3 resultados para droplet impaction

em Universitätsbibliothek Kassel, Universität Kassel, Germany


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Lipid droplets (LDs) are the universal storage form of fat as a reservoir of metabolic energy in animals, plants, bacteria and single celled eukaryotes. Dictyostelium LD formation was investigated in response to the addition of different nutrients to the growth medium. LDs were induced by adding exogenous cholesterol, palmitic acid (PA) as well as growth in bacterial suspension, while glucose addition fails to form LDs. Among these nutrients, PA addition is most effective to stimulate LD formation, and depletion of PA from the medium caused LD degradation. The neutral lipids incorporated into the LD-core are composed of triacylglycerol (TAG), steryl esters, and an unknown neutral lipid (UKL) species when the cells were loaded simultaneously with cholesterol and PA. In order to avoid the contamination with other cellular organelles, the LD-purification method was modified. The isolated LD fraction was analysed by mass spectrometry and 100 proteins were identified. Nineteen of these appear to be directly involved in lipid metabolism or function in regulating LD morphology. Together with a previous study, a total of 13 proteins from the LD-proteome were confirmed to localize to LDs after the induction with PA. Among the identified LD-proteins, the localization of Ldp (lipid droplet membrane protein), GPAT3 (glycerol-3-phosphate acyltransferase 3) and AGPAT3 (1-acylglycerol-3-phosphate-acyltransferase 3) were further verified by GFP-tagging at the N-termini or C-termini of the respective proteins. Fluorescence microscopy demonstrated that PA-treatment stimulated the translocation of the three proteins from the ER to LDs. In order to clarify DGAT (diacylglycerol acyltransferase) function in Dictyostelium, the localization of DGAT1, that is not present in LD-proteome, was also investigated. GFP-tagged DGAT1 localized to the ER both, in the presence and absence of PA, which is different from the previously observed localization of GFP-tagged DGAT2, which almost exclusively binds to LDs. The investigation of the cellular neutral lipid level helps to elucidate the mechanism responsible for LD-formation in Dictyostelium cells. Ldp and two short-chain dehydrogenases, ADH (alcohol dehydrogenase) and Ali (ADH-like protein), are not involved in neutral lipid biosynthesis. GPAT, AGPAT and DGAT are three transferases responsible for the three acylation steps of de novo TAG synthesis. Knock-out (KO) of AGPAT3 and DGAT2 did not affect storage-fat formation significantly, whereas cells lacking GPAT3 or DGAT1 decreased TAG and LD accumulation dramatically. Furthermore, DGAT1 is responsible for the accumulation of the unknown lipid UKL. Overexpression of DGAT2 can rescue the reduced TAG content of the DGAT1-KO mutant, but fails to restore UKL content in these cells, indicating that of DGAT1 and DGAT2 have overlapping functions in TAG synthesis, but the role in UKL formation is unique to DGAT1. Both GPAT3 and DGAT1 affect phagocytic activity. Mutation of GPAT3 increases it but a DGAT1-KO decreases phagocytosis. The double knockout of DGAT1 and 2 also impairs the ability to grow on a bacterial lawn, which again can be rescued by overexpression of DGAT2. These and other results are incorporated into a new model, which proposes that up-regulation of phagocytosis serves to replenish precursor molecules of membrane lipid synthesis, whereas phagocytosis is down-regulated when excess fatty acids are used for storage-fat formation.  

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Lipid Droplets dienen zur Speicherung von Neutrallipiden wie z. B. Triglyceriden und Sterolestern. Im ersten Teil der vorliegenden Arbeit wurde die Bildung dieser zellulären Fettspeicher in D. discoideum untersucht. Es konnte herausgefunden werden, dass Lipid Droplets entstehen, wenn die Zellen entweder in einer Suspension von Bakterien oder in Gegenwart von Palmitinsäure kultiviert werden. Die Bildung der Lipidtröpfchen wird dabei von einem schnelleren Zellwachstum, einem Anstieg des Triglyceridgehalts, einer Reduktion der Phagozytoserate und einer Abnahme des Zellvolumens begleitet. Wurde die Lipid Droplet-Bildung durch Kultivierung der Zellen mit Palmitinsäure angeregt, entsteht neben Triglyceriden noch eine weitere Verbindung, bei der es sich entweder um Fettsäureethylester oder Wachsester handelt. Eine weitere Eigenschaft von Zellen, die in Gegenwart der Palmitinsäure inkubiert wurden, ist die Fähigkeit exogene Fettsäuren schneller aufzunehmen, als normal kultivierte Zellen. Aus der vorliegenden Arbeit wurde gefolgert, dass dies durch eine zusätzliche Aufnahme der Fettsäuren über die Plasmamembran hervorgerufen wird. In Zellen, die ohne Fettsäuren inkubiert wurden, findet hingegen der Fettsäureimport über die Endosomen statt. Ein Protein, das nicht direkt am Prozess der Fettsäureaufnahme beteiligt ist, aber importierte Fettsäuren mit CoA aktiviert, ist die LC-FACS1. Aus Versuchen mit der Knockout-Mutante ging hervor, dass die aktivierten Fettsäuren, in Zellen, die zuvor mit Palmitinsäure oder Bakterien inkubiert wurden, in Triglyceride eingebaut werden. Der reduzierte Triglyceridgehalt im Knockout rief eine Erhöhung der Phagozytoserate hervor. Im zweiten Teil dieser Arbeit wurden die Lipidtröpfchen mit einem Saccharosegradienten aufgereinigt. Mit Hilfe der Massenspektrometrie konnten 281 Proteine in der Lipid Droplet-Fraktion identifiziert werden. Ein Teil dieser Proteine könnte durch die Interaktion der Lipidtröpfchen mit anderen Organellen in die Lipid Droplet-Fraktion gelangt sein und ist ebenso wenig Teil des Lipid Droplet-Proteoms wie die zytoplasmatischen Proteine, die eine Verunreinigung darstellen. Vier der zehn Proteine aus der Lipid Droplet-Fraktion, die in der vorliegenden Arbeit untersucht wurden, konnten nach Kultivierung in palmitinsäurehaltigem Medium tatsächlich auf der Oberfläche der Lipidtröpfchen beobachtet werden. Eines dieser Proteine ist LSD1. Es stellt das einzige PAT-Protein in D. discoideum dar und gehört der Kategorie der CPATs an. Analog zu Perilipin/PLIN1 und Adipophilin/PLIN2 könnte LSD1 eine Schutzfunktion der Lipid Droplets vor zytoplasmatischen Lipasen haben. Neben DdLSD1 konnten auch die Proteine ADH und ALI auf den Lipidtröpfchen lokalisiert werden. Bei beiden handelt es sich um 17beta-Hydroxysteroid-Dehydrogenasen - Proteine, die eine Funktion im Lipid- oder Fettsäuremetabolismus besitzen können. Das Protein SMT katalysiert die C24-Methylierung des Sterolgerüsts in D. discoideum und war nach Inkubation der Zellen mit exogenen Fettsäuren ebenfalls auf den Lipid Droplets zu beobachten.

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Boron-doped diamond is a promising electrode material for a number of applications providing efficient carrier transport, a high stability of the electrolytic performance with time, a possibility for dye-sensitizing with photosensitive molecules, etc. It can be functionalized with electron donor molecules, like phthalocyanines or porphyrins, for the development of light energy conversion systems. For effective attachment of such molecules, the diamond surface has to be modified by plasma- or photo-chemical processes in order to achieve a desired surface termination. In the present work, the surface modifications of undoped and boron-doped nanocrystalline diamond (NCD) films and their functionalization with various phthalocyanines (Pcs) were investigated. The NCD films have been prepared by hot filament chemical vapor deposition (HFCVD) on silicon substrates and were thereafter subjected to modifications with O2 or NH3 plasmas or UV/O3 treatments for exchange of the H-termination of the as-grown surface. The effectiveness of the modifications and their stability with time during storage under different ambients were studied by contact angle measurements and X-ray photoelectron spectroscopy (XPS). Furthermore, the surface roughness after the modifications was investigated with atomic force microscopy (AFM) and compared to that of as-grown samples in order to establish the appearance of etching of the surface during the treatment. The as-grown and the modified NCD surfaces were exposed to phthalocyanines with different metal centers (Ti, Cu, Mn) or with different side chains. The results of the Pc grafting were investigated by XPS and Raman spectroscopy. XPS revealed the presence of nitrogen stemming from the Pc molecules and traces of the respective metal atoms with ratios close to those in the applied Pc. In a next step Raman spectra of Ti-Pc, Cu-Pc and Mn-Pc were obtained with two different excitation wavelengths (488 and 785 nm) from droplet samples on Si after evaporation of the solvent in order to establish their Raman fingerprints. The major differences in the spectra were assigned to the effect of the size of the metal ion on the structure of the phthalocyanine ring. The spectra obtained were used as references for the Raman spectra of NCD surfaces grafted with Pc. Finally, selected boron doped NCD samples were used after their surface modification and functionalization with Pc for the preparation of electrodes which were tested in a photoelectrochemical cell with a Pt counter electrode and an Ag/AgCl reference electrode. The light sources and electrolytes were varied to establish their influence on the performance of the dye-sensitized diamond electrodes. Cyclic voltammetry measurements revealed broad electrochemical potential window and high stability of the electrodes after several cycles. The open circuit potential (OCP) measurements performed in dark and after illumination showed fast responses of the electrodes to the illumination resulting in photocurrent generation.