4 resultados para amino acid blood level

em Universitätsbibliothek Kassel, Universität Kassel, Germany


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An important feature of maintaining the agricultural stability in millennia-old mountain oases of northern Oman is the temporary abandonment of terraces. To analyse the effects of a fallow period on soil microbial performance, i.e. microbial activity and microbial biomass, samples of eight terrace soils abandoned for different periods were collected in situ, assigned to four fallow age classes and incubated for 30 days in the laboratory after rewetting. The younger fallow age classes of 1 and 5 years were based on the records of the farmers’ recollections, the two older fallow age classes of 10–20 and 25–60 years according to the increase in the D -to- L ratio of valine and leucine enantiomers. The increase in these two ratios was in agreement with that of the D -to- L ratio of lysine. The strongest relationship was observed between the increase in the D -to- L ratio of lysine and the decrease in soil microbial biomass C. However, the most stringent coherence between the increase in fallow age and soil properties was revealed by the decreases in cumulative respiration and net N mineralisation rates with decreasing availability of substrate to soil microorganisms. During the 30-day incubation following rewetting, relative changes in microbial activity (respiration and net N mineralisation) and microbial biomass (C and N)indices were similar in the eight terrace soils on a fallow age-class-specific level, indicating that the same basic processes occurred in all of the sandy terrace soils investigated.

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Soil microorganisms have evolved two possible mechanisms for their uptake of organic N: the direct route and the mobilization-immobilization-turnover (MIT) route. In the direct route, simple organic molecules are taken up via various mechanisms directly into the cell. In the MIT route, the deamination occurs outside the cell and all N is mineralized to NH4+ before assimilation. A better understanding of the mechanisms controlling the different uptake routes of soil microorganisms under different environmental conditions is crucial for understanding mineralization processes of organic material in soil. For the first experiment we incubated soil samples from the long term trial in Bad Lauchstädt with corn residues with different C to N ratios and inorganic N for 21 days at 20 °C. Under the assumption that all added amino acids were taken up or mineralized, the direct uptake route was more important in soil amended with corn residues with a wide C to N ratio. After 21 days of incubation the direct uptake of added amino acids increased in the order addition of corn residue with a: “C to N ratio of 40 & (NH4)2SO4 and no addition (control)” (69% and 68%, respectively) < “C to N ratio of 20” (73%) < “C to N ratio of 40” (95%). In all treatments the proportion of the added amino acids that were mineralized increased with time, indicating that the MIT route became more important over time. To investigate the effects of soil depth on the N uptake route of soil microorganisms (experiment II), soil samples in two soil depths (0-5 cm; 30-40 cm) were incubated with corn residues with different C to N ratios and inorganic N for 21 days at 20 °C and 60% (WHC). The addition of corn residue resulted in a marked increase of protease activity in both depths due to the induction from the added substrate. Addition of corn residue with a wide C to N ratio resulted in a significantly greater part of the direct uptake (97% and 94%) than without the addition of residues (85% and 80%) or addition of residue with a small C to N ratio (90% and 84%) or inorganic N (91% and 79% in the surface soil and subsoil, respectively), suggesting that under conditions of sufficient mineralizable N (C to N ratio of 20) or increased concentrations of NH4+, the enzyme system involved in the direct uptake is slightly repressed. Substrate additions resulted in an initially significantly higher increase of the direct uptake in the surface soil than in the subsoil. As a large proportion of the organic N input into soil is in form of proteinaceous material, the deamination of amino acids is a key reaction of the MIT route. Therefore the enzyme amino acid oxidase contribute to the extracellular N mineralization in soil. The objective of experiment III was to adapt a method to determine amino acid oxidase in soil. The detection via synthetic fluorescent Lucifer Yellow derivatives of the amino acid lysine is possible in soil. However, it was not possible to find the substrate concentration at which the reaction rate is independent of substrate concentration and therefore we were not able to develop a valid soil enzyme assay.

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A series of vectors for the over-expression of tagged proteins in Dictyostelium were designed, constructed and tested. These vectors allow the addition of an N- or C-terminal tag (GFP, RFP, 3xFLAG, 3xHA, 6xMYC and TAP) with an optimized polylinker sequence and no additional amino acid residues at the N or C terminus. Different selectable markers (Blasticidin and gentamicin) are available as well as an extra chromosomal version; these allow copy number and thus expression level to be controlled, as well as allowing for more options with regard to complementation, co- and super-transformation. Finally, the vectors share standardized cloning sites, allowing a gene of interest to be easily transfered between the different versions of the vectors as experimental requirements evolve. The organisation and dynamics of the Dictyostelium nucleus during the cell cycle was investigated. The centromeric histone H3 (CenH3) variant serves to target the kinetochore to the centromeres and thus ensures correct chromosome segregation during mitosis and meiosis. A number of Dictyostelium histone H3-domain containing proteins as GFP-tagged fusions were expressed and it was found that one of them functions as CenH3 in this species. Like CenH3 from some other species, Dictyostelium CenH3 has an extended N-terminal domain with no similarity to any other known proteins. The targeting domain, comprising α-helix 2 and loop 1 of the histone fold is required for targeting CenH3 to centromeres. Compared to the targeting domain of other known and putative CenH3 species, Dictyostelium CenH3 has a shorter loop 1 region. The localisation of a variety of histone modifications and histone modifying enzymes was examined. Using fluorescence in situ hybridisation (FISH) and CenH3 chromatin-immunoprecipitation (ChIP) it was shown that the six telocentric centromeres contain all of the DIRS-1 and most of the DDT-A and skipper transposons. During interphase the centromeres remain attached to the centrosome resulting in a single CenH3 cluster which also contains the putative histone H3K9 methyltransferase SuvA, H3K9me3 and HP1 (heterochromatin protein 1). Except for the centromere cluster and a number of small foci at the nuclear periphery opposite the centromeres, the rest of the nucleus is largely devoid of transposons and heterochromatin associated histone modifications. At least some of the small foci correspond to the distal telomeres, suggesting that the chromosomes are organised in a Rabl-like manner. It was found that in contrast to metazoans, loading of CenH3 onto Dictyostelium centromeres occurs in late G2 phase. Transformation of Dictyostelium with vectors carrying the G418 resistance cassette typically results in the vector integrating into the genome in one or a few tandem arrays of approximately a hundred copies. In contrast, plasmids containing a Blasticidin resistance cassette integrate as single or a few copies. The behaviour of transgenes in the nucleus was examined by FISH, and it was found that low copy transgenes show apparently random distribution within the nucleus, while transgenes with more than approximately 10 copies cluster at or immediately adjacent to the centromeres in interphase cells regardless of the actual integration site along the chromosome. During mitosis the transgenes show centromere-like behaviour, and ChIP experiments show that transgenes contain the heterochromatin marker H3K9me2 and the centromeric histone variant H3v1. This clustering, and centromere-like behaviour was not observed on extrachromosomal transgenes, nor on a line where the transgene had integrated into the extrachromosomal rDNA palindrome. This suggests that it is the repetitive nature of the transgenes that causes the centromere-like behaviour. A Dictyostelium homolog of DET1, a protein largely restricted to multicellular eukaryotes where it has a role in developmental regulation was identified. As in other species Dictyostelium DET1 is nuclear localised. In ChIP experiments DET1 was found to bind the promoters of a number of developmentally regulated loci. In contrast to other species where it is an essential protein, loss of DET1 is not lethal in Dictyostelium, although viability is greatly reduced. Loss of DET1 results in delayed and abnormal development with enlarged aggregation territories. Mutant slugs displayed apparent cell type patterning with a bias towards pre-stalk cell types.

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ZUSAMMENFASSUNG: Das Phosphorylierungsmuster eines Proteins ist kein statischer Zustand, sondern vielmehr ein dynamischer Status, den es in der modernen funktionellen (Phospho-) Proteomik und Analytik abzubilden gilt. Klassischerweise erfolgt der Nachweis der Proteinphosphorylierung auf Peptid-Ebene mittels MS/MS Sequenzierung. Diese Standardmethode der shotgun Phosphoproteomanalytik vernachlässigt jedoch wegen den in LC MS/MS Analysen oftmals schwer detektierbaren Phosphopeptiden gerade den variablen und oftmals nur geringen Phosphorylierungsgrad vieler Phosphorylierungsstellen (P-Stellen). Mittels phosphospezifischer Anreicherungsstrategien und MS/MS Sequenzierung konnten an der Modellkinase PKA-Cα nach rekombinanter Expression in E. coli insgesamt acht P-Stellen identifiziert werden. Der Phosphorylierungsgrad wurde in Kooperation mit Dr. J. Seidler über quantitative Signalintensitätsmessungen bestimmt und zeigte eine nahezu vollständige Phosphorylierung von pS10, pS139, pT197 und pS338, während der Phosphorylierungsgrad für pS34, pS53, pS65 und pS259 zwischen <5 und 45 % variierte. Neben der Quantifizierung der P-Stellen wurde auch das Auftreten und die Verteilung definierter Phosphoformen der PKA-Cα untersucht und deren Abhängigkeit von der primären Aminosäureabfolge, dem Auftreten von zusätzlichen Modifikationen sowie den gewählten Expressions- und Reinigungsbedingungen aufgezeigt. Endogene, aus Säugergewebe isolierte PKA-Cα wies nur eine einzige Phosphoform mit den P-Stellen pT197 und pS338 auf. Auch in vitro autophosphorylierte rekombinante PKA-Cα, die zuvor dephosphoryliert worden war, wies eine zweifach modifizierte Phosphoform auf. Im Vergleich zum endogenen Protein ließ sich dieses Protein an S10 und S338 exzessiv phosphorylieren, wohingegen an T197 keine Autophosphorylierung nachzuweisen war. Das Ausbleiben weiterer Phosphorylierungen stellt in Frage, ob die Hyperphosphorylierung in E. coli ausschließlich auf Autophosphorylierungsprozessen beruht, was anhand einer nicht phosphorylierten, katalytisch inaktiven Variante von PKA-Cα (PKA-Cα K72H) vermutet wurde. Im Hinblick auf die funktionellen P-Stellen pT197 und pS338 erfordert diese Entdeckung sowie der unabhängige Nachweis, dass zellfrei exprimierte PKA-Cα nur an S338 phosphoryliert ist, eine Modifizierung des sequenziellen Vorhersagemodells, wonach die Phosphorylierung an T197 eine zwingende Voraussetzung für die nachfolgende Phosphorylierung an S338 ist. Ferner konnte über phosphomimetische Mutagenese die Funktionalität der Phosphorylierung an S53 innerhalb der glycinreichen Schleife der PKA-Cα und somit ein potenzieller Weg zur Regulation der enzymatischen Aktivität gezeigt werden. Ein weiterer möglicher upstream Regulator von PKA-Cα ist die Proteinphosphatase 5, die in der Lage war, die bislang als phosphatasestabil beschriebene P Stelle pT197 in vitro zu dephosphorylieren. Die vorliegende Arbeit zeigt, dass der Phosphorylierungszustand eines Proteins von zahlreichen internen und externen Faktoren abhängt – eine Tatsache, die gerade für rekombinante Proteine, insbesondere enzymatisch aktive Kinasen, oft vernachlässigt wurde. Daher müssen auch in der shotgun Phosphoproteomanalytik P-Stellen nicht mehr nur identifiziert und quantifiziert werden, sondern die resultierenden Proteinphosphoformen differenziert auch in ihrem physiologischen Kontext beschrieben werden.