220 resultados para Koeln


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A multi-sectorial regime of protection including international treaties, conservation and security measures, demand reduction campaigns and quasi-military interventions has been established to protect rhinos. Despite these efforts, the poaching of rhinos and trafficking of rhino horn continue unabated. This dissertation asks why the illegal market in rhinoceros horn is so resilient in spite of the myriad measures employed to disrupt it. A theoretical approach grounded in the sociology of markets is applied to explain the structure and functioning of the illegal market. The project follows flows of rhino horn from the source in southern Africa to illegal markets in Southeast Asia. The multi-sited ethnography included participant observations, interviews and focus groups with 416 informants during fourteen months of fieldwork. The sample comprised of, amongst others, convicted and active rhino poachers, smugglers and kingpins, private rhino breeders and hunting outfitters, African and Asian law enforcement officials, as well as affected local communities and Asian consumers. Court files, CITES trade data, archival materials, newspaper reports and social media posts were also analysed to supplement findings and to verify and triangulate data from interviews, focus groups and observations. Central to the analysis is the concept of “contested illegality”, a legitimization mechanism employed by market participants along the different segments of the horn supply chain. These actors' implicit or explicit contestation of the state-sponsored label of illegality serves as a legitimising and enabling mechanism, facilitating participation in gray or illegal markets for rhino horn. The research identified fluid interfaces between legal, illegal and gray markets, with recurring actors who have access to transnational trade structures, and who also possess market and product knowledge, as well as information about the regulatory regime and its loopholes. It is against the background of colonial, apartheid and neoliberal exploitation and marginalization of local communities that a second argument is introduced: the path dependency of conservation paradigms. Underpinning rhino conservation and regulation are archaic and elitist conservation regimes that discount the potential for harmonious relationships between local communities and wildlife. The increasing militarization of anti-poaching measures and green land grabs are exacerbating the rhino problem by alienating communities further from conservation areas and wild animals. The third argument looks at how actors deal with coordination problems in transnational illegal markets. Resolving the coordination problems of cooperation, value and competition are considered essential to the operation of formal markets. It is argued that the problem of security provides an additional and crucial obstacle to actors transacting in markets. The systematic analysis of flows between the researched sites of production, distribution and consumption of rhino horn shows that the social embeddedness of actors facilitates the flourishing of illegal markets in ways that escape an effective enforcement of CITES regulations.

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Through recent advances in high-throughput mass spectrometry it has become evident that post-translational N-(epsilon)-lysine-acetylation is a modification found on thousands of proteins of all cellular compartments and all essential physiological processes. Many aspects in the biology of lysine-acetylation are poorly understood, including its regulation by lysine-acetyltransferases and lysine-deacetylases (KDACs). Here, the role of this modification was investigated for the small GTP-binding protein Ran, which, inter alia, is essential for the regulation of nucleocytoplasmic transport. To this end, site-specifically acetylated Ran was produced in E. coli by genetic code expansion. For five previously identified sites, Ran acetylation was tested regarding its impact on the intrinsic GTP hydrolysis rate, the assembly of export complexes (modeled in vitro with the export receptor CRM1 and the export substrate Spn1) and the interaction of Ran with its GTPase activation protein RanGAP and RanBP1. Overall, mild effects of Ran acetylation were observed for intrinsic and RanGAP-stimulated GTP hydrolysis rates. The interaction of active Ran with RanBP1 was negatively influenced by Ran acetylation at K159. Moreover, CRM1 bound to Ran acetylated at K37, K99 or K159 interacted more strongly with Spn1. Thus, lysine-acetylation interferes with essential aspects of Ran function. An in vitro screen was performed to identify potential Ran KDACs. The NAD+-dependent KDACs of the Sirtuin class showed activity towards two acetylation sites of Ran, K37 and K71. The specificity of Sirtuins was further analyzed based on an additional Ran acetylation site, K38. Since deacetylation of RanAcK38 was much slower compared to RanAcK37, di-acetylated RanAcK37/38 was tested next. The deacetylation rate of di-acetylated Ran was comparable to that of RanAcK37. Deacetylation experiments under single turnover conditions revealed that deacetylation occurs first at the K38 site in the di-acetylated RanAcK37/38 background. The ability of Sirtuins to deacetylate two adjacent AcKs was further investigated based on two proteins, which had previously been found to be di-acetylated and targeted by Sirtuins, namely the tumor suppressor protein p53 and phosphoenolpyruvate carboxykinase 1 (PEPCK1). p53 was readily deacetylated at two di-acetylation sites (K372/372 and K381/382), whereas PEPCK1 was not deacetylated in vitro. Taken together, these results have important implications for the substrate specificity of Sirtuins.

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Die Dissertation behandelt eine für das Badewesen bedeutende Epoche, die sich durch den Beginn des sportorientierten Bäderbaus auszeichnet. Es entsteht ein neuer architektonischer Hallenschwimmbadtypus und es etabliert sich eine gemeinsame Badekultur von Mann und Frau - zwei Errungenschaften, die den Bäderbau bis in die Gegenwart prägen. Viele Bauprojekte und Ideen kamen allerdings durch die Wirtschaftskrisen jener Zeit frühzeitig zum Erliegen, sodass die baulichen Leistungen der Kommunen nicht nur an den Ausführungen, sondern auch an den Entwürfen abgelesen werden müssen. Die kommunale Hallenbäderarchitektur veranschaulicht paradigmatisch die Sozialgeschichte, die Sport- und Hygienebewegung sowie die Genderentwicklung der Zwanziger Jahre. Mangels an Würdigung einerseits sowie einer seit den letzten Jahrzehnten zunehmenden Freizeitorientierung im Bäderbau andererseits wird der Erhalt der schwimmsportorientierten Bäderarchitektur durch Leerstände, Umnutzungen und Abbrüche gefährdet. Durch die Aufarbeitung der Historie und zeitgenössischen Diskurse, die Vermittlung der planerischen Grundlagen sowie durch die Analyse, Auswertung und Typologie des historischen Bäderbestandes der Zwanziger Jahre wird eine fundierte Basis geschaffen, um die Hallenbäderarchitektur als Bedeutungsträger ihrer Zeit angemessen zu würdigen.

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China's water pollution control law stipulates the Water Pollution Discharge Permit (WPDP) institution and authorizes the State Council to draft the regulations for its implementation and enforcement. However, until today, national regulations have not been established and the permitting system has been operating according to provincial regulations. in contrast to USA, the effluents permit system has been operated for more than 40 years and received relatively successful results. The CWA/NPDES experience offers a valuable reference for China’s water permit system.

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Understanding the dynamics of blood cells is a crucial element to discover biological mechanisms, to develop new efficient drugs, design sophisticated microfluidic devices, for diagnostics. In this work, we focus on the dynamics of red blood cells in microvascular flow. Microvascular blood flow resistance has a strong impact on cardiovascular function and tissue perfusion. The flow resistance in microcirculation is governed by flow behavior of blood through a complex network of vessels, where the distribution of red blood cells across vessel cross-sections may be significantly distorted at vessel bifurcations and junctions. We investigate the development of blood flow and its resistance starting from a dispersed configuration of red blood cells in simulations for different hematocrits, flow rates, vessel diameters, and aggregation interactions between red blood cells. Initially dispersed red blood cells migrate toward the vessel center leading to the formation of a cell-free layer near the wall and to a decrease of the flow resistance. The development of cell-free layer appears to be nearly universal when scaled with a characteristic shear rate of the flow, which allows an estimation of the length of a vessel required for full flow development, $l_c \approx 25D$, with vessel diameter $D$. Thus, the potential effect of red blood cell dispersion at vessel bifurcations and junctions on the flow resistance may be significant in vessels which are shorter or comparable to the length $l_c$. The presence of aggregation interactions between red blood cells lead in general to a reduction of blood flow resistance. The development of the cell-free layer thickness looks similar for both cases with and without aggregation interactions. Although, attractive interactions result in a larger cell-free layer plateau values. However, because the aggregation forces are short-ranged at high enough shear rates ($\bar{\dot{\gamma}} \gtrsim 50~\text{s}^{-1}$) aggregation of red blood cells does not bring a significant change to the blood flow properties. Also, we develop a simple theoretical model which is able to describe the converged cell-free-layer thickness with respect to flow rate assuming steady-state flow. The model is based on the balance between a lift force on red blood cells due to cell-wall hydrodynamic interactions and shear-induced effective pressure due to cell-cell interactions in flow. We expect that these results can also be used to better understand the flow behavior of other suspensions of deformable particles such as vesicles, capsules, and cells. Finally, we investigate segregation phenomena in blood as a two-component suspension under Poiseuille flow, consisting of red blood cells and target cells. The spatial distribution of particles in blood flow is very important. For example, in case of nanoparticle drug delivery, the particles need to come closer to microvessel walls, in order to adhere and bring the drug to a target position within the microvasculature. Here we consider that segregation can be described as a competition between shear-induced diffusion and the lift force that pushes every soft particle in a flow away from the wall. In order to investigate the segregation, on one hand, we have 2D DPD simulations of red blood cells and target cell of different sizes, on the other hand the Fokker-Planck equation for steady state. For the equation we measure force profile, particle distribution and diffusion constant across the channel. We compare simulation results with those from the Fokker-Planck equation and find a very good correspondence between the two approaches. Moreover, we investigate the diffusion behavior of target particles for different hematocrit values and shear rates. Our simulation results indicate that diffusion constant increases with increasing hematocrit and depends linearly on shear rate. The third part of the study describes development of a simulation model of complex vascular geometries. The development of the model is important to reproduce vascular systems of small pieces of tissues which might be gotten from MRI or microscope images. The simulation model of the complex vascular systems might be divided into three parts: modeling the geometry, developing in- and outflow boundary conditions, and simulation domain decomposition for an efficient computation. We have found that for the in- and outflow boundary conditions it is better to use the SDPD fluid than DPD one because of the density fluctuations along the channel of the latter. During the flow in a straight channel, it is difficult to control the density of the DPD fluid. However, the SDPD fluid has not that shortcoming even in more complex channels with many branches and in- and outflows because the force acting on particles is calculated also depending on the local density of the fluid.

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This work describes further developments and applications of the catalytic asymmetric Fischer indolization. In the first part of this thesis, the development of an organocatalytic asymmetric synthesis of helicenes via a Fischer indolization is discussed. The application of a novel SPINOL-derived phosphoric acid, featuring extended π-surfaces as 3,3‘-substituents which can potentially participate in π-interactions with the polyaromatic intermediate, afforded the corresponding products in high yields and enantioselectivities. The second part of this work describes the development of a catalytic asymmetric dearomatizing synthesis of 1,4-diketones via an interrupted Fischer indolization. Employing aryl hydrazines with α-substituents next to the hydrazine group prevents the rearomatization which takes place in common Fischer indole syntheses, thus enabling the hydrolysis of the generated diimine species. In the presence of STRIP as catalyst, a variety of different 1,4-diketones could be obtained in generally high yields, diastereo- and enantioselectivities. The last part of this thesis deals with the development of an organocatalytic asymmetric stereodivergent synthesis of novel 3H- and 2H-pyrroles, applying an interrupted Fischer indolization and for the 2H-pyrroles a subsequent stereospecific [1,5]-alkyl shift. Employing STRIP as catalyst afforded the corresponding products in good to excellent yields and enantioselectivities. Preliminary biological investigations of these novel structure motifs in cell-based assays, monitoring biological signal transduction pathways showed an inhibition of the Hedgehog signaling pathway in a μM range.

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Im Rahmen dieser Arbeit wurden selektive Inhibitoren der Glutathion-Transferase P1 (GSTP1) mit 1,2,4-Trioxanstruktur als potentielle Wirkstoffe gegen multiresistente Tumore synthetisiert. Die Darstellung dieser Substanzen erfolgte über Typ-II-Photooxygenierung allylischer Alkohole mit anschließender Säure-katalysierter Peroxyacetalisierung unter Verwendung von 4-Nitrobenzaldehyd. Über diesen Syntheseweg konnten unterschiedlich substituierte 1,2,4-Trioxane dargestellt werden. Die höchste biologische Aktivität zeigten Verbindungen mit aromatischen Estersubstituenten am 1,2,4-Trioxanring. Es wurde eine Leitstruktur entwickelt, die einen α,β-ungesättigten aromatischen Estersubstituenten in Position 6 des 1,2,4-Trioxangerüsts und in Position 3 einen 4-Nitrophenylsubstituenten aufweist. Die Verbindungen dieser Substanzklasse zeigen Inhibition der GSTP1 im niedrig mikromolaren Bereich. Durch Aktivitätsstudien an den GST-Klassen A und M konnte gezeigt werden, dass die Verbindungen selektiv GSTP1 inhibieren. Nachdem mittels quantitativer PCR 12 Krebszelllinien, die hohe GSTP1-Expressionsniveaus zeigen, identifiziert worden waren, wurde die Aktivität der 1,2,4-Trioxane gegenüber GST, die in Krebszelllysaten vorkommt, nachgewiesen. Die GST in der Brustkrebsepithelzelllinie HBL100 und der Lungenkarzinomzelllinie SK-MES-1 wird durch 1,2,4-Trioxane noch effektiver inhibiert als aufgereinigte GSTP1 (IC50 im nanomolaren Bereich).

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The dynamics, shape, deformation, and orientation of red blood cells in microcirculation affect the rheology, flow resistance and transport properties of whole blood. This leads to important correlations of cellular and continuum scales. Furthermore, the dynamics of RBCs subject to different flow conditions and vessel geometries is relevant for both fundamental research and biomedical applications (e.g drug delivery). In this thesis, the behaviour of RBCs is investigated for different flow conditions via computer simulations. We use a combination of two mesoscopic particle-based simulation techniques, dissipative particle dynamics and smoothed dissipative particle dynamics. We focus on the microcapillary scale of several μm. At this scale, blood cannot be considered at the continuum but has to be studied at the cellular level. The connection between cellular motion and overall blood rheology will be investigated. Red blood cells are modelled as viscoelastic objects interacting hydrodynamically with a viscous fluid environment. The properties of the membrane, such as resistance against bending or shearing, are set to correspond to experimental values. Furthermore, thermal fluctuations are considered via random forces. Analyses corresponding to light scattering measurements are performed in order to compare to experiments and suggest for which situations this method is suitable. Static light scattering by red blood cells characterises their shape and allows comparison to objects such as spheres or cylinders, whose scattering signals have analytical solutions, in contrast to those of red blood cells. Dynamic light scattering by red blood cells is studied concerning its suitability to detect and analyse motion, deformation and membrane fluctuations. Dynamic light scattering analysis is performed for both diffusing and flowing cells. We find that scattering signals depend on various cell properties, thus allowing to distinguish different cells. The scattering of diffusing cells allows to draw conclusions on their bending rigidity via the effective diffusion coefficient. The scattering of flowing cells allows to draw conclusions on the shear rate via the scattering amplitude correlation. In flow, a RBC shows different shapes and dynamic states, depending on conditions such as confinement, physiological/pathological state and cell age. Here, two essential flow conditions are studied: simple shear flow and tube flow. Simple shear flow as a basic flow condition is part of any more complex flow. The velocity profile is linear and shear stress is homogeneous. In simple shear flow, we find a sequence of different cell shapes by increasing the shear rate. With increasing shear rate, we find rolling cells with cup shapes, trilobe shapes and quadrulobe shapes. This agrees with recent experiments. Furthermore, the impact of the initial orientation on the dynamics is studied. To study crowding and collective effects, systems with higher haematocrit are set up. Tube flow is an idealised model for the flow through cylindric microvessels. Without cell, a parabolic flow profile prevails. A single red blood cell is placed into the tube and subject to a Poiseuille profile. In tube flow, we find different cell shapes and dynamics depending on confinement, shear rate and cell properties. For strong confinements and high shear rates, we find parachute-like shapes. Although not perfectly symmetric, they are adjusted to the flow profile and maintain a stationary shape and orientation. For weak confinements and low shear rates, we find tumbling slippers that rotate and moderately change their shape. For weak confinements and high shear rates, we find tank-treading slippers that oscillate in a limited range of inclination angles and strongly change their shape. For the lowest shear rates, we find cells performing a snaking motion. Due to cell properties and resultant deformations, all shapes differ from hitherto descriptions, such as steady tank-treading or symmetric parachutes. We introduce phase diagrams to identify flow regimes for the different shapes and dynamics. Changing cell properties, the regime borders in the phase diagrams change. In both flow types, both the viscosity contrast and the choice of stress-free shape are important. For in vitro experiments, the solvent viscosity has often been higher than the cytosol viscosity, leading to a different pattern of dynamics, such as steady tank-treading. The stress-free state of a RBC, which is the state at zero shear stress, is still controversial, and computer simulations enable direct comparisons of possible candidates in equivalent flow conditions.

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In den letzten 30 Jahren hat sich die Positronen Emissions Tomographie (PET) zu einem der wichtigsten Instrumente in der klinischen Diagnostik entwickelt. Neben den ständigen technischen Verbesserungen verdankt die PET ihren klinischen Stellenwert vor allem dem ihr inhärenten Potenzial, physiologische und biochemische Prozesse auf molekularer Ebene und in Echtzeit darzustellen. Aufgrund der wachsenden Zahl neuer und krankheitsspezifischer Radiotracer nimmt sie auch auf dem Gebiet der Wirkstoffentwicklung sowie beim Monitoring von pharmakologischen Interventionen eine immer wichtigere Rolle ein. Grundlegend hierfür ist einerseits das intelligente Design innovativer und selektiver molekularer Sonden mit der Fähigkeit zur Visualisierung molekularer Targets, die in physiologischen und pathophysiologischen Prozessen involviert sind und andererseits die Entwicklung der dafür notwendigen fortschrittlichen Markierungsstrategien. Letzteres ist zentraler Bestandteil der radiochemischen Grundlagenforschung und Hauptgegenstand dieser kumulativen Promotionsarbeit, in dessen Rahmen ein neues „minimalistisches“ Protokoll zur Radiofluorierung ausgearbeitet wurde. Die Entwicklung der sog. „minimalistische“ Methode ermöglicht eine vereinfachte und zeitsparende Herstellung von unterschiedlichsten 18F-markierten Verbindungen, da sie weder der azeotropen Trocknung noch des Zusatzes einer Base oder anderer Additive bedarf. Das neue Radiomarkierungsverfahren umfasst eine direkte Elution von 18F- mittels alkoholischer Lösung der Ammonium-, Diaryliodonium- oder Triarylsulfoniumsalz Vorläufern. Nach Entfernung des Alkohols wird das resultierende [18F]Fluoridsalz in einem geeigneten Lösungsmittel erhitzt. Die hohe Effizienz der auf der „minimalistischen“ Methode basierenden Synthese bietet somit auch einen schnellen Zugang zu 18F-markierten Fluorbenzaldehyden ([18F]FBAs) in großen Aktivitätsmengen, was einen entscheidenden Vorteil für die Entwicklung neuer Markierungsmethoden mit Hilfe dieses Radiomarkierungsbausteins darstellt. Darauf aufbauend wurde, ausgehend von [18F]FBA, auf der Basis der Seyferth-Gilbert Homologisierung, ein innovatives Verfahren zur Synthese von bisher unbekannten 18F-markierten Fluorarylacetylenen entwickelt. Hierdurch konnten über Cycloadditions- und Kreuzkupplungsreaktionen unterschiedliche radiomarkierte Modellverbindungen sowie PET-Tracer hergestellt und somit die Vielseitigkeit der neuen radiomarkierten Synthone aufgezeigt werden. Die durch die „minimalistische“ Methode gesteigerte Effizienz der Synthese von [18F]FBA ermöglicht es ebenfalls, den bereits in der Literatur bekannten Markierungsbaustein C-(4-[18F]Fluorphenyl)-N-phenylnitron [18F]FPPN in ausreichenden Mengen zu produzieren und für die zielgerichtete Synthese diverser radiofluorierter -Lactame über die Kinugasa-Reaktion einzusetzen. Mit dem Erhalt der radiofluorierten β-Lactam-Peptid und -Protein-Konjugate in hohen radiochemischen Ausbeuten unter sehr milden Bedingungen, konnte die Eignung der Kinugasa-Reaktion als neues und leistungsstarkes Radiofluorierungsverfahren eindrucksvoll demonstriert werden.