3 resultados para Supercoiled

em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha


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Zusammenfassung:Im Infektionszyklus des Hepatitis-B-Virus spielt das große L-Hüllprotein mit seiner einzigartigen PräS1-Domäne eine zentrale Rolle. Es vermittelt die Bindung und Aufnahme in die Leberzelle, die Verpackung der Nukleokapside in die Virushülle, die Regulation der cccDNA-Amplifikation und eine transkriptionelle Aktivierung in der Wirtszelle. Zur Erfüllung seiner vielfältigen Aufgaben benötigt das L-Protein Unterstützung durch Wirtzellfaktoren, von denen einige im Rahmen dieser Untersuchung durch Verwendung von PräS1-Konstrukten als Fängerproteine im Hefe-Zwei-Hybrid-System identifiziert wurden. Mehrere Klone, die im Hefe-Zwei-Hybrid-Test mit dem C-terminalen PräS1-Fängerprotein (Aminosäure 44-108) isoliert worden waren, enthielten Teile der cDNA von gamma2-Adaptin, einem mutmaßlichen Mitglied der Clathrin-Adaptor-Proteine. Diese sind für intrazelluläre Membrantransportprozesse mittels clathrinumhüllter Vesikel verantwortlich. Unter den interagierenden Klonen, die mit dem N-terminalen Konstrukt des L-Proteins (Aminosäure 1-70) isoliert worden waren, befand sich überproportional häufig eine cDNA, die der schweren Kette H4 der Inter-Alpha-Trypsin-Inhibitor-Familie homolog war. H4 besitzt vermutlich bei der 'Akute-Phase-Reaktion', die Entzündungen folgt, und bei der Stabilisierung der extrazellulären Matrix physiologische Bedeutung. Weitere Klone kodierten für die Serinprotease C1r. Diese ist Bestandteil des C1-Komplex, der ersten Komponente des klassischen Komplementsystems. Die Spezifität der Bindung zwischen den positiven Klonen und der PräS1-Domäne wurde in weiteren biochemischen Interaktionstests bestätigt, sodaß H4, C1r und gamma2-Adaptin als Wirtszellfaktoren in der Physiologie des Hepatitis-B-Virus wahrscheinlich eine Rolle spielen.Abstract:Little is known about host cell factors necessary for hepatitis B virus assembly and infectivity. Central to virogenesis is the large L envelope protein that mediates hepatocyte receptor binding, envelopment of viral capsids, regulation of supercoiled DNA amplification and transcriptional transactivation. To assess its multiple functions and host-protein assistance involved, we here initiated a yeast two-hybrid screen using the L-specific preS1 domain as bait to screen a human liver cDNA library for L-interacting proteins. One of the most prominent cDNAs interacting with aminoacid sequence 44-108 of L-protein encodes for gamma2-adaptin, a novel clathrin adaptor-related protein responsible for protein sorting and trafficking. Among the clones interacting with the N-terminal construct of L-protein (aminoacid sequence 1-70), a frequently isolated cDNA corresponds to the gene for inter-alpha-trypsin family heavy chain H4, likely to be involved in acute inflammatory phase response and stabilization of extracellular matrices. Some other interacting clones were found to carry the cDNA for the serine protease C1r, a subunit of the C1 complex which initiates the classical complement cascade. The specificity of the interaction between the positive clones and the preS1 domain was further confirmed in independent biochemical experiments. Taken together, the results suggest a role for H4, C1r and gamma2-adaptin as host-cell factors in L-mediated process of viral biogenesis and/or pathogenesis.

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In this thesis I treat various biophysical questions arising in the context of complexed / ”protein-packed” DNA and DNA in confined geometries (like in viruses or toroidal DNA condensates). Using diverse theoretical methods I consider the statistical mechanics as well as the dynamics of DNA under these conditions. In the first part of the thesis (chapter 2) I derive for the first time the single molecule ”equation of state”, i.e. the force-extension relation of a looped DNA (Eq. 2.94) by using the path integral formalism. Generalizing these results I show that the presence of elastic substructures like loops or deflections caused by anchoring boundary conditions (e.g. at the AFM tip or the mica substrate) gives rise to a significant renormalization of the apparent persistence length as extracted from single molecule experiments (Eqs. 2.39 and 2.98). As I show the experimentally observed apparent persistence length reduction by a factor of 10 or more is naturally explained by this theory. In chapter 3 I theoretically consider the thermal motion of nucleosomes along a DNA template. After an extensive analysis of available experimental data and theoretical modelling of two possible mechanisms I conclude that the ”corkscrew-motion” mechanism most consistently explains this biologically important process. In chapter 4 I demonstrate that DNA-spools (architectures in which DNA circumferentially winds on a cylindrical surface, or onto itself) show a remarkable ”kinetic inertness” that protects them from tension-induced disruption on experimentally and biologically relevant timescales (cf. Fig. 4.1 and Eq. 4.18). I show that the underlying model establishes a connection between the seemingly unrelated and previously unexplained force peaks in single molecule nucleosome and DNA-toroid stretching experiments. Finally in chapter 5 I show that toroidally confined DNA (found in viruses, DNAcondensates or sperm chromatin) undergoes a transition to a twisted, highly entangled state provided that the aspect ratio of the underlying torus crosses a certain critical value (cf. Eq. 5.6 and the phase diagram in Fig. 5.4). The presented mechanism could rationalize several experimental mysteries, ranging from entangled and supercoiled toroids released from virus capsids to the unexpectedly short cholesteric pitch in the (toroidaly wound) sperm chromatin. I propose that the ”topological encapsulation” resulting from our model may have some practical implications for the gene-therapeutic DNA delivery process.

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From a physical-chemical point of view, it is challenging to form complexes with polyelectrolytes, consisting of only molecule of the largest component, i.e. the component with the highest number of charges. In this study, complexes are formed with DNA because of its potential applications as an artificial vector for gene delivery. The aim of this work is to prepare complexes in aqueous solutions as well as in organic solvents containing only one DNA molecule. For this purpose, the topology, equilibrium and conformation of complexes between a supercoiled DNA pUC19 (2686 base pairs) and spermine containing hydrophilic and/or hydrophobic moieties or a polylysine with a hydrophilic block are determined by means of dynamic (DLS) and static light scattering (SLS), atomic force microscopy (AFM), and circular dichroism (CD) spectroscopy. It is demonstrated that all of these complexes consisted of only one molecule of the polyanion. Only the polylysine-b-polyethylene glycol copolymer satisfied the conditions: 1) 100% neutralization of DNA charges and with a small excess of the cation (lower than 30%) and 2) form stable complexes at every charge ratio. rnDNA complex formation is also investigated in organic solvents. Precipitation is induced by neutralizing the charge of the supercoiled DNA pUC19 with the surfactants dodecyltrimethylammonium bromide (DTAB) and tetradecyltrimethylammonium bromide (TTAB). After isolation and drying of the solids, the complexes are dissolved in organic solvents. DNA-TTA complexes are only soluble in methanol and DNA-DTA in DMF. The complexes again consisted of only one DNA molecule. The final topology of the complexes is different in methanol than in DMF. In the former case, DNA seems to be compacted whereas in the latter case, the DNA-DTA complexes seem to have an expanded conformation. Upon complex formation with polycations in organic solvents (with polyvilylpyridine brush (b-PVP) in methanol and with a protected polylysine in DMF), DNA aggregates and precipitates. rnDNA is linearized with an enzyme (SmaI) to investigate the influence of the initial topology of the polyanion on the final conformation of the complexes in organic solvents. Two main differences are evidenced: 1. Complexes in organic solvents formed with linear DNA have in general a more expanded conformation and a higher tendency to aggregate. 2. If a polycation, i.e. the b-PVP, is added to the linear DNA-TTA complexes in methanol, complexes with the polycation are formed at a higher charge ratio. In DMF, the addition of the same b-PVP and of b-PLL did not lead to the formation of complexes.rn