3 resultados para N-15 Natural-abundance
em Universitätsbibliothek Kassel, Universität Kassel, Germany
Resumo:
Maize production in smallholder farming systems in Kenya is largely limited by low soil fertility. As mineral fertilizer is expensive, green manuring using leguminous cover crops could be an alternative strategy for farmers to enhance farm productivity. However due to variability in soil type and crop management, the effects of green manure are likely to differ with farms. The objectives of this study were to evaluate Mucuna pruriens and Arachis pintoi on (i) biomass and nitrogen fixation (^15N natural abundance), (ii) soil carbon and nitrogen stocks and (iii) their effects on maize yields over two cropping seasons in Kakamega, Western Kenya. Mucuna at 6 weeks accumulated 1–1.3 Mg ha^{-1} of dry matter and 33–56 kg ha^{-1} nitrogen of which 70% was nitrogen derived from the atmosphere (Ndfa). Arachis after 12 months accumulated 2–2.7 Mg ha^{-1} of dry matter and 51–74 kg N ha^{-1} of which 52-63 % was from Ndfa. Soil carbon and nitrogen stocks at 0–15 cm depth were enhanced by 2-4 Mg C ha^{-1} and 0.3–1.0 Mg N ha^{-1} under Mucuna and Arachis fallow, irrespective of soil type. Maize yield increased by 0.5-2 Mg ha^{-1} in Mucuna and 0.5–3 Mg ha^{-1} in Arachis and the response was stronger on Nitisol than on Acrisol or Ferralsol. We concluded that leguminous cover crops seem promising in enhancing soil fertility and maize yields in Kenya, provided soil conditions and rainfall are suitable.
Resumo:
Energy production from biomass and the conservation of ecologically valuable grassland habitats are two important issues of agriculture today. The combination of a bioenergy production, which minimises environmental impacts and competition with food production for land with a conversion of semi-natural grasslands through new utilization alternatives for the biomass, led to the development of the IFBB process. Its basic principle is the separation of biomass into a liquid fraction (press fluid, PF) for the production of electric and thermal energy after anaerobic digestion to biogas and a solid fraction (press cake, PC) for the production of thermal energy through combustion. This study was undertaken to explore mass and energy flows as well as quality aspects of energy carriers within the IFBB process and determine their dependency on biomass-related and technical parameters. Two experiments were conducted, in which biomass from semi-natural grassland was conserved as silage and subjected to a hydrothermal conditioning and a subsequent mechanical dehydration with a screw press. Methane yield of the PF and the untreated silage was determined in anaerobic digestion experiments in batch fermenters at 37°C with a fermentation time of 13-15 and 27-35 days for the PF and the silage, respectively. Concentrations of dry matter (DM), ash, crude protein (CP), crude fibre (CF), ether extract (EE), neutral detergent fibre (NDF), acid detergent fibre (ADF), acid detergent ligning (ADL) and elements (K, Mg, Ca, Cl, N, S, P, C, H, N) were determined in the untreated biomass and the PC. Higher heating value (HHV) and ash softening temperature (AST) were calculated based on elemental concentration. Chemical composition of the PF and mass flows of all plant compounds into the PF were calculated. In the first experiment, biomass from five different semi-natural grassland swards (Arrhenaterion I and II, Caricion fuscae, Filipendulion ulmariae, Polygono-Trisetion) was harvested at one late sampling (19 July or 31 August) and ensiled. Each silage was subjected to three different temperature treatments (5°C, 60°C, 80°C) during hydrothermal conditioning. Based on observed methane yields and HHV as energy output parameters as well as literature-based and observed energy input parameters, energy and green house gas (GHG) balances were calculated for IFBB and two reference conversion processes, whole-crop digestion of untreated silage (WCD) and combustion of hay (CH). In the second experiment, biomass from one single semi-natural grassland sward (Arrhenaterion) was harvested at eight consecutive dates (27/04, 02/05, 09/05, 16/05, 24/05, 31/05, 11/06, 21/06) and ensiled. Each silage was subjected to six different treatments (no hydrothermal conditioning and hydrothermal conditioning at 10°C, 30°C, 50°C, 70°C, 90°C). Energy balance was calculated for IFBB and WCD. Multiple regression models were developed to predict mass flows, concentrations of elements in the PC, concentration of organic compounds in the PF and energy conversion efficiency of the IFBB process from temperature of hydrothermal conditioning as well as NDF and DM concentration in the silage. Results showed a relative reduction of ash and all elements detrimental for combustion in the PC compared to the untreated biomass of 20-90%. Reduction was highest for K and Cl and lowest for N. HHV of PC and untreated biomass were in a comparable range (17.8-19.5 MJ kg-1 DM), but AST of PC was higher (1156-1254°C). Methane yields of PF were higher compared to those of WCD when the biomass was harvested late (end of May and later) and in a comparable range when the biomass was harvested early and ranged from 332 to 458 LN kg-1 VS. Regarding energy and GHG balances, IFBB, with a net energy yield of 11.9-14.1 MWh ha-1, a conversion efficiency of 0.43-0.51, and GHG mitigation of 3.6-4.4 t CO2eq ha-1, performed better than WCD, but worse than CH. WCD produces thermal and electric energy with low efficiency, CH produces only thermal energy with a low quality solid fuel with high efficiency, IFBB produces thermal and electric energy with a solid fuel of high quality with medium efficiency. Regression models were able to predict target parameters with high accuracy (R2=0.70-0.99). The influence of increasing temperature of hydrothermal conditioning was an increase of mass flows, a decrease of element concentrations in the PC and a differing effect on energy conversion efficiency. The influence of increasing NDF concentration of the silage was a differing effect on mass flows, a decrease of element concentrations in the PC and an increase of energy conversion efficiency. The influence of increasing DM concentration of the silage was a decrease of mass flows, an increase of element concentrations in the PC and an increase of energy conversion efficiency. Based on the models an optimised IFBB process would be obtained with a medium temperature of hydrothermal conditioning (50°C), high NDF concentrations in the silage and medium DM concentrations of the silage.
Resumo:
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.