4 resultados para HYDROPHOBIC INTERACTION

em ArchiMeD - Elektronische Publikationen der Universität Mainz - Alemanha


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Complexes of polyelectrolytes with defined charge distance and different dendrimer counterions Magdalena Chelmecka Max Planck Institute for Polymer Research; Ackermannweg 10; D-55128 Mainz ; Tel.: (+49) 06131- 379 – 226 A study of complexes in solution is of interest to investigate whether the formation of well-defined assemblies like in classical surfactant systems is possible. Aim of this thesis is to investigate the electrostatic self-assembly of linear polycations of varying charge distance with “large” counterions of varying architecture. We especially investigate the morphology of objects formed, but also their stability under salt free condition and after low molecular mass salt addition. As polycations, Poly(dialkylimino)-alkylene salts (Ionenes) I65MeBr and I25MeBr were chosen. Ionenes are synthesized via Menschutkin reaction and characterized by standard methods. Counterions are Polyamidoamine (PAMAM) dendrimers of generations G2.5, G5.5, G7.5 with -COONa surface groups and shape-persistent, Polyphenylene dendrimers of generation G1 with surface -COOH groups. A complex interplay of interactions is expected to direct the self assembly via electrostatic interaction, geometric factors, hydrophobic interaction or hydrogen bonds. Methods used for the investigation of complexes are: UV-spectroscopy, pH-metric techniques, dynamic and static light scattering, small angle neutron scattering,  potential measurements and potentiometric titration. Under certain conditions, (i.e. charge ratio of compounds, charge density of ionene and dendrimer also concentration of sample) polyelectrolyte systems composed of ionenes and dendrimers build complexes in solution. System compounds are typical polyelectrolytes, but structures which they build behave not usual for typical polyelectrolytes. In a one diffusion mode regime aggregates of about 100 nm hydrodynamic radius have been found. Such aggregates are core-shell or anisotropic core shell structures in the case of ionenes/PAMAM dendrimers complexes. These complexes are stable even at high ionic strength. In case of ionenes with poly(phenylene) dendrimers, hard sphere-like objects or spherical objects with hairy-like surface have been found in a one diffusion mode regime. Their stability at high ionic strength is lower. For the ionenes/poly(phenylene) dendrimers systems one transition point has been found from one to two diffusion processes, towards increasing ionene concentration, i.e. for the samples with fixed dendrimer concentration towards increasing ionic strength. For the diffusion profile of ionene/PAMAM dendrimers in most cases two transition regimes are observed. One at very low ionene concentration, the second one at high ionene concentrations, which again means for the samples with fixed dendrimer concentration, also at higher ionic strength. Both two mode regimes are separated by the one mode regime. As was confirmed experimentally, the one diffusion mode regime is caused by the motion of well defined assemblies. The two diffusion mode regimes are caused by the movement of different sized species in solution, large aggregates and middle-size aggregates (oligoaggregates). The location and also the number of transition points in the diffusion profiles is dependent on the ionene to dendrimer charge ratio, charge density of the compounds and concentration. No influence of the molecular mass of the ionene has been found. The aggregates are found to be charged on the surface, however this surface charge does not significantly influence the diffusion properties of the system.

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In this thesis, atomistic simulations are performed to investigate hydrophobic solvation and hydrophobic interactions in cosolvent/water binary mixtures. Many cosolvent/water binary mixtures exhibit non-ideal behavior caused by aggregation at the molecular scale level although they are stable and homogenous at the macroscopic scale. Force-field based atomistic simulations provide routes to relate atomistic-scale structure and interactions to thermodynamic solution properties. The predicted solution properties are however sensitive to the parameters used to describe the molecular interactions. In this thesis, a force field for tertiary butanol (TBA) and water mixtures is parameterized by making use of the Kirkwood-Buff theory of solution. The new force field is capable of describing the alcohol-alcohol, water-water and alcohol-water clustering in the solution as well as the solution components’ chemical potential derivatives in agreement with experimental data. With the new force field, the preferential solvation and the solvation thermodynamics of a hydrophobic solute in TBA/water mixtures have been studied. First, methane solvation at various TBA/water concentrations is discussed in terms of solvation free energy-, enthalpy- and entropy- changes, which have been compared to experimental data. We observed that the methane solvation free energy varies smoothly with the alcohol/water composition while the solvation enthalpies and entropies vary nonmonotonically. The latter occurs due to structural solvent reorganization contributions which are not present in the free energy change due to exact enthalpy-entropy compensation. It is therefore concluded that the enthalpy and entropy of solvation provide more detailed information on the reorganization of solvent molecules around the inserted solute. Hydrophobic interactions in binary urea/water mixtures are next discussed. This system is particularly relevant in biology (protein folding/unfolding), however, changes in the hydrophobic interaction induced by urea molecules are not well understood. In this thesis, this interaction has been studied by calculating the free energy (potential of mean force), enthalpy and entropy changes as a function of the solute-solute distance in water and in aqueous urea (6.9 M) solution. In chapter 5, the potential of mean force in both solution systems is analyzed in terms of its enthalpic and entropic contributions. In particular, contributions of solvent reorganization in the enthalpy and entropy changes are studied separately to better understand what are the changes in interactions in the system that contribute to the free energy of association of the nonpolar solutes. We observe that in aqueous urea the association between nonpolar solutes remains thermodynamically favorable (i.e., as it is the case in pure water). This observation contrasts a long-standing belief that clusters of nonpolar molecules dissolve completely in the presence of urea molecules. The consequences of our observations for the stability of proteins in concentrated urea solutions are discussed in the chapter 6 of the thesis.

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Nach Homogenisation ejakulierter Eberspermien und Zentrifugation des Homogenates blieben mehr als 60% der Aktivität des glykolytischen Enzyms Pyruvatkinase (PK) an Zellfragmenten im Sediment gebunden. Diese strukturgebundene PK wurde als PK-S bezeichnet. Das Detergenz Triton X-100 führte nicht zur Ablösung der PK-S; mit Trypsin konnten jedoch rund 80% der PK-S ohne Verlust an Aktivität von den Strukturen gelöst und durch kombinierte Kationenaustausch- und Hydrophobizitätschromatographie gereinigt werden (spezifische Aktivität: 116,7 U/mg Protein). Die lösliche PK aus Eberspermien konnte ebenfalls durch ein ähnliches Verfahren angereichert werden. Im Gel (SDS-PAGE) zeigten die Untereinheiten der PK-S mit 64.400 eine geringfügig größere relative Molekülmasse als die der PK-M1 aus Kaninchenmuskel (62.000). Die kinetischen Eigenschaften der abgelösten PK-S als auch der noch an Spermienstrukturen gebundenen PK-S und der löslichen PK aus Eberspermien waren sehr ähnlich und entsprachen der M1-Isoform der PK. Antikörper gegen Kaninchenmuskel-PK (Anti-PK-M1) reagierten auch mit der löslichen PK und der PK-S aus Eberspermien. Edman-Abbau der ersten 19 Aminosäuren zeigte, dass die tryptisch abgelöste PK-S am N-Terminus um 5 Aminosäuren gegenüber nativer PK-M1 verlängert ist, während der C-Terminus der erhaltenen PK-S-Sequenz mit einem meist nahe dem N-Terminus gelegenen Sequenzabschnitt der PK-M1 und -M2 übereinstimmt. Die N-terminale Verlängerung der nativen PK-S enthält sicherlich mehr als die nach tryptischer Lyse nachgewiesenen 5 Aminosäuren. Vergleiche der Aminosäure- und übersetzten Nukleotidsequenzen sowie die kinetischen Eigenschaften lassen vermuten, dass die PK-S, wie die PK-M1 und PK-M2, vom PKM-Gen codiert wird. Gegen die gereinigte PK-S wurden Antikörper in Kaninchen produziert. Da das Antiserum nicht ausreichend spezifisch für PK-S war, wurden aus ihm affinitätschromatographisch Antikörper (Anti-PK-S) isoliert, die hohe Affinität zu einem synthetisierten PK-S-Peptid (13 N-terminale Aminosäuren der tryptisch abgelösten PK-S) hatten. Dieses Anti-PK-S-Präparat war spezifisch für PK-S; es reagierte weder mit Kaninchenmuskel-PK noch mit löslicher PK oder anderen Proteinen aus Eberspermien. Anti-PK-S und Anti-PK-M1 wurden zur Lokalisierung von PK-S und löslicher PK in Spermien von Eber, Bulle und Mensch sowie in Schnitten von Eberhoden eingesetzt. Mit Anti-PK-S wurden der Bereich des Akrosoms und das lange flagellare Hauptstück sowie der Übergangsbereich zwischen Kopf und Mittelstück von Eberspermien fluoreszenzmarkiert, wogegen das kurze, die Mitochondrien enthaltende Mittelstück des Flagellums und der postakrosomale Kopfbereich nur mit Anti-PK-M1 markiert wurden. Immunogoldmarkierung in elektronenmikroskopischen Bildern bestätigte die Lokalisierung von PK-S im Akrosombereich. Im Hauptstück banden Anti-PK-M1 und Anti-PK-S an die fibröse Scheide. Glyzerinaldehyd-3-phosphat Dehydrogenase (GAPDH) konnte von mir ebenfalls im Akrosombereich, im Übergangsbereich zwischen Kopf und Mittelstück und an der fibrösen Scheide detektiert werden. Auch an Bullen- und Humanspermien konnte über Immunogoldmarkierung PK und vermutlich GAPDH an der fibrösen Scheide gezeigt werden. Im Akrosombereich dieser Spermien waren die Nachweise von PK und GAPDH jedoch nicht sicher. In Eberhodenschnitten war die PK-S erstmals, oder zumindest vermehrt, in den elongierenden Spermatiden über Fluoreszenzmarkierung nachweisbar, während andere, vermutlich somatische PK vermehrt in den früheren Stadien (Spermatogonien, aber auch in den Spermatozyten und runden Spermatiden) auftrat. Für die GAPDH zeigte sich ein ähnlicher Entwicklungsverlauf. Die Ergebnisse zeigen, dass in Eberspermien zwei Isoformen der PK auftreten: eine N-terminal verlängerte, strukturgebundene Form, die PK-S, und eine lösliche Form, die beide der PK-M1 ähneln. Der ungewöhnliche N-Terminus der PK-S dient vermutlich der spezifischen räumlichen Anordnung der PK-S im Akrosombereich und an der fibrösen Scheide, nicht aber der Modulation kinetischer Eigenschaften. Meine Untersuchungen stützen die Hypothese, dass in bestimmten Kompartimenten von Säugerspermien die Glykolyse durch Verankerung einiger ihrer Enzyme strukturell hochgeordnet ist. Dadurch wird vermutlich die Versorgung der Mitochondrien-freien Regionen mit ATP sichergestellt. Man kann diese Organisation als Anpassung des Stoffwechsels von Spermien deuten, bei denen die Mitochondrien in einem kleinen Bereich (Mittelstück) hinter dem Spermienkopf kompartimentiert sind. Im Hauptstück des Flagellums könnte die Glykolyse ATP für die Spermienmotilität liefern, im Akrosombereich für die Verhinderung einer vorzeitigen Akrosomreaktion. Somit käme der strukturierten Glykolyse eine essentielle Bedeutung für die Befruchtungsfähigkeit von Säugerspermien zu.

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This thesis aims at connecting structural and functional changes of complex soft matter systems due to external stimuli with non-covalent molecular interaction profiles. It addresses the problem of elucidating non-covalent forces as structuring principle of mainly polymer-based systems in solution. The structuring principles of a wide variety of complex soft matter types are analyzed. In many cases this is done by exploring conformational changes upon the exertion of external stimuli. The central question throughout this thesis is how a certain non-covalent interaction profile leads to solution condition-dependent structuring of a polymeric system.rnTo answer this question, electron paramagnetic resonance (EPR) spectroscopy is chosen as the main experimental method for the investigation of the structure principles of polymers. With EPR one detects only the local surroundings or environments of molecules that carry an unpaired electron. Non-covalent forces are normally effective on length scales of a few nanometers and below. Thus, EPR is excellently suited for their investigations. It allows for detection of interactions on length scales ranging from approx. 0.1 nm up to 10 nm. However, restriction to only one experimental technique likely leads to only incomplete pictures of complex systems. Therefore, the presented studies are frequently augmented with further experimental and computational methods in order to yield more comprehensive descriptions of the systems chosen for investigation.rnElectrostatic correlation effects in non-covalent interaction profiles as structuring principles in colloid-like ionic clusters and DNA condensation are investigated first. Building on this it is shown how electrostatic structuring principles can be combined with hydrophobic ones, at the example of host-guest interactions in so-called dendronized polymers (denpols).rnSubsequently, the focus is shifted from electrostatics in dendronized polymers to thermoresponsive alkylene oxide-based materials, whose structuring principles are based on hydrogen bonds and counteracting hydrophobic interactions. The collapse mechanism in dependence of hydrophilic-hydrophobic balance and topology of these polymers is elucidated. Complementarily the temperature-dependent phase behavior of elastin-like polypeptides (ELPs) is investigated. ELPs are the first (and so far only) class of compounds that is shown to feature a first-order inverse phase transition on nanoscopic length scales.rnFinally, this thesis addresses complex biological systems, namely intrinsically disordered proteins (IDPs). It is shown that the conformational space of the IDPs Osteopontin (OPN), a cytokine involved in metastasis of several kinds of cancer, and BASP1 (brain acid soluble protein one), a protein associated with neurite outgrowth, is governed by a subtle interplay between electrostatic forces, hydrophobic interaction, system entropy and hydrogen bonds. Such, IDPs can even sample cooperatively folded structures, which have so far only been associated with globular proteins.