3 resultados para Vladimir Mayakovsky

em Universitätsbibliothek Kassel, Universität Kassel, Germany


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Eukaryotic DNA m5C methyltransferases (MTases) play a major role in many epigenetic regulatory processes like genomic imprinting, X-chromosome inactivation, silencing of transposons and gene expression. Members of the two DNA m5C MTase families, Dnmt1 and Dnmt3, are relatively well studied and many details of their biological functions, biochemical properties as well as interaction partners are known. In contrast, the biological functions of the highly conserved Dnmt2 family, which appear to have non-canonical dual substrate specificity, remain enigmatic despite the efforts of many researchers. The genome of the social amoeba Dictyostelium encodes Dnmt2-homolog, the DnmA, as the only DNA m5C MTase which allowed us to study Dnmt2 function in this organism without interference by the other enzymes. The dnmA gene can be easily disrupted but the knock-out clones did not show obvious phenotypes under normal lab conditions, suggesting that the function of DnmA is not vital for the organism. It appears that the dnmA gene has a low expression profile during vegetative growth and is only 5-fold upregulated during development. Fluorescence microscopy indicated that DnmA-GFP fusions were distributed between both the nucleus and cytoplasm with some enrichment in nuclei. Interestingly, the experiments showed specific dynamics of DnmA-GFP distribution during the cell cycle. The proteins colocalized with DNA in the interphase and were mainly removed from nuclei during mitosis. DnmA functions as an active DNA m5C MTase in vivo and is responsible for weak but detectable DNA methylation of several regions in the Dictyostelium genome. Nevertheless, gel retardation assays showed only slightly higher affinity of the enzyme to dsDNA compared to ssDNA and no specificity towards various sequence contexts, although weak but detectable specificity towards AT-rich sequences was observed. This could be due to intrinsic curvature of such sequences. Furthermore, DnmA did not show denaturant-resistant covalent complexes with dsDNA in vitro, although it could form covalent adducts with ssDNA. Low binding and methyltransfer activity in vitro suggest the necessity of additional factor in DnmA function. Nevertheless, no candidates could be identified in affinity purification experiments with different tagged DnmA fusions. In this respect, it should be noted that tagged DnmA fusion preparations from Dictyostelium showed somewhat higher activity in both covalent adduct formation and methylation assays than DnmA expressed in E.coli. Thus, the presence of co-purified factors cannot be excluded. The low efficiency of complex formation by the recombinant enzyme and the failure to define interacting proteins that could be required for DNA methylation in vivo, brought up the assumption that post-translational modifications could influence target recognition and enzymatic activity. Indeed, sites of phosphorylation, methylation and acetylation were identified within the target recognition domain (TRD) of DnmA by mass spectrometry. For phosphorylation, the combination of MS data and bioinformatic analysis revealed that some of the sites could well be targets for specific kinases in vivo. Preliminary 3D modeling of DnmA protein based on homology with hDNMT2 allowed us to show that several identified phosphorylation sites located on the surface of the molecule, where they would be available for kinases. The presence of modifications almost solely within the TRD domain of DnmA could potentially modulate the mode of its interaction with the target nucleic acids. DnmA was able to form denaturant-resistant covalent intermediates with several Dictyostelium tRNAs, using as a target C38 in the anticodon loop. The formation of complexes not always correlated with the data from methylation assays, and seemed to be dependent on both sequence and structure of the tRNA substrate. The pattern, previously suggested by the Helm group for optimal methyltransferase activity of hDNMT2, appeared to contribute significantly in the formation of covalent adducts but was not the only feature of the substrate required for DnmA and hDNMT2 functions. Both enzymes required Mg2+ to form covalent complexes, which indicated that the specific structure of the target tRNA was indispensable. The dynamics of covalent adduct accumulation was different for DnmA and different tRNAs. Interestingly, the profiles of covalent adduct accumulation for different tRNAs were somewhat similar for DnmA and hDNMT2 enzymes. According to the proposed catalytic mechanism for DNA m5C MTases, the observed denaturant-resistant complexes corresponded to covalent enamine intermediates. The apparent discrepancies in the data from covalent complex formation and methylation assays may be interpreted by the possibility of alternative pathways of the catalytic mechanism, leading not to methylation but to exchange or demethylation reactions. The reversibility of enamine intermediate formation should also be considered. Curiously, native gel retardation assays showed no or little difference in binding affinities of DnmA to different RNA substrates and thus the absence of specificity in the initial enzyme binding. The meaning of the tRNA methylation as well as identification of novel RNA substrates in vivo should be the aim of further experiments.

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In this work, we present an atomistic-continuum model for simulations of ultrafast laser-induced melting processes in semiconductors on the example of silicon. The kinetics of transient non-equilibrium phase transition mechanisms is addressed with MD method on the atomic level, whereas the laser light absorption, strong generated electron-phonon nonequilibrium, fast heat conduction, and photo-excited free carrier diffusion are accounted for with a continuum TTM-like model (called nTTM). First, we independently consider the applications of nTTM and MD for the description of silicon, and then construct the combined MD-nTTM model. Its development and thorough testing is followed by a comprehensive computational study of fast nonequilibrium processes induced in silicon by an ultrashort laser irradiation. The new model allowed to investigate the effect of laser-induced pressure and temperature of the lattice on the melting kinetics. Two competing melting mechanisms, heterogeneous and homogeneous, were identified in our big-scale simulations. Apart from the classical heterogeneous melting mechanism, the nucleation of the liquid phase homogeneously inside the material significantly contributes to the melting process. The simulations showed, that due to the open diamond structure of the crystal, the laser-generated internal compressive stresses reduce the crystal stability against the homogeneous melting. Consequently, the latter can take a massive character within several picoseconds upon the laser heating. Due to the large negative volume of melting of silicon, the material contracts upon the phase transition, relaxes the compressive stresses, and the subsequent melting proceeds heterogeneously until the excess of thermal energy is consumed. A series of simulations for a range of absorbed fluences allowed us to find the threshold fluence value at which homogeneous liquid nucleation starts contributing to the classical heterogeneous propagation of the solid-liquid interface. A series of simulations for a range of the material thicknesses showed that the sample width we chosen in our simulations (800 nm) corresponds to a thick sample. Additionally, in order to support the main conclusions, the results were verified for a different interatomic potential. Possible improvements of the model to account for nonthermal effects are discussed and certain restrictions on the suitable interatomic potentials are found. As a first step towards the inclusion of these effects into MD-nTTM, we performed nanometer-scale MD simulations with a new interatomic potential, designed to reproduce ab initio calculations at the laser-induced electronic temperature of 18946 K. The simulations demonstrated that, similarly to thermal melting, nonthermal phase transition occurs through nucleation. A series of simulations showed that higher (lower) initial pressure reinforces (hinders) the creation and the growth of nonthermal liquid nuclei. For the example of Si, the laser melting kinetics of semiconductors was found to be noticeably different from that of metals with a face-centered cubic crystal structure. The results of this study, therefore, have important implications for interpretation of experimental data on the kinetics of melting process of semiconductors.

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In dieser Arbeit wurde die DNA Methyltransferase 2 aus Dictyostelium discoideum strukturell und funktionell untersucht. Sie vermittelt die Methylierung des Cytosin an Position 38 nahe des Anticodons der tRNAAsp (Goll et al., 2006; Müller et al., 2013). Jedoch ist die biologische Funktion dieser Methylierung bis heute nicht hinreichend geklärt. In der Vergangenheit konnten erhebliche Unterschiede in der in vivo- und in vitro-Methylierungsaktivität von DnmA, dem Dnmt2-Homolog aus D. discoideum, beobachtet werden. So wurde bis jetzt ausschließlich tRNAAsp als in vivo-Substrat des Proteins identifiziert. In vitro methyliert rekombinant gewonnenes DnmA aus E. coli allerdings auch Transkripte der tRNAGlu und tRNAGly (Müller et al., 2013). Aus diesem Grund sollten in dieser Arbeit posttranslationaler Proteinmodifikationen von DnmA identifiziert werden. Diese können an dem Protein aus D. discoideum, jedoch nicht oder verändert an dem Protein aus E. coli auftreten und deshalb zu einer abweichenden Methylierungsaktivität von DnmA führen. Es konnte gezeigt werden, dass DnmA aus D. discoideum isoliert, zahlreiche Proteinmodifikationen aufweist, wobei elf Methylierungen, drei Phosphorylierungen und drei Acetylierungen identifiziert werden konnten. Die als methyliert identifizierten Aminosäuren K205, K236, K276 und R341 und die phosphorylierte Aminosäure T239 wurden detaillierter untersucht. Dazu wurden sie jeweils zu Alanin mutiert. Keine der Aminosäureaustausch-mutationen führte zu einem erheblichen Strukturverlust des Proteins und alle Proteine zeigten in vitro-Methylierungsaktivität mit tRNAAsp, tRNAGlu und tRNAGly. Die Mutations-proteine DnmAK276A und R341A wurden überdies in vivo untersucht und zeigten eine verringerte Methylierungsaktivität. Diese Ergebnisse liefern erste Hinweise darauf, dass posttranslationale Proteinmodifikationen die Aktivität von DnmA in vivo beeinflussen könnten. Außerdem konnte gezeigt werden, dass auch DnmA, welches in D. discoideum überexprimiert und daraus gereinigt wurde, in vitro-Methylierungsaktivität mit tRNAGly besitzt. Da tRNAGly kein Substrat für DnmA in vivo darstellt (Müller et al., 2013), konnte dadurch nachgewiesen werden, dass das Protein, auch wenn es in D. discoideum exprimiert wird, in vivo und in vitro abweichende Substratspezifität aufweist. Weiterhin wurde versucht, Protein-Interaktionspartner von DnmA zu identifizieren. Mittels Immunpräzipitation und anschließender massenspektrometrischer Analyse konnten eine Vielzahl von Kandidaten identifiziert werden. Erste Versuche, die Ergebnisse zu verifizieren, zeigten allerdings keine Bestätigung der direkten Interaktion der Proteine CulB, CulE und Nola1 mit DnmA. Wie in vorherigen Untersuchungen (Dissertation Vladimir Maksimov, 2010; Dissertation Sara Müller, 2011), konnten auch im Rahmen dieser Arbeit keine direkt mit DnmA assoziierten Proteine in D. discoideum identifiziert werden. Im dritten Projekt der vorliegenden Arbeit wurde ein Zusammenhang zwischen der DnmA-vermittelten tRNA-Methylierung am C38 und einer weiteren tRNA-Modifikation, Queuosin an Position 34, gezeigt. Die Methylierung der tRNAAsp durch DnmA war signifikant erhöht, wenn das Nährmedium von D. discoideum mit Queuin supplementiert wurde. Allerdings ist Queuosin für die DnmA-vermittelte tRNA-Methylierung nicht unabdingbar. In vivo konnte nach Überexpression von DnmA ebenfalls eine Queuosin-unabhängige tRNAAsp-Methylierung detektiert werden. Weiterhin wurde gezeigt, dass Queuosin-enthaltende tRNAs kein generelles Substrat für DnmA darstellen. Nach Gabe von Queuin wiesen die anderen Queuosin-enthaltenden tRNAs tRNAAsn, tRNAHis und tRNATyr keine Methylierung putativer DnmA-targets auf. Auch an tRNAGlu und tRNAGly konnte unter diesen Bedingungen keine in vivo-Methylierung des C38 bzw. C37 gezeigt werden. Weiterhin wurden erste Untersuchungen zur Bestimmung der Funktion der DnmA-vermittelten Methylierung in Zusammenhang mit der Queuosin-Modifikation durchgeführt. Bereits 1985 wurde beschrieben, dass Queuin im Nährmedium die tRNA-Menge von tRNAAsp und tRNATyr in Wildtyp Dictyostelium-Zellen um das Zweifache erhöht (Ott and Kersten, 1985). Hier konnten diese Ergebnisse bestätigt und außerdem gezeigt werden, dass dieser Effekt in einem dnmA- -Stamm nicht auftritt. Interessanterweise stellte tRNATyr jedoch kein Methylierungssubstrat für DnmA dar. Dennoch konnte in einem dnmA- -Stamm ebenfalls keine erhöhte Menge dieser tRNA beobachtet werden, obwohl die Zellen mit Queuin kultiviert wurden. In wieweit ein indirekter Effekt, welcher nicht die DnmA-vermittelte Methylierung darstellt, weitere tRNA-Modifikationen oder andere Proteine an diesem Regulationsmechanismus beteiligt sind, muss in zukünftigen Analysen geklärt werden.