieser Arbeit wurde der Einfluss von HMGA1 Proteinen auf die Organisation des Chromatins untersucht. Als Modell diente dabei zunächst die Differenzierung von C2C12 Muskelvorläuferzellen. Wie in einer früheren Arbeit gezeigt wurde, ist die Herunterregulation von HMGA1a essentiell für den Eintritt von C2C12 Zellen in die Myogenese. Eine konstante Überexpression von HMGA1a-eGFP hingegen verhindert die Muskeldifferenzierung durch Beeinflussung der Expression myogenesespezifischer Gene und Etablierung einer stabilen Chromatinstruktur. Wie in der vorliegenden Arbeit herausgefunden wurde, nimmt die differenzielle HMGA1a Expression nicht nur Einfluss auf die Expression muskelspezifischer Gene, sondern auch auf die globale Zusammensetzung des Chromatins durch eine reduzierte Expression von H1 Histonen und einer aberranten Expression von HMGB1, HMGN1 und HP1 Proteinen. HMGA1a wurde zusammen mit ORC Proteinen eine Funktion bei der Definition von Replikationsursprüngen in eukaryotischen Zellen zugesprochen. ORC Proteine wurden auch als Komponenten des Heterochromatins und als Interaktionspartner von HP1α identifiziert. Hier konnte mit Hilfe von Co-Immunpräzipitationen, Pull-down Assays und Verdrängungsexperimenten gezeigt werden, dass HMGA1 ein weiterer, direkter Interaktionspartner von ORC Proteinen im Heterochromatin ist und zusammen mit HP1α kooperiert. Pull-down-, Verdrängungs- und siRNA-Experimente zeigten zudem, dass HMGA1 zwar nicht direkt mit HP1α interagiert, die Kooperation der Proteine über ORC aber dennoch wichtig für die Aufrechterhaltung der Heterochromatinsstruktur ist. Damit erweisen sich HMGA1 Proteine als wichtige Stabilisierungsfaktoren des Heterochromatins. Bislang ging man davon aus, dass HMGA1 Moleküle linear, also eindimensional, an ein DNA Molekül binden. Das Vorhandensein von drei DNA-Bindungsmotiven und die eher struktur- als sequenzabhängige Bindung an die DNA lassen vermuten, dass HMGA1 Proteine auch gleichzeitig an benachbarte DNA-Stränge, also auch dreidimensional, binden könnten. Bekräftigt wurde diese Vermutung durch die Bildung von Chromatinaggregaten in Zellen die HMGA1a-eGFP überexprimierten. Dies wurde mittels konfokaler und hochauflösender Mikroskopie (dSTORM) analysiert. Um das Potential einer DNA-Quervernetzung durch HMGA1 Proteine nachzuweisen, wurde eine neue Methode entwickelt. Mit Hilfe eines neuartigen DNA Cross-linking Assays wurde nachgewiesen, dass HMGA1 Proteine in der Lage sind, zwei individuelle DNA Stränge zu vernetzen. Zudem wurde eine neue Domäne in HMGA1 entdeckt die maßgeblich zum Cross-linking beiträgt. Elektronenmikroskopische Analysen bestätigten, dass HMGA1 Proteine in der Lage sind Kreuzungen und Schleifen in DNA Molekülen zu erzeugen. Diese Ergebnisse unterstützen die Vermutung, dass HMGA1 Proteine im Zellkern ein DNA Gerüst bilden können, das Einfluss auf die zelltypische Chromatinorganisation nimmt und dadurch DNA abhängige Prozesse beeinflusst. In wie weit eine HMGA1 induzierte DNA Quervernetzung in vivo zum Beispiel in Chromozentren von C2C12 Zellen oder in Krebszellen, in denen HMGA1 Proteine stark überexprimiert sind, eine Rolle spielen, müssen künftige Untersuchungen zeigen. In dieser Arbeit konnte also gezeigt werden, dass HMGA1 Proteine die Chromatinstruktur auf drei Ebenen organisieren können: Durch Beeinflussung der Chromatinzusammensetzung durch Veränderung der Expression von Chromatinproteinen, durch Interaktion mit anderen Architekturelementen des Chromatins und durch Organisation eines potentiellen DNA Gerüsts. N2 - HMGA1 proteins are small basic non-histone proteins characterized by three DNA binding domains, the AT-hooks, which bind to the minor groove of DNA. As differentially expressed architectural chromatin proteins, they perform important functions in the regulation of DNA dependent processes and in development. Aberrant expression leads to developmental defects and cancer. In this thesis the influence of HMGA1 proteins on chromatin organization is investigated. Initially C2C12 myogenic precursor cells were studied, which can be differentiated to myotubes. Previously it had been shown that down-regulation of HMGA1 proteins is crucial for the initiation of myogenic differentiation. Constant over-expression of HMGA1a-eGFP prevents myogenic differentiation by influencing the expression of myogenic genes and by the establishment of a stable chromatin structure. Here it was shown that the differential HMGA1 expression does not only influence the expression of myogenic specific genes but also affects total chromatin composition. This was shown by reduced and aberrant expression of chromatin proteins such as histone H1, HMGB1, HMGN1 and HP1 proteins. Recently it was demonstrated that HMGA1 together with ORC proteins function in origin definition in eukaryotic cells. ORC proteins were also identified as components of heterochromatin and direct interaction partners of HP1α. Here, it was shown by co-immunoprecipitation, pull-down assays, siRNA and displacement experiments that HMGA1 proteins can interact with ORC proteins directly and that they can cooperate with HP1α in heterochromatin. It could be shown that HP1α indeed does not directly interact with HMGA1 but together with ORC proteins is relevant for heterochromatin maintenance. Thus HMGA1 proteins turned out to be important stabilizers of heterochromatin. Until recently it was thought that HMGA1 proteins bind DNA collinearly. In principle the three independent DNA binding AT-hooks of HMGA1 also suggest a concomitant binding to neighboring DNA strands, which could lead to a three dimensional stabilization of DNA. This assumption was affirmed by the occurrence of chromatin aggregates in HMGA1a-eGFP overexpressing cells, which was analyzed by confocal and high resolution (dSTORM) microscopy. By using a newly developed DNA cross-linking assay, which allows the analysis of a DNA crosslinking capability of a protein, it was proven that HMGA1 proteins can bind two individual DNA fibers simultaneously. Furthermore a novel domain in HMGA1 proteins was discovered which is significantly involved in the DNA cross-linking. Electron microscopic analyses confirmed that HMGA1 proteins can specifically generate crossings and loops in DNA molecules. These results support the assumption that HMGA1 proteins can create a DNA scaffold that has influence on cell typical chromatin organization and possibly also affects DNA dependent processes. To what extent HMGA1 induced DNA cross-linking plays a role in vivo, for example in the organization of chromocenters of C2C12 cells or in cancer cells, where HMGA1 proteins are over-expressed, will need to be elucidated in further experiments In summary, this work shows, that HMGA1 proteins influence chromatin structure and composition by affecting the expression of chromatin proteins, by interacting with other architectural chromatin proteins or by producing a higher organization of chromatin on its own. KW - Chromatin KW - HMG-Proteine KW - HMGA1 KW - Chromatin KW - dSTORM KW - HMGA1 KW - Chromatin KW - dSTORM Y1 - 2011 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-65295 ER - TY - JOUR A1 - Brocher, Jan A1 - Vogel, Benjamin A1 - Hock, Robert T1 - HMGA1 down-regulation is crucial for chromatin composition and a gene expression profile permitting myogenic differentiation N2 - Background: High mobility group A (HMGA) proteins regulate gene transcription through architectural modulation of chromatin and the formation of multi-protein complexes on promoter/enhancer regions. Differential expression of HMGA variants has been found to be important for distinct differentiation processes and deregulated expression was linked to several disorders. Here we used mouse C2C12 myoblasts and C2C12 cells stably over-expressing HMGA1a-eGFP to study the impact of deregulated HMGA1 expression levels on cellular differentiation. Results: We found that induction of the myogenic or osteogenic program of C2C12 cells caused an immediate down-regulation of HMGA1. In contrast to wild type C2C12 cells, an engineered cell line with stable overexpression of HMGA1a-eGFP failed to differentiate into myotubes. Immunolocalization studies demonstrated that sustained HMGA1a-eGFP expression prevented myotube formation and chromatin reorganization that normally accompanies differentiation. Western Blot analyses showed that elevated HMGA1a-eGFP levels affected chromatin composition through either down-regulation of histone H1 or premature expression of MeCP2. RT-PCR analyses further revealed that sustained HMGA1a expression also affected myogenic gene expression and caused either down-regulation of genes such as MyoD, myogenin, Igf1, Igf2, Igfbp1-3 or up-regulation of the transcriptional repressor Msx1. Interestingly, siRNA experiments demonstrated that knock-down of HMGA1a was required and sufficient to reactivate the myogenic program in induced HMGA1a over-expressing cells. Conclusions: Our data demonstrate that HMGA1 down-regulation after induction is required to initiate the myogenic program in C2C12 cells. Sustained HMGA1a expression after induction prevents expression of key myogenic factors. This may be due to specific gene regulation and/or global effects on chromatin. Our data further corroborate that altered HMGA1 levels influence the expression of other chromatin proteins. Thus, HMGA1 is able to establish a specific chromatin composition. This work contributes to the understanding of how differential HMGA1 expression is involved in chromatin organization during cellular differentiation processes and it may help to comprehend effects of HMGA1 over-expression occurring in malign or benign tumours. KW - HMG-Proteine KW - High mobility group Y1 - 2010 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:bvb:20-opus-67914 ER -