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Increased sympathetic noradrenergic signaling is crucially involved in fear and anxiety as defensive states. MicroRNAs regulate dynamic gene expression during synaptic plasticity and genetic variation of microRNAs modulating noradrenaline transporter gene (SLC6A2) expression may thus lead to altered central and peripheral processing of fear and anxiety. In silico prediction of microRNA regulation of SLC6A2 was confirmed by luciferase reporter assays and identified hsa-miR-579-3p as a regulating microRNA. The minor (T)-allele of rs2910931 (MAFcases = 0.431, MAFcontrols = 0.368) upstream of MIR579 was associated with panic disorder in patients (pallelic = 0.004, ncases = 506, ncontrols = 506) and with higher trait anxiety in healthy individuals (pASI = 0.029, pACQ = 0.047, n = 3112). Compared to the major (A)-allele, increased promoter activity was observed in luciferase reporter assays in vitro suggesting more effective MIR579 expression and SLC6A2 repression in vivo (p = 0.041). Healthy individuals carrying at least one (T)-allele showed a brain activation pattern suggesting increased defensive responding and sympathetic noradrenergic activation in midbrain and limbic areas during the extinction of conditioned fear. Panic disorder patients carrying two (T)-alleles showed elevated heart rates in an anxiety-provoking behavioral avoidance test (F(2, 270) = 5.47, p = 0.005). Fine-tuning of noradrenaline homeostasis by a MIR579 genetic variation modulated central and peripheral sympathetic noradrenergic activation during fear processing and anxiety. This study opens new perspectives on the role of microRNAs in the etiopathogenesis of anxiety disorders, particularly their cardiovascular symptoms and comorbidities.
mRNA-Abbau ist ein essentieller Prozess der Genexpression, der den Zellen ermöglicht, die Qualität und die Quantität der mRNA zu kontrollieren. Besonders unter Stressbedingungen könnte der mRNA-Abbau eine bedeutende Rolle neben der Speicherung von mRNAs sowie der Regulation der Proteinhomöostase zum Schutz vor schädigenden Einflüssen spielen. Studien mit Hefen und Säugerzellen zeigten, dass dem 5'-3'mRNA-Abbau ein wichtige Rolle sowohl unter normalen Bedingungen als auch unter Stressbedingungen zukommt und dieser in zytoplasmatischen Processing bodies (P-bodies) stattfindet. Im Rahmen dieser Arbeit sollten Erkenntnisse über den 5'-3'mRNA-Abbau erhalten werden. Im Vordergrund stand die Frage nach der Existenz von P-bodies in Arabidopsis thaliana und die Identifikation und Charakterisierung deren Komponenten. Weiterhin sollten Erkenntnisse über die Rolle der P-bodies unter Stressbedingungen gewonnen werden. Dabei sollten besonders Informationen über die Beziehungen zwischen den P-bodies und RNA Stressgranula (mRNA Speicherkompartimente) und Hitzestressgranula (Regulation der Proteinhomöostase) erhalten werden. Das komplette sequenzierte Genom von Arabidopsis thaliana eignete sich zur Identifikation von mRNA-Abbauproteine kodierender Gene. Unter Verwendung von Aminosäuresequenzen bereits bekannter mRNA-Abbauproteine aus Hefe und Säugerzellen konnten Homologe für die Decappingproteine Dcp1 und Dcp2 sowie für die Proteine LSm1,2,5,8 als Untereinheiten des LSm1-7 Komplexes, welcher an der Regulation der Decappingreaktion beteiligt ist, identifiziert werden. Über Hefe-Zwei-Hybrid Analysen konnten anschließend Protein-Protein-Interaktionen zwischen den untersuchten Proteinen identifiziert werden. Weiterhin konnte unter Einsatz der BIFC-Analyse gezeigt werden, dass die Interaktionen zwischen den untersuchten Proteinen hauptsächlich in zytoplasmatischen Strukturen stattfanden. Aufbauend auf diesen Befunden wurde ein Antikörper gegen Dcp1 als Marker für die zytoplasmatischen Strukturen erstellt. Dieser ermöglichte erstmals die Detektion der endogenen Strukturen in Arabidopsis thaliana. Die weitere Charakterisierung über Immunofluoreszenzanalysen zeigten, dass diese P-bodies sind. Wie die P-bodies anderer Organismen sind sie hochdynamisch und benötigen untranslatierte mRNA für die Assemblierung. Die Größe und Anzahl der P-bodies hängt dabei vom Verhältniss des Zuflusses von mRNA und der mRNA-Abbaurate ab. Weiterhin konnte beobachtet werden, das die P-bodies besonders groß unter Stressbedingungen sind und deuten eine wichtige Funktion des mRNA-Abbaus unter Stress an. Dies führte zu der Frage nach der Beziehung der P-bodies zu RNA Stressgranula, die der Speicherung von mRNA unter Stressbedingungen dienen, sowie zu Hitzestressgranula, die an der Aufrechterhaltung der Proteinhomöostase beteiligt sind. Durch Kolokalisationsanalysen mit Markern der RNA Stressgranula, der Hitzestressgranula und der P-bodies konnte erstmals gezeigt werden, dass es sich um voneinander unabhängige Mikrokompartimente handelt, und dass unter Stressbedingungen die zellulären Prozesse mRNA-Abbau, mRNA-Speicherung und Aufrechterhaltung der Proteinhomöostase auf einzelne Mikrkompartimente beschränkt sind. Allerdings konnte zwischen P-bodies und RNA Stressgranula häufig eine räumliche Nähe beobachtet werden. Dies deutet auf einen Austausch von Komponenten zwischen diesen Strukturen hin. Zusammen zeigen die erhaltenen Ergebnisse, dass die identifizierten Proteine Komponenten des 5'-3'mRNA-Abbaus darstellen, und dass der 5'-3'mRNA-Abbau in Pflanzen auch in P-bodies stattfindet. Die Identifizierung und Charakterisierung der pflanzlichen P-bodies bildet eine Grundlage für zukünftige Untersuchungen. Vor allem die massive Bildung von P-bodies unter Stressbedingungen und die Interaktion der P-bodies mit RNA Stressgranula zeigen neue Aspekte der pflanzlichen Hitzestressantwort auf.
Background: The branched chain alcohol isobutanol exhibits superior physicochemical properties as an alternative biofuel. The yeast Saccharomyces cerevisiae naturally produces low amounts of isobutanol as a by-product during fermentations, resulting from the catabolism of valine. As S. cerevisiae is widely used in industrial applications and can easily be modified by genetic engineering, this microorganism is a promising host for the fermentative production of higher amounts of isobutanol.
Results: Isobutanol production could be improved by re-locating the valine biosynthesis enzymes Ilv2, Ilv5 and Ilv3 from the mitochondrial matrix into the cytosol. To prevent the import of the three enzymes into yeast mitochondria, N-terminally shortened Ilv2, Ilv5 and Ilv3 versions were constructed lacking their mitochondrial targeting sequences. SDS-PAGE and immunofluorescence analyses confirmed expression and re-localization of the truncated enzymes. Growth tests or enzyme assays confirmed enzymatic activities. Isobutanol production was only increased in the absence of valine and the simultaneous blockage of the mitochondrial valine synthesis pathway. Isobutanol production could be even more enhanced after adapting the codon usage of the truncated valine biosynthesis genes to the codon usage of highly expressed glycolytic genes. Finally, a suitable ketoisovalerate decarboxylase, Aro10, and alcohol dehydrogenase, Adh2, were selected and overexpressed. The highest isobutanol titer was 0.63 g/L at a yield of nearly 15 mg per g glucose.
Conclusion: A cytosolic isobutanol production pathway was successfully established in yeast by re-localization and optimization of mitochondrial valine synthesis enzymes together with overexpression of Aro10 decarboxylase and Adh2 alcohol dehydrogenase. Driving forces were generated by blocking competition with the mitochondrial valine pathway and by omitting valine from the fermentation medium. Additional deletion of pyruvate decarboxylase genes and engineering of co-factor imbalances should lead to even higher isobutanol production.
Myocardial infarction (MI) induces a complex inflammatory immune response, followed by the remodelling of the heart muscle and scar formation. The rapid regeneration of the blood vessel network system by the attraction of hematopoietic stem cells is beneficial for heart function. Despite the important role of chemokines in these processes, their use in clinical practice has so far been limited by their limited availability over a long time-span in vivo. Here, a method is presented to increase physiological availability of chemokines at the site of injury over a defined time-span and simultaneously control their release using biodegradable hydrogels. Two different biodegradable hydrogels were implemented, a fast degradable hydrogel (FDH) for delivering Met-CCL5 over 24 hrs and a slow degradable hydrogel (SDH) for a gradual release of protease-resistant CXCL12 (S4V) over 4 weeks. We demonstrate that the time-controlled release using Met-CCL5-FDH and CXCL12 (S4V)-SDH suppressed initial neutrophil infiltration, promoted neovascularization and reduced apoptosis in the infarcted myocardium. Thus, we were able to significantly preserve the cardiac function after MI. This study demonstrates that time-controlled, biopolymer-mediated delivery of chemokines represents a novel and feasible strategy to support the endogenous reparatory mechanisms after MI and may compliment cell-based therapies.
Bericht der Arbeitsgruppe Technik zur Vorbereitung des Programms "Retrospektive Digitalisierung von Bibliotheksbeständen" im Förderbereich "Verteilte Digitale Forschungsbibliothek" Arbeitssitzungen am 14. Mai 1996 (Frankfurt a. M.), 29.-30. Juli 1996 (München), 12.-13. Dezember 1996 (Göttingen) Mitglieder der Arbeitsgruppe: Prof. Dr. Rudolf Bayer, Technische Universität München, Fakultät für Informatik Dr. Jürgen Bunzel, Deutsche Forschungsgemeinschaft, Bonn Dr. Marianne Dörr, Bayerische Staatsbibliothek München Dr. Reinhard Ecker, Beilstein-Institut bzw. ABC Datenservice GmbH, Frankfurt/Main Dipl.-Math. Heinz-Werner Hoffmann, Hochschulbibliothekszentrum NRW, Köln (als Gast für die AG der Verbundsysteme) Dr. Norbert Lossau, Niedersächsische Staats- und Universitätsbibliothek Göttingen (DFG-Projekt ‘Verteilte Digitale Forschungsbibliothek’) Prof. Dr. Elmar Mittler, Niedersächsische Staats- und Universitätsbibliothek Göttingen Dipl.-Inf. Christian Mönch, FB Informatik der J.W. Goethe-Universität Frankfurt Dr. Wilhelm R. Schmidt, Stadt- und Universitätsbibliothek Frankfurt Dr. Hartmut Weber, Landesarchivdirektion, Stuttgart
A wide variety of enzymatic pathways that produce specialized metabolites in bacteria, fungi and plants are known to be encoded in biosynthetic gene clusters. Information about these clusters, pathways and metabolites is currently dispersed throughout the literature, making it difficult to exploit. To facilitate consistent and systematic deposition and retrieval of data on biosynthetic gene clusters, we propose the Minimum Information about a Biosynthetic Gene cluster (MIBiG) data standard.
The electron-capture process was studied for Xe54+ colliding with H2 molecules at the internal gas target of the Experimental Storage Ring (ESR) at GSI, Darmstadt. Cross-section values for electron capture into excited projectile states were deduced from the observed emission cross section of Lyman radiation, being emitted by the hydrogenlike ions subsequent to the capture of a target electron. The ion beam energy range was varied between 5.5 and 30.9 MeV/u by applying the deceleration mode of the ESR. Thus, electron-capture data were recorded at the intermediate and, in particular, the low-collision-energy regime, well below the beam energy necessary to produce bare xenon ions. The obtained data are found to be in reasonable qualitative agreement with theoretical approaches, while a commonly applied empirical formula significantly overestimates the experimental findings.
An experiment addressing electron capture (EC) decay of hydrogen-like 142Pm60+ions has been conducted at the experimental storage ring (ESR) at GSI. The decay appears to be purely exponential and no modulations were observed. Decay times for about 9000 individual EC decays have been measured by applying the single-ion decay spectroscopy method. Both visually and automatically analysed data can be described by a single exponential decay with decay constants of 0.0126(7)s−1 for automatic analysis and 0.0141(7)s−1 for manual analysis. If a modulation superimposed on the exponential decay curve is assumed, the best fit gives a modulation amplitude of merely 0.019(15), which is compatible with zero and by 4.9 standard deviations smaller than in the original observation which had an amplitude of 0.23(4).
The radiative electron capture (REC) into the K shell of bare Xe ions colliding with a hydrogen gas target has been investigated. In this study, the degree of linear polarization of the K-REC radiation was measured and compared with rigorous relativistic calculations as well as with the previous results recorded for U92+. Owing to the improved detector technology, a significant gain in precision of the present polarization measurement is achieved compared to the previously published results. The obtained data confirms that for medium-Z ions such as Xe, the REC process is a source of highly polarized x rays which can easily be tuned with respect to the degree of linear polarization and the photon energy. We argue, in particular, that for relatively low energies the photons emitted under large angles are almost fully linear polarized.